assembler_x86.cpp 257.4 KB
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/*
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 * Copyright (c) 1997, 2010, Oracle and/or its affiliates. All rights reserved.
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 * DO NOT ALTER OR REMOVE COPYRIGHT NOTICES OR THIS FILE HEADER.
 *
 * This code is free software; you can redistribute it and/or modify it
 * under the terms of the GNU General Public License version 2 only, as
 * published by the Free Software Foundation.
 *
 * This code is distributed in the hope that it will be useful, but WITHOUT
 * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or
 * FITNESS FOR A PARTICULAR PURPOSE.  See the GNU General Public License
 * version 2 for more details (a copy is included in the LICENSE file that
 * accompanied this code).
 *
 * You should have received a copy of the GNU General Public License version
 * 2 along with this work; if not, write to the Free Software Foundation,
 * Inc., 51 Franklin St, Fifth Floor, Boston, MA 02110-1301 USA.
 *
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 * Please contact Oracle, 500 Oracle Parkway, Redwood Shores, CA 94065 USA
 * or visit www.oracle.com if you need additional information or have any
 * questions.
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 *
 */

#include "incls/_precompiled.incl"
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#include "incls/_assembler_x86.cpp.incl"
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// Implementation of AddressLiteral

AddressLiteral::AddressLiteral(address target, relocInfo::relocType rtype) {
  _is_lval = false;
  _target = target;
  switch (rtype) {
  case relocInfo::oop_type:
    // Oops are a special case. Normally they would be their own section
    // but in cases like icBuffer they are literals in the code stream that
    // we don't have a section for. We use none so that we get a literal address
    // which is always patchable.
    break;
  case relocInfo::external_word_type:
    _rspec = external_word_Relocation::spec(target);
    break;
  case relocInfo::internal_word_type:
    _rspec = internal_word_Relocation::spec(target);
    break;
  case relocInfo::opt_virtual_call_type:
    _rspec = opt_virtual_call_Relocation::spec();
    break;
  case relocInfo::static_call_type:
    _rspec = static_call_Relocation::spec();
    break;
  case relocInfo::runtime_call_type:
    _rspec = runtime_call_Relocation::spec();
    break;
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  case relocInfo::poll_type:
  case relocInfo::poll_return_type:
    _rspec = Relocation::spec_simple(rtype);
    break;
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  case relocInfo::none:
    break;
  default:
    ShouldNotReachHere();
    break;
  }
}

// Implementation of Address

#ifdef _LP64
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Address Address::make_array(ArrayAddress adr) {
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  // Not implementable on 64bit machines
  // Should have been handled higher up the call chain.
  ShouldNotReachHere();
  return Address();
}

// exceedingly dangerous constructor
Address::Address(int disp, address loc, relocInfo::relocType rtype) {
  _base  = noreg;
  _index = noreg;
  _scale = no_scale;
  _disp  = disp;
  switch (rtype) {
    case relocInfo::external_word_type:
      _rspec = external_word_Relocation::spec(loc);
      break;
    case relocInfo::internal_word_type:
      _rspec = internal_word_Relocation::spec(loc);
      break;
    case relocInfo::runtime_call_type:
      // HMM
      _rspec = runtime_call_Relocation::spec();
      break;
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    case relocInfo::poll_type:
    case relocInfo::poll_return_type:
      _rspec = Relocation::spec_simple(rtype);
      break;
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    case relocInfo::none:
      break;
    default:
      ShouldNotReachHere();
  }
}
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#else // LP64

Address Address::make_array(ArrayAddress adr) {
  AddressLiteral base = adr.base();
  Address index = adr.index();
  assert(index._disp == 0, "must not have disp"); // maybe it can?
  Address array(index._base, index._index, index._scale, (intptr_t) base.target());
  array._rspec = base._rspec;
  return array;
}

// exceedingly dangerous constructor
Address::Address(address loc, RelocationHolder spec) {
  _base  = noreg;
  _index = noreg;
  _scale = no_scale;
  _disp  = (intptr_t) loc;
  _rspec = spec;
}

#endif // _LP64


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// Convert the raw encoding form into the form expected by the constructor for
// Address.  An index of 4 (rsp) corresponds to having no index, so convert
// that to noreg for the Address constructor.
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Address Address::make_raw(int base, int index, int scale, int disp, bool disp_is_oop) {
  RelocationHolder rspec;
  if (disp_is_oop) {
    rspec = Relocation::spec_simple(relocInfo::oop_type);
  }
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  bool valid_index = index != rsp->encoding();
  if (valid_index) {
    Address madr(as_Register(base), as_Register(index), (Address::ScaleFactor)scale, in_ByteSize(disp));
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    madr._rspec = rspec;
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    return madr;
  } else {
    Address madr(as_Register(base), noreg, Address::no_scale, in_ByteSize(disp));
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    madr._rspec = rspec;
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    return madr;
  }
}

// Implementation of Assembler
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int AbstractAssembler::code_fill_byte() {
  return (u_char)'\xF4'; // hlt
}

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// make this go away someday
void Assembler::emit_data(jint data, relocInfo::relocType rtype, int format) {
  if (rtype == relocInfo::none)
        emit_long(data);
  else  emit_data(data, Relocation::spec_simple(rtype), format);
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}

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void Assembler::emit_data(jint data, RelocationHolder const& rspec, int format) {
  assert(imm_operand == 0, "default format must be immediate in this file");
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  assert(inst_mark() != NULL, "must be inside InstructionMark");
  if (rspec.type() !=  relocInfo::none) {
    #ifdef ASSERT
      check_relocation(rspec, format);
    #endif
    // Do not use AbstractAssembler::relocate, which is not intended for
    // embedded words.  Instead, relocate to the enclosing instruction.

    // hack. call32 is too wide for mask so use disp32
    if (format == call32_operand)
      code_section()->relocate(inst_mark(), rspec, disp32_operand);
    else
      code_section()->relocate(inst_mark(), rspec, format);
  }
  emit_long(data);
}

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static int encode(Register r) {
  int enc = r->encoding();
  if (enc >= 8) {
    enc -= 8;
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  }
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  return enc;
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}

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static int encode(XMMRegister r) {
  int enc = r->encoding();
  if (enc >= 8) {
    enc -= 8;
  }
  return enc;
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}

void Assembler::emit_arith_b(int op1, int op2, Register dst, int imm8) {
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  assert(dst->has_byte_register(), "must have byte register");
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  assert(isByte(op1) && isByte(op2), "wrong opcode");
  assert(isByte(imm8), "not a byte");
  assert((op1 & 0x01) == 0, "should be 8bit operation");
  emit_byte(op1);
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  emit_byte(op2 | encode(dst));
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  emit_byte(imm8);
}

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void Assembler::emit_arith(int op1, int op2, Register dst, int32_t imm32) {
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  assert(isByte(op1) && isByte(op2), "wrong opcode");
  assert((op1 & 0x01) == 1, "should be 32bit operation");
  assert((op1 & 0x02) == 0, "sign-extension bit should not be set");
  if (is8bit(imm32)) {
    emit_byte(op1 | 0x02); // set sign bit
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    emit_byte(op2 | encode(dst));
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    emit_byte(imm32 & 0xFF);
  } else {
    emit_byte(op1);
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    emit_byte(op2 | encode(dst));
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    emit_long(imm32);
  }
}

// immediate-to-memory forms
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void Assembler::emit_arith_operand(int op1, Register rm, Address adr, int32_t imm32) {
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  assert((op1 & 0x01) == 1, "should be 32bit operation");
  assert((op1 & 0x02) == 0, "sign-extension bit should not be set");
  if (is8bit(imm32)) {
    emit_byte(op1 | 0x02); // set sign bit
    emit_operand(rm, adr, 1);
    emit_byte(imm32 & 0xFF);
  } else {
    emit_byte(op1);
    emit_operand(rm, adr, 4);
    emit_long(imm32);
  }
}

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void Assembler::emit_arith(int op1, int op2, Register dst, jobject obj) {
  LP64_ONLY(ShouldNotReachHere());
  assert(isByte(op1) && isByte(op2), "wrong opcode");
  assert((op1 & 0x01) == 1, "should be 32bit operation");
  assert((op1 & 0x02) == 0, "sign-extension bit should not be set");
  InstructionMark im(this);
  emit_byte(op1);
  emit_byte(op2 | encode(dst));
  emit_data((intptr_t)obj, relocInfo::oop_type, 0);
}

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void Assembler::emit_arith(int op1, int op2, Register dst, Register src) {
  assert(isByte(op1) && isByte(op2), "wrong opcode");
  emit_byte(op1);
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  emit_byte(op2 | encode(dst) << 3 | encode(src));
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}

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void Assembler::emit_operand(Register reg, Register base, Register index,
                             Address::ScaleFactor scale, int disp,
                             RelocationHolder const& rspec,
                             int rip_relative_correction) {
  relocInfo::relocType rtype = (relocInfo::relocType) rspec.type();
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  // Encode the registers as needed in the fields they are used in

  int regenc = encode(reg) << 3;
  int indexenc = index->is_valid() ? encode(index) << 3 : 0;
  int baseenc = base->is_valid() ? encode(base) : 0;

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  if (base->is_valid()) {
    if (index->is_valid()) {
      assert(scale != Address::no_scale, "inconsistent address");
      // [base + index*scale + disp]
      if (disp == 0 && rtype == relocInfo::none  &&
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          base != rbp LP64_ONLY(&& base != r13)) {
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        // [base + index*scale]
        // [00 reg 100][ss index base]
        assert(index != rsp, "illegal addressing mode");
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        emit_byte(0x04 | regenc);
        emit_byte(scale << 6 | indexenc | baseenc);
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      } else if (is8bit(disp) && rtype == relocInfo::none) {
        // [base + index*scale + imm8]
        // [01 reg 100][ss index base] imm8
        assert(index != rsp, "illegal addressing mode");
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        emit_byte(0x44 | regenc);
        emit_byte(scale << 6 | indexenc | baseenc);
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        emit_byte(disp & 0xFF);
      } else {
        // [base + index*scale + disp32]
        // [10 reg 100][ss index base] disp32
        assert(index != rsp, "illegal addressing mode");
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        emit_byte(0x84 | regenc);
        emit_byte(scale << 6 | indexenc | baseenc);
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        emit_data(disp, rspec, disp32_operand);
      }
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    } else if (base == rsp LP64_ONLY(|| base == r12)) {
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      // [rsp + disp]
      if (disp == 0 && rtype == relocInfo::none) {
        // [rsp]
        // [00 reg 100][00 100 100]
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        emit_byte(0x04 | regenc);
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        emit_byte(0x24);
      } else if (is8bit(disp) && rtype == relocInfo::none) {
        // [rsp + imm8]
        // [01 reg 100][00 100 100] disp8
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        emit_byte(0x44 | regenc);
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        emit_byte(0x24);
        emit_byte(disp & 0xFF);
      } else {
        // [rsp + imm32]
        // [10 reg 100][00 100 100] disp32
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        emit_byte(0x84 | regenc);
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        emit_byte(0x24);
        emit_data(disp, rspec, disp32_operand);
      }
    } else {
      // [base + disp]
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      assert(base != rsp LP64_ONLY(&& base != r12), "illegal addressing mode");
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      if (disp == 0 && rtype == relocInfo::none &&
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          base != rbp LP64_ONLY(&& base != r13)) {
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        // [base]
        // [00 reg base]
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        emit_byte(0x00 | regenc | baseenc);
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      } else if (is8bit(disp) && rtype == relocInfo::none) {
        // [base + disp8]
        // [01 reg base] disp8
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        emit_byte(0x40 | regenc | baseenc);
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        emit_byte(disp & 0xFF);
      } else {
        // [base + disp32]
        // [10 reg base] disp32
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        emit_byte(0x80 | regenc | baseenc);
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        emit_data(disp, rspec, disp32_operand);
      }
    }
  } else {
    if (index->is_valid()) {
      assert(scale != Address::no_scale, "inconsistent address");
      // [index*scale + disp]
      // [00 reg 100][ss index 101] disp32
      assert(index != rsp, "illegal addressing mode");
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      emit_byte(0x04 | regenc);
      emit_byte(scale << 6 | indexenc | 0x05);
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      emit_data(disp, rspec, disp32_operand);
    } else if (rtype != relocInfo::none ) {
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      // [disp] (64bit) RIP-RELATIVE (32bit) abs
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      // [00 000 101] disp32

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      emit_byte(0x05 | regenc);
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      // Note that the RIP-rel. correction applies to the generated
      // disp field, but _not_ to the target address in the rspec.

      // disp was created by converting the target address minus the pc
      // at the start of the instruction. That needs more correction here.
      // intptr_t disp = target - next_ip;
      assert(inst_mark() != NULL, "must be inside InstructionMark");
      address next_ip = pc() + sizeof(int32_t) + rip_relative_correction;
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      int64_t adjusted = disp;
      // Do rip-rel adjustment for 64bit
      LP64_ONLY(adjusted -=  (next_ip - inst_mark()));
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      assert(is_simm32(adjusted),
             "must be 32bit offset (RIP relative address)");
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      emit_data((int32_t) adjusted, rspec, disp32_operand);
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    } else {
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      // 32bit never did this, did everything as the rip-rel/disp code above
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      // [disp] ABSOLUTE
      // [00 reg 100][00 100 101] disp32
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      emit_byte(0x04 | regenc);
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      emit_byte(0x25);
      emit_data(disp, rspec, disp32_operand);
    }
  }
}

void Assembler::emit_operand(XMMRegister reg, Register base, Register index,
                             Address::ScaleFactor scale, int disp,
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                             RelocationHolder const& rspec) {
  emit_operand((Register)reg, base, index, scale, disp, rspec);
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}

// Secret local extension to Assembler::WhichOperand:
#define end_pc_operand (_WhichOperand_limit)

address Assembler::locate_operand(address inst, WhichOperand which) {
  // Decode the given instruction, and return the address of
  // an embedded 32-bit operand word.

  // If "which" is disp32_operand, selects the displacement portion
  // of an effective address specifier.
  // If "which" is imm64_operand, selects the trailing immediate constant.
  // If "which" is call32_operand, selects the displacement of a call or jump.
  // Caller is responsible for ensuring that there is such an operand,
  // and that it is 32/64 bits wide.

  // If "which" is end_pc_operand, find the end of the instruction.

  address ip = inst;
  bool is_64bit = false;

  debug_only(bool has_disp32 = false);
  int tail_size = 0; // other random bytes (#32, #16, etc.) at end of insn

  again_after_prefix:
  switch (0xFF & *ip++) {

  // These convenience macros generate groups of "case" labels for the switch.
#define REP4(x) (x)+0: case (x)+1: case (x)+2: case (x)+3
#define REP8(x) (x)+0: case (x)+1: case (x)+2: case (x)+3: \
             case (x)+4: case (x)+5: case (x)+6: case (x)+7
#define REP16(x) REP8((x)+0): \
              case REP8((x)+8)

  case CS_segment:
  case SS_segment:
  case DS_segment:
  case ES_segment:
  case FS_segment:
  case GS_segment:
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    // Seems dubious
    LP64_ONLY(assert(false, "shouldn't have that prefix"));
    assert(ip == inst+1, "only one prefix allowed");
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    goto again_after_prefix;

  case 0x67:
  case REX:
  case REX_B:
  case REX_X:
  case REX_XB:
  case REX_R:
  case REX_RB:
  case REX_RX:
  case REX_RXB:
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    NOT_LP64(assert(false, "64bit prefixes"));
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    goto again_after_prefix;

  case REX_W:
  case REX_WB:
  case REX_WX:
  case REX_WXB:
  case REX_WR:
  case REX_WRB:
  case REX_WRX:
  case REX_WRXB:
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    NOT_LP64(assert(false, "64bit prefixes"));
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    is_64bit = true;
    goto again_after_prefix;

  case 0xFF: // pushq a; decl a; incl a; call a; jmp a
  case 0x88: // movb a, r
  case 0x89: // movl a, r
  case 0x8A: // movb r, a
  case 0x8B: // movl r, a
  case 0x8F: // popl a
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    debug_only(has_disp32 = true);
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    break;

  case 0x68: // pushq #32
    if (which == end_pc_operand) {
      return ip + 4;
    }
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    assert(which == imm_operand && !is_64bit, "pushl has no disp32 or 64bit immediate");
    return ip;                  // not produced by emit_operand
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  case 0x66: // movw ... (size prefix)
    again_after_size_prefix2:
    switch (0xFF & *ip++) {
    case REX:
    case REX_B:
    case REX_X:
    case REX_XB:
    case REX_R:
    case REX_RB:
    case REX_RX:
    case REX_RXB:
    case REX_W:
    case REX_WB:
    case REX_WX:
    case REX_WXB:
    case REX_WR:
    case REX_WRB:
    case REX_WRX:
    case REX_WRXB:
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      NOT_LP64(assert(false, "64bit prefix found"));
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      goto again_after_size_prefix2;
    case 0x8B: // movw r, a
    case 0x89: // movw a, r
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      debug_only(has_disp32 = true);
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      break;
    case 0xC7: // movw a, #16
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      debug_only(has_disp32 = true);
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      tail_size = 2;  // the imm16
      break;
    case 0x0F: // several SSE/SSE2 variants
      ip--;    // reparse the 0x0F
      goto again_after_prefix;
    default:
      ShouldNotReachHere();
    }
    break;

  case REP8(0xB8): // movl/q r, #32/#64(oop?)
    if (which == end_pc_operand)  return ip + (is_64bit ? 8 : 4);
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    // these asserts are somewhat nonsensical
#ifndef _LP64
    assert(which == imm_operand || which == disp32_operand, "");
#else
    assert((which == call32_operand || which == imm_operand) && is_64bit ||
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           which == narrow_oop_operand && !is_64bit, "");
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#endif // _LP64
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    return ip;

  case 0x69: // imul r, a, #32
  case 0xC7: // movl a, #32(oop?)
    tail_size = 4;
    debug_only(has_disp32 = true); // has both kinds of operands!
    break;

  case 0x0F: // movx..., etc.
    switch (0xFF & *ip++) {
    case 0x12: // movlps
    case 0x28: // movaps
    case 0x2E: // ucomiss
    case 0x2F: // comiss
    case 0x54: // andps
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    case 0x55: // andnps
    case 0x56: // orps
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    case 0x57: // xorps
    case 0x6E: // movd
    case 0x7E: // movd
    case 0xAE: // ldmxcsr   a
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      // 64bit side says it these have both operands but that doesn't
      // appear to be true
      debug_only(has_disp32 = true);
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      break;
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    case 0xAD: // shrd r, a, %cl
    case 0xAF: // imul r, a
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    case 0xBE: // movsbl r, a (movsxb)
    case 0xBF: // movswl r, a (movsxw)
    case 0xB6: // movzbl r, a (movzxb)
    case 0xB7: // movzwl r, a (movzxw)
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    case REP16(0x40): // cmovl cc, r, a
    case 0xB0: // cmpxchgb
    case 0xB1: // cmpxchg
    case 0xC1: // xaddl
    case 0xC7: // cmpxchg8
    case REP16(0x90): // setcc a
      debug_only(has_disp32 = true);
      // fall out of the switch to decode the address
      break;
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    case 0xAC: // shrd r, a, #8
      debug_only(has_disp32 = true);
      tail_size = 1;  // the imm8
      break;
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    case REP16(0x80): // jcc rdisp32
      if (which == end_pc_operand)  return ip + 4;
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      assert(which == call32_operand, "jcc has no disp32 or imm");
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      return ip;
    default:
      ShouldNotReachHere();
    }
    break;

  case 0x81: // addl a, #32; addl r, #32
    // also: orl, adcl, sbbl, andl, subl, xorl, cmpl
568
    // on 32bit in the case of cmpl, the imm might be an oop
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    tail_size = 4;
    debug_only(has_disp32 = true); // has both kinds of operands!
    break;

  case 0x83: // addl a, #8; addl r, #8
    // also: orl, adcl, sbbl, andl, subl, xorl, cmpl
    debug_only(has_disp32 = true); // has both kinds of operands!
    tail_size = 1;
    break;

  case 0x9B:
    switch (0xFF & *ip++) {
    case 0xD9: // fnstcw a
      debug_only(has_disp32 = true);
      break;
    default:
      ShouldNotReachHere();
    }
    break;

  case REP4(0x00): // addb a, r; addl a, r; addb r, a; addl r, a
  case REP4(0x10): // adc...
  case REP4(0x20): // and...
  case REP4(0x30): // xor...
  case REP4(0x08): // or...
  case REP4(0x18): // sbb...
  case REP4(0x28): // sub...
  case 0xF7: // mull a
597
  case 0x8D: // lea r, a
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  case 0x87: // xchg r, a
  case REP4(0x38): // cmp...
  case 0x85: // test r, a
    debug_only(has_disp32 = true); // has both kinds of operands!
    break;

  case 0xC1: // sal a, #8; sar a, #8; shl a, #8; shr a, #8
  case 0xC6: // movb a, #8
  case 0x80: // cmpb a, #8
  case 0x6B: // imul r, a, #8
    debug_only(has_disp32 = true); // has both kinds of operands!
    tail_size = 1; // the imm8
    break;

  case 0xE8: // call rdisp32
  case 0xE9: // jmp  rdisp32
    if (which == end_pc_operand)  return ip + 4;
615
    assert(which == call32_operand, "call has no disp32 or imm");
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    return ip;

  case 0xD1: // sal a, 1; sar a, 1; shl a, 1; shr a, 1
  case 0xD3: // sal a, %cl; sar a, %cl; shl a, %cl; shr a, %cl
  case 0xD9: // fld_s a; fst_s a; fstp_s a; fldcw a
  case 0xDD: // fld_d a; fst_d a; fstp_d a
  case 0xDB: // fild_s a; fistp_s a; fld_x a; fstp_x a
  case 0xDF: // fild_d a; fistp_d a
  case 0xD8: // fadd_s a; fsubr_s a; fmul_s a; fdivr_s a; fcomp_s a
  case 0xDC: // fadd_d a; fsubr_d a; fmul_d a; fdivr_d a; fcomp_d a
  case 0xDE: // faddp_d a; fsubrp_d a; fmulp_d a; fdivrp_d a; fcompp_d a
    debug_only(has_disp32 = true);
    break;

630 631 632 633
  case 0xF0:                    // Lock
    assert(os::is_MP(), "only on MP");
    goto again_after_prefix;

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  case 0xF3:                    // For SSE
  case 0xF2:                    // For SSE2
    switch (0xFF & *ip++) {
    case REX:
    case REX_B:
    case REX_X:
    case REX_XB:
    case REX_R:
    case REX_RB:
    case REX_RX:
    case REX_RXB:
    case REX_W:
    case REX_WB:
    case REX_WX:
    case REX_WXB:
    case REX_WR:
    case REX_WRB:
    case REX_WRX:
    case REX_WRXB:
653
      NOT_LP64(assert(false, "found 64bit prefix"));
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      ip++;
    default:
      ip++;
    }
    debug_only(has_disp32 = true); // has both kinds of operands!
    break;

  default:
    ShouldNotReachHere();

#undef REP8
#undef REP16
  }

  assert(which != call32_operand, "instruction is not a call, jmp, or jcc");
669 670 671 672 673 674
#ifdef _LP64
  assert(which != imm_operand, "instruction is not a movq reg, imm64");
#else
  // assert(which != imm_operand || has_imm32, "instruction has no imm32 field");
  assert(which != imm_operand || has_disp32, "instruction has no imm32 field");
#endif // LP64
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  assert(which != disp32_operand || has_disp32, "instruction has no disp32 field");

  // parse the output of emit_operand
  int op2 = 0xFF & *ip++;
  int base = op2 & 0x07;
  int op3 = -1;
  const int b100 = 4;
  const int b101 = 5;
  if (base == b100 && (op2 >> 6) != 3) {
    op3 = 0xFF & *ip++;
    base = op3 & 0x07;   // refetch the base
  }
  // now ip points at the disp (if any)

  switch (op2 >> 6) {
  case 0:
    // [00 reg  100][ss index base]
    // [00 reg  100][00   100  esp]
    // [00 reg base]
    // [00 reg  100][ss index  101][disp32]
    // [00 reg  101]               [disp32]

    if (base == b101) {
      if (which == disp32_operand)
        return ip;              // caller wants the disp32
      ip += 4;                  // skip the disp32
    }
    break;

  case 1:
    // [01 reg  100][ss index base][disp8]
    // [01 reg  100][00   100  esp][disp8]
    // [01 reg base]               [disp8]
    ip += 1;                    // skip the disp8
    break;

  case 2:
    // [10 reg  100][ss index base][disp32]
    // [10 reg  100][00   100  esp][disp32]
    // [10 reg base]               [disp32]
    if (which == disp32_operand)
      return ip;                // caller wants the disp32
    ip += 4;                    // skip the disp32
    break;

  case 3:
    // [11 reg base]  (not a memory addressing mode)
    break;
  }

  if (which == end_pc_operand) {
    return ip + tail_size;
  }

729
#ifdef _LP64
730
  assert(which == narrow_oop_operand && !is_64bit, "instruction is not a movl adr, imm32");
731 732 733
#else
  assert(which == imm_operand, "instruction has only an imm field");
#endif // LP64
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  return ip;
}

address Assembler::locate_next_instruction(address inst) {
  // Secretly share code with locate_operand:
  return locate_operand(inst, end_pc_operand);
}

742

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#ifdef ASSERT
void Assembler::check_relocation(RelocationHolder const& rspec, int format) {
  address inst = inst_mark();
746
  assert(inst != NULL && inst < pc(), "must point to beginning of instruction");
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  address opnd;

  Relocation* r = rspec.reloc();
  if (r->type() == relocInfo::none) {
    return;
  } else if (r->is_call() || format == call32_operand) {
753
    // assert(format == imm32_operand, "cannot specify a nonzero format");
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    opnd = locate_operand(inst, call32_operand);
  } else if (r->is_data()) {
756 757 758
    assert(format == imm_operand || format == disp32_operand
           LP64_ONLY(|| format == narrow_oop_operand), "format ok");
    opnd = locate_operand(inst, (WhichOperand)format);
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  } else {
760
    assert(format == imm_operand, "cannot specify a format");
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    return;
  }
  assert(opnd == pc(), "must put operand where relocs can find it");
}
765
#endif // ASSERT
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767 768 769 770 771
void Assembler::emit_operand32(Register reg, Address adr) {
  assert(reg->encoding() < 8, "no extended registers");
  assert(!adr.base_needs_rex() && !adr.index_needs_rex(), "no extended registers");
  emit_operand(reg, adr._base, adr._index, adr._scale, adr._disp,
               adr._rspec);
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}

void Assembler::emit_operand(Register reg, Address adr,
                             int rip_relative_correction) {
  emit_operand(reg, adr._base, adr._index, adr._scale, adr._disp,
               adr._rspec,
               rip_relative_correction);
}

781
void Assembler::emit_operand(XMMRegister reg, Address adr) {
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  emit_operand(reg, adr._base, adr._index, adr._scale, adr._disp,
783 784 785 786 787 788 789 790 791 792 793 794 795
               adr._rspec);
}

// MMX operations
void Assembler::emit_operand(MMXRegister reg, Address adr) {
  assert(!adr.base_needs_rex() && !adr.index_needs_rex(), "no extended registers");
  emit_operand((Register)reg, adr._base, adr._index, adr._scale, adr._disp, adr._rspec);
}

// work around gcc (3.2.1-7a) bug
void Assembler::emit_operand(Address adr, MMXRegister reg) {
  assert(!adr.base_needs_rex() && !adr.index_needs_rex(), "no extended registers");
  emit_operand((Register)reg, adr._base, adr._index, adr._scale, adr._disp, adr._rspec);
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}

798

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void Assembler::emit_farith(int b1, int b2, int i) {
  assert(isByte(b1) && isByte(b2), "wrong opcode");
  assert(0 <= i &&  i < 8, "illegal stack offset");
  emit_byte(b1);
  emit_byte(b2 + i);
}


807
// Now the Assembler instruction (identical for 32/64 bits)
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809 810 811
void Assembler::adcl(Register dst, int32_t imm32) {
  prefix(dst);
  emit_arith(0x81, 0xD0, dst, imm32);
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}

814 815 816 817 818
void Assembler::adcl(Register dst, Address src) {
  InstructionMark im(this);
  prefix(src, dst);
  emit_byte(0x13);
  emit_operand(dst, src);
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}

821 822 823
void Assembler::adcl(Register dst, Register src) {
  (void) prefix_and_encode(dst->encoding(), src->encoding());
  emit_arith(0x13, 0xC0, dst, src);
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}

826 827 828 829
void Assembler::addl(Address dst, int32_t imm32) {
  InstructionMark im(this);
  prefix(dst);
  emit_arith_operand(0x81, rax, dst, imm32);
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}

832 833 834 835 836
void Assembler::addl(Address dst, Register src) {
  InstructionMark im(this);
  prefix(dst, src);
  emit_byte(0x01);
  emit_operand(src, dst);
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}

839 840 841 842
void Assembler::addl(Register dst, int32_t imm32) {
  prefix(dst);
  emit_arith(0x81, 0xC0, dst, imm32);
}
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844 845 846 847 848
void Assembler::addl(Register dst, Address src) {
  InstructionMark im(this);
  prefix(src, dst);
  emit_byte(0x03);
  emit_operand(dst, src);
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}

851 852 853
void Assembler::addl(Register dst, Register src) {
  (void) prefix_and_encode(dst->encoding(), src->encoding());
  emit_arith(0x03, 0xC0, dst, src);
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}

856 857 858 859 860 861
void Assembler::addr_nop_4() {
  // 4 bytes: NOP DWORD PTR [EAX+0]
  emit_byte(0x0F);
  emit_byte(0x1F);
  emit_byte(0x40); // emit_rm(cbuf, 0x1, EAX_enc, EAX_enc);
  emit_byte(0);    // 8-bits offset (1 byte)
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}

864 865 866 867 868 869 870
void Assembler::addr_nop_5() {
  // 5 bytes: NOP DWORD PTR [EAX+EAX*0+0] 8-bits offset
  emit_byte(0x0F);
  emit_byte(0x1F);
  emit_byte(0x44); // emit_rm(cbuf, 0x1, EAX_enc, 0x4);
  emit_byte(0x00); // emit_rm(cbuf, 0x0, EAX_enc, EAX_enc);
  emit_byte(0);    // 8-bits offset (1 byte)
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}

873 874 875 876 877 878
void Assembler::addr_nop_7() {
  // 7 bytes: NOP DWORD PTR [EAX+0] 32-bits offset
  emit_byte(0x0F);
  emit_byte(0x1F);
  emit_byte(0x80); // emit_rm(cbuf, 0x2, EAX_enc, EAX_enc);
  emit_long(0);    // 32-bits offset (4 bytes)
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}

881 882 883 884 885 886 887 888 889 890 891 892 893 894 895 896 897 898 899 900
void Assembler::addr_nop_8() {
  // 8 bytes: NOP DWORD PTR [EAX+EAX*0+0] 32-bits offset
  emit_byte(0x0F);
  emit_byte(0x1F);
  emit_byte(0x84); // emit_rm(cbuf, 0x2, EAX_enc, 0x4);
  emit_byte(0x00); // emit_rm(cbuf, 0x0, EAX_enc, EAX_enc);
  emit_long(0);    // 32-bits offset (4 bytes)
}

void Assembler::addsd(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0xF2);
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x58);
  emit_byte(0xC0 | encode);
}

void Assembler::addsd(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
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  InstructionMark im(this);
902 903 904 905
  emit_byte(0xF2);
  prefix(src, dst);
  emit_byte(0x0F);
  emit_byte(0x58);
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  emit_operand(dst, src);
}

909 910 911 912 913 914 915 916 917 918 919
void Assembler::addss(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
  emit_byte(0xF3);
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x58);
  emit_byte(0xC0 | encode);
}

void Assembler::addss(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
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  InstructionMark im(this);
921 922 923 924 925 926 927 928
  emit_byte(0xF3);
  prefix(src, dst);
  emit_byte(0x0F);
  emit_byte(0x58);
  emit_operand(dst, src);
}

void Assembler::andl(Register dst, int32_t imm32) {
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  prefix(dst);
930
  emit_arith(0x81, 0xE0, dst, imm32);
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}

933
void Assembler::andl(Register dst, Address src) {
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  InstructionMark im(this);
935 936 937
  prefix(src, dst);
  emit_byte(0x23);
  emit_operand(dst, src);
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}

940 941 942
void Assembler::andl(Register dst, Register src) {
  (void) prefix_and_encode(dst->encoding(), src->encoding());
  emit_arith(0x23, 0xC0, dst, src);
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}

945 946
void Assembler::andpd(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
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  InstructionMark im(this);
  emit_byte(0x66);
  prefix(src, dst);
950 951
  emit_byte(0x0F);
  emit_byte(0x54);
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  emit_operand(dst, src);
}

955 956 957 958 959 960 961 962 963 964 965 966 967 968 969
void Assembler::bsfl(Register dst, Register src) {
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0xBC);
  emit_byte(0xC0 | encode);
}

void Assembler::bsrl(Register dst, Register src) {
  assert(!VM_Version::supports_lzcnt(), "encoding is treated as LZCNT");
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0xBD);
  emit_byte(0xC0 | encode);
}

970 971 972 973 974 975 976 977 978 979 980 981 982 983 984 985 986 987 988 989 990 991 992 993 994 995 996 997 998 999 1000 1001 1002 1003 1004 1005 1006 1007 1008 1009 1010 1011 1012 1013 1014 1015 1016 1017
void Assembler::bswapl(Register reg) { // bswap
  int encode = prefix_and_encode(reg->encoding());
  emit_byte(0x0F);
  emit_byte(0xC8 | encode);
}

void Assembler::call(Label& L, relocInfo::relocType rtype) {
  // suspect disp32 is always good
  int operand = LP64_ONLY(disp32_operand) NOT_LP64(imm_operand);

  if (L.is_bound()) {
    const int long_size = 5;
    int offs = (int)( target(L) - pc() );
    assert(offs <= 0, "assembler error");
    InstructionMark im(this);
    // 1110 1000 #32-bit disp
    emit_byte(0xE8);
    emit_data(offs - long_size, rtype, operand);
  } else {
    InstructionMark im(this);
    // 1110 1000 #32-bit disp
    L.add_patch_at(code(), locator());

    emit_byte(0xE8);
    emit_data(int(0), rtype, operand);
  }
}

void Assembler::call(Register dst) {
  // This was originally using a 32bit register encoding
  // and surely we want 64bit!
  // this is a 32bit encoding but in 64bit mode the default
  // operand size is 64bit so there is no need for the
  // wide prefix. So prefix only happens if we use the
  // new registers. Much like push/pop.
  int x = offset();
  // this may be true but dbx disassembles it as if it
  // were 32bits...
  // int encode = prefix_and_encode(dst->encoding());
  // if (offset() != x) assert(dst->encoding() >= 8, "what?");
  int encode = prefixq_and_encode(dst->encoding());

  emit_byte(0xFF);
  emit_byte(0xD0 | encode);
}


void Assembler::call(Address adr) {
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  InstructionMark im(this);
1019 1020 1021
  prefix(adr);
  emit_byte(0xFF);
  emit_operand(rdx, adr);
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}

1024 1025 1026 1027 1028 1029 1030 1031 1032 1033 1034
void Assembler::call_literal(address entry, RelocationHolder const& rspec) {
  assert(entry != NULL, "call most probably wrong");
  InstructionMark im(this);
  emit_byte(0xE8);
  intptr_t disp = entry - (_code_pos + sizeof(int32_t));
  assert(is_simm32(disp), "must be 32bit offset (call2)");
  // Technically, should use call32_operand, but this format is
  // implied by the fact that we're emitting a call instruction.

  int operand = LP64_ONLY(disp32_operand) NOT_LP64(call32_operand);
  emit_data((int) disp, rspec, operand);
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}

1037 1038 1039 1040 1041 1042
void Assembler::cdql() {
  emit_byte(0x99);
}

void Assembler::cmovl(Condition cc, Register dst, Register src) {
  NOT_LP64(guarantee(VM_Version::supports_cmov(), "illegal instruction"));
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  int encode = prefix_and_encode(dst->encoding(), src->encoding());
1044 1045
  emit_byte(0x0F);
  emit_byte(0x40 | cc);
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  emit_byte(0xC0 | encode);
}

1049 1050 1051

void Assembler::cmovl(Condition cc, Register dst, Address src) {
  NOT_LP64(guarantee(VM_Version::supports_cmov(), "illegal instruction"));
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  prefix(src, dst);
1053 1054
  emit_byte(0x0F);
  emit_byte(0x40 | cc);
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  emit_operand(dst, src);
}

1058
void Assembler::cmpb(Address dst, int imm8) {
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  InstructionMark im(this);
  prefix(dst);
1061 1062 1063
  emit_byte(0x80);
  emit_operand(rdi, dst, 1);
  emit_byte(imm8);
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}

1066
void Assembler::cmpl(Address dst, int32_t imm32) {
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  InstructionMark im(this);
1068 1069 1070 1071
  prefix(dst);
  emit_byte(0x81);
  emit_operand(rdi, dst, 4);
  emit_long(imm32);
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}

1074 1075 1076
void Assembler::cmpl(Register dst, int32_t imm32) {
  prefix(dst);
  emit_arith(0x81, 0xF8, dst, imm32);
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}

1079 1080 1081
void Assembler::cmpl(Register dst, Register src) {
  (void) prefix_and_encode(dst->encoding(), src->encoding());
  emit_arith(0x3B, 0xC0, dst, src);
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}


1085
void Assembler::cmpl(Register dst, Address  src) {
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  InstructionMark im(this);
1087 1088
  prefix(src, dst);
  emit_byte(0x3B);
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  emit_operand(dst, src);
}

1092
void Assembler::cmpw(Address dst, int imm16) {
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  InstructionMark im(this);
1094 1095 1096 1097 1098
  assert(!dst.base_needs_rex() && !dst.index_needs_rex(), "no extended registers");
  emit_byte(0x66);
  emit_byte(0x81);
  emit_operand(rdi, dst, 2);
  emit_word(imm16);
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1099 1100
}

1101 1102 1103 1104 1105 1106 1107 1108 1109 1110 1111 1112 1113 1114 1115 1116 1117 1118 1119 1120 1121 1122 1123 1124
// The 32-bit cmpxchg compares the value at adr with the contents of rax,
// and stores reg into adr if so; otherwise, the value at adr is loaded into rax,.
// The ZF is set if the compared values were equal, and cleared otherwise.
void Assembler::cmpxchgl(Register reg, Address adr) { // cmpxchg
  if (Atomics & 2) {
     // caveat: no instructionmark, so this isn't relocatable.
     // Emit a synthetic, non-atomic, CAS equivalent.
     // Beware.  The synthetic form sets all ICCs, not just ZF.
     // cmpxchg r,[m] is equivalent to rax, = CAS (m, rax, r)
     cmpl(rax, adr);
     movl(rax, adr);
     if (reg != rax) {
        Label L ;
        jcc(Assembler::notEqual, L);
        movl(adr, reg);
        bind(L);
     }
  } else {
     InstructionMark im(this);
     prefix(adr, reg);
     emit_byte(0x0F);
     emit_byte(0xB1);
     emit_operand(reg, adr);
  }
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}

1127 1128 1129 1130 1131 1132
void Assembler::comisd(XMMRegister dst, Address src) {
  // NOTE: dbx seems to decode this as comiss even though the
  // 0x66 is there. Strangly ucomisd comes out correct
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0x66);
  comiss(dst, src);
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}

1135 1136
void Assembler::comiss(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
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  InstructionMark im(this);
  prefix(src, dst);
  emit_byte(0x0F);
1141
  emit_byte(0x2F);
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  emit_operand(dst, src);
}

1145 1146 1147
void Assembler::cvtdq2pd(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0xF3);
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  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
1150
  emit_byte(0xE6);
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  emit_byte(0xC0 | encode);
}

1154 1155 1156
void Assembler::cvtdq2ps(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
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  emit_byte(0x0F);
1158
  emit_byte(0x5B);
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1159 1160 1161
  emit_byte(0xC0 | encode);
}

1162 1163 1164
void Assembler::cvtsd2ss(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0xF2);
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  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
1167
  emit_byte(0x5A);
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  emit_byte(0xC0 | encode);
}

1171 1172 1173
void Assembler::cvtsi2sdl(XMMRegister dst, Register src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0xF2);
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  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
1176
  emit_byte(0x2A);
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  emit_byte(0xC0 | encode);
}

1180 1181
void Assembler::cvtsi2ssl(XMMRegister dst, Register src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
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  emit_byte(0xF3);
1183
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
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  emit_byte(0x0F);
1185 1186
  emit_byte(0x2A);
  emit_byte(0xC0 | encode);
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}

1189 1190
void Assembler::cvtss2sd(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
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1191 1192 1193
  emit_byte(0xF3);
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
1194
  emit_byte(0x5A);
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1195 1196 1197
  emit_byte(0xC0 | encode);
}

1198 1199
void Assembler::cvttsd2sil(Register dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
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  emit_byte(0xF2);
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
1203
  emit_byte(0x2C);
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1204 1205 1206
  emit_byte(0xC0 | encode);
}

1207 1208 1209 1210
void Assembler::cvttss2sil(Register dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
  emit_byte(0xF3);
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
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  emit_byte(0x0F);
1212
  emit_byte(0x2C);
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1213 1214 1215
  emit_byte(0xC0 | encode);
}

1216 1217 1218 1219 1220 1221
void Assembler::decl(Address dst) {
  // Don't use it directly. Use MacroAssembler::decrement() instead.
  InstructionMark im(this);
  prefix(dst);
  emit_byte(0xFF);
  emit_operand(rcx, dst);
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1222 1223
}

1224 1225
void Assembler::divsd(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
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  InstructionMark im(this);
1227
  emit_byte(0xF2);
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1228 1229
  prefix(src, dst);
  emit_byte(0x0F);
1230
  emit_byte(0x5E);
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1231 1232 1233
  emit_operand(dst, src);
}

1234 1235 1236
void Assembler::divsd(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0xF2);
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  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
1239
  emit_byte(0x5E);
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1240 1241 1242
  emit_byte(0xC0 | encode);
}

1243 1244
void Assembler::divss(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
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  InstructionMark im(this);
1246
  emit_byte(0xF3);
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1247 1248
  prefix(src, dst);
  emit_byte(0x0F);
1249
  emit_byte(0x5E);
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1250 1251 1252
  emit_operand(dst, src);
}

1253 1254 1255 1256
void Assembler::divss(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
  emit_byte(0xF3);
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
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  emit_byte(0x0F);
1258
  emit_byte(0x5E);
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1259 1260 1261
  emit_byte(0xC0 | encode);
}

1262 1263
void Assembler::emms() {
  NOT_LP64(assert(VM_Version::supports_mmx(), ""));
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1264
  emit_byte(0x0F);
1265
  emit_byte(0x77);
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1266 1267
}

1268 1269
void Assembler::hlt() {
  emit_byte(0xF4);
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}

1272 1273 1274 1275
void Assembler::idivl(Register src) {
  int encode = prefix_and_encode(src->encoding());
  emit_byte(0xF7);
  emit_byte(0xF8 | encode);
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1276 1277
}

1278
void Assembler::imull(Register dst, Register src) {
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1279 1280
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
1281
  emit_byte(0xAF);
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1282 1283 1284 1285
  emit_byte(0xC0 | encode);
}


1286
void Assembler::imull(Register dst, Register src, int value) {
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  int encode = prefix_and_encode(dst->encoding(), src->encoding());
1288 1289 1290 1291 1292 1293 1294 1295 1296
  if (is8bit(value)) {
    emit_byte(0x6B);
    emit_byte(0xC0 | encode);
    emit_byte(value);
  } else {
    emit_byte(0x69);
    emit_byte(0xC0 | encode);
    emit_long(value);
  }
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}

1299 1300
void Assembler::incl(Address dst) {
  // Don't use it directly. Use MacroAssembler::increment() instead.
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  InstructionMark im(this);
1302 1303 1304
  prefix(dst);
  emit_byte(0xFF);
  emit_operand(rax, dst);
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}

1307
void Assembler::jcc(Condition cc, Label& L, relocInfo::relocType rtype) {
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  InstructionMark im(this);
1309 1310 1311 1312 1313 1314 1315 1316 1317 1318 1319 1320 1321 1322 1323 1324 1325 1326 1327 1328 1329 1330 1331 1332 1333 1334 1335 1336 1337 1338 1339
  relocate(rtype);
  assert((0 <= cc) && (cc < 16), "illegal cc");
  if (L.is_bound()) {
    address dst = target(L);
    assert(dst != NULL, "jcc most probably wrong");

    const int short_size = 2;
    const int long_size = 6;
    intptr_t offs = (intptr_t)dst - (intptr_t)_code_pos;
    if (rtype == relocInfo::none && is8bit(offs - short_size)) {
      // 0111 tttn #8-bit disp
      emit_byte(0x70 | cc);
      emit_byte((offs - short_size) & 0xFF);
    } else {
      // 0000 1111 1000 tttn #32-bit disp
      assert(is_simm32(offs - long_size),
             "must be 32bit offset (call4)");
      emit_byte(0x0F);
      emit_byte(0x80 | cc);
      emit_long(offs - long_size);
    }
  } else {
    // Note: could eliminate cond. jumps to this jump if condition
    //       is the same however, seems to be rather unlikely case.
    // Note: use jccb() if label to be bound is very close to get
    //       an 8-bit displacement
    L.add_patch_at(code(), locator());
    emit_byte(0x0F);
    emit_byte(0x80 | cc);
    emit_long(0);
  }
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}

1342 1343 1344 1345 1346 1347 1348 1349 1350 1351 1352 1353 1354 1355 1356 1357
void Assembler::jccb(Condition cc, Label& L) {
  if (L.is_bound()) {
    const int short_size = 2;
    address entry = target(L);
    assert(is8bit((intptr_t)entry - ((intptr_t)_code_pos + short_size)),
           "Dispacement too large for a short jmp");
    intptr_t offs = (intptr_t)entry - (intptr_t)_code_pos;
    // 0111 tttn #8-bit disp
    emit_byte(0x70 | cc);
    emit_byte((offs - short_size) & 0xFF);
  } else {
    InstructionMark im(this);
    L.add_patch_at(code(), locator());
    emit_byte(0x70 | cc);
    emit_byte(0);
  }
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}

1360
void Assembler::jmp(Address adr) {
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1361
  InstructionMark im(this);
1362 1363 1364
  prefix(adr);
  emit_byte(0xFF);
  emit_operand(rsp, adr);
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}

1367 1368 1369 1370 1371 1372 1373 1374 1375 1376 1377 1378 1379 1380 1381 1382 1383 1384 1385 1386 1387 1388 1389 1390 1391 1392
void Assembler::jmp(Label& L, relocInfo::relocType rtype) {
  if (L.is_bound()) {
    address entry = target(L);
    assert(entry != NULL, "jmp most probably wrong");
    InstructionMark im(this);
    const int short_size = 2;
    const int long_size = 5;
    intptr_t offs = entry - _code_pos;
    if (rtype == relocInfo::none && is8bit(offs - short_size)) {
      emit_byte(0xEB);
      emit_byte((offs - short_size) & 0xFF);
    } else {
      emit_byte(0xE9);
      emit_long(offs - long_size);
    }
  } else {
    // By default, forward jumps are always 32-bit displacements, since
    // we can't yet know where the label will be bound.  If you're sure that
    // the forward jump will not run beyond 256 bytes, use jmpb to
    // force an 8-bit displacement.
    InstructionMark im(this);
    relocate(rtype);
    L.add_patch_at(code(), locator());
    emit_byte(0xE9);
    emit_long(0);
  }
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}

1395 1396 1397 1398
void Assembler::jmp(Register entry) {
  int encode = prefix_and_encode(entry->encoding());
  emit_byte(0xFF);
  emit_byte(0xE0 | encode);
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}

1401
void Assembler::jmp_literal(address dest, RelocationHolder const& rspec) {
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  InstructionMark im(this);
1403 1404 1405 1406 1407
  emit_byte(0xE9);
  assert(dest != NULL, "must have a target");
  intptr_t disp = dest - (_code_pos + sizeof(int32_t));
  assert(is_simm32(disp), "must be 32bit offset (jmp)");
  emit_data(disp, rspec.reloc(), call32_operand);
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}

1410 1411 1412 1413 1414 1415 1416 1417 1418 1419 1420 1421 1422 1423 1424 1425
void Assembler::jmpb(Label& L) {
  if (L.is_bound()) {
    const int short_size = 2;
    address entry = target(L);
    assert(is8bit((entry - _code_pos) + short_size),
           "Dispacement too large for a short jmp");
    assert(entry != NULL, "jmp most probably wrong");
    intptr_t offs = entry - _code_pos;
    emit_byte(0xEB);
    emit_byte((offs - short_size) & 0xFF);
  } else {
    InstructionMark im(this);
    L.add_patch_at(code(), locator());
    emit_byte(0xEB);
    emit_byte(0);
  }
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1426 1427
}

1428 1429
void Assembler::ldmxcsr( Address src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
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  InstructionMark im(this);
1431 1432 1433 1434
  prefix(src);
  emit_byte(0x0F);
  emit_byte(0xAE);
  emit_operand(as_Register(2), src);
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1435 1436
}

1437
void Assembler::leal(Register dst, Address src) {
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  InstructionMark im(this);
1439 1440 1441 1442 1443 1444
#ifdef _LP64
  emit_byte(0x67); // addr32
  prefix(src, dst);
#endif // LP64
  emit_byte(0x8D);
  emit_operand(dst, src);
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1445 1446
}

1447 1448 1449 1450 1451 1452 1453
void Assembler::lock() {
  if (Atomics & 1) {
     // Emit either nothing, a NOP, or a NOP: prefix
     emit_byte(0x90) ;
  } else {
     emit_byte(0xF0);
  }
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}

1456 1457 1458 1459 1460 1461 1462 1463 1464
void Assembler::lzcntl(Register dst, Register src) {
  assert(VM_Version::supports_lzcnt(), "encoding is treated as BSR");
  emit_byte(0xF3);
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0xBD);
  emit_byte(0xC0 | encode);
}

1465
// Emit mfence instruction
1466
void Assembler::mfence() {
1467 1468 1469 1470
  NOT_LP64(assert(VM_Version::supports_sse2(), "unsupported");)
  emit_byte( 0x0F );
  emit_byte( 0xAE );
  emit_byte( 0xF0 );
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}

1473 1474
void Assembler::mov(Register dst, Register src) {
  LP64_ONLY(movq(dst, src)) NOT_LP64(movl(dst, src));
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}

1477 1478 1479 1480 1481 1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497 1498
void Assembler::movapd(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  int dstenc = dst->encoding();
  int srcenc = src->encoding();
  emit_byte(0x66);
  if (dstenc < 8) {
    if (srcenc >= 8) {
      prefix(REX_B);
      srcenc -= 8;
    }
  } else {
    if (srcenc < 8) {
      prefix(REX_R);
    } else {
      prefix(REX_RB);
      srcenc -= 8;
    }
    dstenc -= 8;
  }
  emit_byte(0x0F);
  emit_byte(0x28);
  emit_byte(0xC0 | dstenc << 3 | srcenc);
D
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}

1501 1502 1503 1504 1505 1506 1507 1508 1509 1510 1511 1512 1513 1514 1515 1516 1517 1518 1519 1520 1521 1522 1523 1524 1525
void Assembler::movaps(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
  int dstenc = dst->encoding();
  int srcenc = src->encoding();
  if (dstenc < 8) {
    if (srcenc >= 8) {
      prefix(REX_B);
      srcenc -= 8;
    }
  } else {
    if (srcenc < 8) {
      prefix(REX_R);
    } else {
      prefix(REX_RB);
      srcenc -= 8;
    }
    dstenc -= 8;
  }
  emit_byte(0x0F);
  emit_byte(0x28);
  emit_byte(0xC0 | dstenc << 3 | srcenc);
}

void Assembler::movb(Register dst, Address src) {
  NOT_LP64(assert(dst->has_byte_register(), "must have byte register"));
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  InstructionMark im(this);
1527 1528
  prefix(src, dst, true);
  emit_byte(0x8A);
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1529 1530 1531 1532
  emit_operand(dst, src);
}


1533
void Assembler::movb(Address dst, int imm8) {
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  InstructionMark im(this);
1535 1536 1537 1538
   prefix(dst);
  emit_byte(0xC6);
  emit_operand(rax, dst, 1);
  emit_byte(imm8);
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1539 1540
}

1541 1542 1543

void Assembler::movb(Address dst, Register src) {
  assert(src->has_byte_register(), "must have byte register");
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  InstructionMark im(this);
1545 1546
  prefix(dst, src, true);
  emit_byte(0x88);
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  emit_operand(src, dst);
}

1550 1551 1552 1553 1554 1555 1556
void Assembler::movdl(XMMRegister dst, Register src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0x66);
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x6E);
  emit_byte(0xC0 | encode);
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}

1559 1560 1561 1562 1563 1564 1565 1566 1567 1568 1569 1570
void Assembler::movdl(Register dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0x66);
  // swap src/dst to get correct prefix
  int encode = prefix_and_encode(src->encoding(), dst->encoding());
  emit_byte(0x0F);
  emit_byte(0x7E);
  emit_byte(0xC0 | encode);
}

void Assembler::movdqa(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
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  InstructionMark im(this);
1572
  emit_byte(0x66);
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  prefix(src, dst);
1574 1575
  emit_byte(0x0F);
  emit_byte(0x6F);
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1576 1577 1578
  emit_operand(dst, src);
}

1579 1580 1581 1582 1583 1584 1585
void Assembler::movdqa(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0x66);
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x6F);
  emit_byte(0xC0 | encode);
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}

1588 1589
void Assembler::movdqa(Address dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
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  InstructionMark im(this);
1591 1592 1593 1594 1595
  emit_byte(0x66);
  prefix(dst, src);
  emit_byte(0x0F);
  emit_byte(0x7F);
  emit_operand(src, dst);
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}

1598 1599 1600 1601 1602 1603 1604 1605 1606 1607 1608 1609 1610 1611 1612 1613 1614 1615 1616 1617 1618 1619 1620 1621 1622 1623 1624 1625 1626
void Assembler::movdqu(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  InstructionMark im(this);
  emit_byte(0xF3);
  prefix(src, dst);
  emit_byte(0x0F);
  emit_byte(0x6F);
  emit_operand(dst, src);
}

void Assembler::movdqu(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0xF3);
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x6F);
  emit_byte(0xC0 | encode);
}

void Assembler::movdqu(Address dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  InstructionMark im(this);
  emit_byte(0xF3);
  prefix(dst, src);
  emit_byte(0x0F);
  emit_byte(0x7F);
  emit_operand(src, dst);
}

1627 1628 1629 1630 1631 1632
// Uses zero extension on 64bit

void Assembler::movl(Register dst, int32_t imm32) {
  int encode = prefix_and_encode(dst->encoding());
  emit_byte(0xB8 | encode);
  emit_long(imm32);
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}

1635 1636 1637 1638
void Assembler::movl(Register dst, Register src) {
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x8B);
  emit_byte(0xC0 | encode);
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}

1641
void Assembler::movl(Register dst, Address src) {
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  InstructionMark im(this);
1643 1644
  prefix(src, dst);
  emit_byte(0x8B);
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  emit_operand(dst, src);
}

1648 1649 1650 1651 1652 1653
void Assembler::movl(Address dst, int32_t imm32) {
  InstructionMark im(this);
  prefix(dst);
  emit_byte(0xC7);
  emit_operand(rax, dst, 4);
  emit_long(imm32);
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}

1656 1657 1658 1659 1660
void Assembler::movl(Address dst, Register src) {
  InstructionMark im(this);
  prefix(dst, src);
  emit_byte(0x89);
  emit_operand(src, dst);
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}

1663 1664 1665 1666 1667
// New cpus require to use movsd and movss to avoid partial register stall
// when loading from memory. But for old Opteron use movlpd instead of movsd.
// The selection is done in MacroAssembler::movdbl() and movflt().
void Assembler::movlpd(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
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  InstructionMark im(this);
1669
  emit_byte(0x66);
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  prefix(src, dst);
1671 1672
  emit_byte(0x0F);
  emit_byte(0x12);
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  emit_operand(dst, src);
}

1676 1677 1678 1679 1680
void Assembler::movq( MMXRegister dst, Address src ) {
  assert( VM_Version::supports_mmx(), "" );
  emit_byte(0x0F);
  emit_byte(0x6F);
  emit_operand(dst, src);
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}

1683 1684 1685 1686 1687 1688 1689 1690 1691 1692 1693
void Assembler::movq( Address dst, MMXRegister src ) {
  assert( VM_Version::supports_mmx(), "" );
  emit_byte(0x0F);
  emit_byte(0x7F);
  // workaround gcc (3.2.1-7a) bug
  // In that version of gcc with only an emit_operand(MMX, Address)
  // gcc will tail jump and try and reverse the parameters completely
  // obliterating dst in the process. By having a version available
  // that doesn't need to swap the args at the tail jump the bug is
  // avoided.
  emit_operand(dst, src);
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}

1696 1697
void Assembler::movq(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
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  InstructionMark im(this);
1699 1700 1701 1702
  emit_byte(0xF3);
  prefix(src, dst);
  emit_byte(0x0F);
  emit_byte(0x7E);
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  emit_operand(dst, src);
}

1706 1707
void Assembler::movq(Address dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
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  InstructionMark im(this);
1709 1710 1711 1712 1713
  emit_byte(0x66);
  prefix(dst, src);
  emit_byte(0x0F);
  emit_byte(0xD6);
  emit_operand(src, dst);
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}

1716
void Assembler::movsbl(Register dst, Address src) { // movsxb
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  InstructionMark im(this);
1718 1719 1720 1721
  prefix(src, dst);
  emit_byte(0x0F);
  emit_byte(0xBE);
  emit_operand(dst, src);
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}

1724 1725 1726 1727 1728 1729
void Assembler::movsbl(Register dst, Register src) { // movsxb
  NOT_LP64(assert(src->has_byte_register(), "must have byte register"));
  int encode = prefix_and_encode(dst->encoding(), src->encoding(), true);
  emit_byte(0x0F);
  emit_byte(0xBE);
  emit_byte(0xC0 | encode);
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}

1732 1733 1734 1735 1736 1737 1738
void Assembler::movsd(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0xF2);
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x10);
  emit_byte(0xC0 | encode);
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}

1741 1742
void Assembler::movsd(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
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  InstructionMark im(this);
1744
  emit_byte(0xF2);
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  prefix(src, dst);
1746 1747
  emit_byte(0x0F);
  emit_byte(0x10);
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  emit_operand(dst, src);
}

1751 1752
void Assembler::movsd(Address dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
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  InstructionMark im(this);
1754 1755 1756 1757 1758
  emit_byte(0xF2);
  prefix(dst, src);
  emit_byte(0x0F);
  emit_byte(0x11);
  emit_operand(src, dst);
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}

1761 1762 1763 1764 1765 1766 1767
void Assembler::movss(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
  emit_byte(0xF3);
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x10);
  emit_byte(0xC0 | encode);
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}

1770 1771 1772 1773 1774 1775 1776 1777
void Assembler::movss(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
  InstructionMark im(this);
  emit_byte(0xF3);
  prefix(src, dst);
  emit_byte(0x0F);
  emit_byte(0x10);
  emit_operand(dst, src);
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}

1780 1781 1782 1783 1784 1785 1786 1787
void Assembler::movss(Address dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
  InstructionMark im(this);
  emit_byte(0xF3);
  prefix(dst, src);
  emit_byte(0x0F);
  emit_byte(0x11);
  emit_operand(src, dst);
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}

1790
void Assembler::movswl(Register dst, Address src) { // movsxw
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  InstructionMark im(this);
1792 1793 1794
  prefix(src, dst);
  emit_byte(0x0F);
  emit_byte(0xBF);
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  emit_operand(dst, src);
}

1798
void Assembler::movswl(Register dst, Register src) { // movsxw
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  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
1801
  emit_byte(0xBF);
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  emit_byte(0xC0 | encode);
}

1805 1806
void Assembler::movw(Address dst, int imm16) {
  InstructionMark im(this);
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1808 1809 1810 1811 1812
  emit_byte(0x66); // switch to 16-bit mode
  prefix(dst);
  emit_byte(0xC7);
  emit_operand(rax, dst, 2);
  emit_word(imm16);
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}

1815
void Assembler::movw(Register dst, Address src) {
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  InstructionMark im(this);
1817 1818 1819 1820
  emit_byte(0x66);
  prefix(src, dst);
  emit_byte(0x8B);
  emit_operand(dst, src);
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}

1823 1824 1825 1826 1827 1828
void Assembler::movw(Address dst, Register src) {
  InstructionMark im(this);
  emit_byte(0x66);
  prefix(dst, src);
  emit_byte(0x89);
  emit_operand(src, dst);
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}

1831
void Assembler::movzbl(Register dst, Address src) { // movzxb
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  InstructionMark im(this);
1833 1834 1835 1836
  prefix(src, dst);
  emit_byte(0x0F);
  emit_byte(0xB6);
  emit_operand(dst, src);
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}

1839 1840 1841 1842 1843 1844
void Assembler::movzbl(Register dst, Register src) { // movzxb
  NOT_LP64(assert(src->has_byte_register(), "must have byte register"));
  int encode = prefix_and_encode(dst->encoding(), src->encoding(), true);
  emit_byte(0x0F);
  emit_byte(0xB6);
  emit_byte(0xC0 | encode);
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}

1847 1848 1849
void Assembler::movzwl(Register dst, Address src) { // movzxw
  InstructionMark im(this);
  prefix(src, dst);
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  emit_byte(0x0F);
1851 1852
  emit_byte(0xB7);
  emit_operand(dst, src);
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}

1855
void Assembler::movzwl(Register dst, Register src) { // movzxw
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  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
1858
  emit_byte(0xB7);
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  emit_byte(0xC0 | encode);
}

void Assembler::mull(Address src) {
  InstructionMark im(this);
  prefix(src);
  emit_byte(0xF7);
  emit_operand(rsp, src);
}

void Assembler::mull(Register src) {
  int encode = prefix_and_encode(src->encoding());
  emit_byte(0xF7);
  emit_byte(0xE0 | encode);
}

1875 1876
void Assembler::mulsd(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
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  InstructionMark im(this);
1878
  emit_byte(0xF2);
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  prefix(src, dst);
1880 1881
  emit_byte(0x0F);
  emit_byte(0x59);
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  emit_operand(dst, src);
}

1885 1886 1887 1888 1889 1890 1891
void Assembler::mulsd(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0xF2);
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x59);
  emit_byte(0xC0 | encode);
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}

1894 1895
void Assembler::mulss(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
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  InstructionMark im(this);
1897 1898 1899 1900
  emit_byte(0xF3);
  prefix(src, dst);
  emit_byte(0x0F);
  emit_byte(0x59);
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  emit_operand(dst, src);
}

1904 1905 1906 1907 1908 1909 1910
void Assembler::mulss(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
  emit_byte(0xF3);
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x59);
  emit_byte(0xC0 | encode);
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}

1913
void Assembler::negl(Register dst) {
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  int encode = prefix_and_encode(dst->encoding());
1915 1916
  emit_byte(0xF7);
  emit_byte(0xD8 | encode);
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}

1919 1920 1921 1922 1923 1924 1925
void Assembler::nop(int i) {
#ifdef ASSERT
  assert(i > 0, " ");
  // The fancy nops aren't currently recognized by debuggers making it a
  // pain to disassemble code while debugging. If asserts are on clearly
  // speed is not an issue so simply use the single byte traditional nop
  // to do alignment.
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1927 1928
  for (; i > 0 ; i--) emit_byte(0x90);
  return;
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1930
#endif // ASSERT
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1932 1933 1934 1935 1936 1937 1938 1939 1940 1941 1942 1943 1944 1945
  if (UseAddressNop && VM_Version::is_intel()) {
    //
    // Using multi-bytes nops "0x0F 0x1F [address]" for Intel
    //  1: 0x90
    //  2: 0x66 0x90
    //  3: 0x66 0x66 0x90 (don't use "0x0F 0x1F 0x00" - need patching safe padding)
    //  4: 0x0F 0x1F 0x40 0x00
    //  5: 0x0F 0x1F 0x44 0x00 0x00
    //  6: 0x66 0x0F 0x1F 0x44 0x00 0x00
    //  7: 0x0F 0x1F 0x80 0x00 0x00 0x00 0x00
    //  8: 0x0F 0x1F 0x84 0x00 0x00 0x00 0x00 0x00
    //  9: 0x66 0x0F 0x1F 0x84 0x00 0x00 0x00 0x00 0x00
    // 10: 0x66 0x66 0x0F 0x1F 0x84 0x00 0x00 0x00 0x00 0x00
    // 11: 0x66 0x66 0x66 0x0F 0x1F 0x84 0x00 0x00 0x00 0x00 0x00
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1947
    // The rest coding is Intel specific - don't use consecutive address nops
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1949 1950 1951 1952
    // 12: 0x0F 0x1F 0x84 0x00 0x00 0x00 0x00 0x00 0x66 0x66 0x66 0x90
    // 13: 0x66 0x0F 0x1F 0x84 0x00 0x00 0x00 0x00 0x00 0x66 0x66 0x66 0x90
    // 14: 0x66 0x66 0x0F 0x1F 0x84 0x00 0x00 0x00 0x00 0x00 0x66 0x66 0x66 0x90
    // 15: 0x66 0x66 0x66 0x0F 0x1F 0x84 0x00 0x00 0x00 0x00 0x00 0x66 0x66 0x66 0x90
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1954 1955 1956 1957 1958 1959 1960 1961 1962 1963 1964 1965 1966 1967 1968 1969 1970 1971 1972 1973 1974 1975 1976 1977 1978 1979 1980 1981 1982 1983 1984 1985 1986 1987 1988 1989 1990 1991 1992 1993 1994 1995 1996 1997 1998 1999 2000 2001 2002 2003 2004 2005 2006 2007 2008 2009 2010 2011 2012 2013 2014 2015 2016 2017 2018 2019 2020 2021 2022 2023 2024 2025 2026 2027 2028 2029 2030 2031 2032 2033 2034 2035 2036 2037 2038 2039 2040 2041 2042 2043 2044 2045 2046 2047 2048 2049 2050 2051 2052 2053 2054 2055 2056 2057 2058 2059 2060 2061 2062 2063 2064 2065 2066 2067 2068 2069 2070 2071 2072 2073 2074 2075 2076 2077 2078 2079 2080 2081 2082 2083 2084 2085 2086 2087 2088 2089 2090 2091 2092 2093 2094 2095 2096 2097 2098 2099 2100 2101 2102 2103 2104 2105 2106 2107 2108 2109 2110 2111 2112 2113 2114 2115 2116 2117 2118 2119 2120 2121 2122 2123 2124 2125 2126 2127 2128 2129 2130 2131 2132 2133 2134 2135 2136 2137 2138 2139 2140 2141 2142 2143 2144 2145 2146 2147 2148 2149 2150 2151 2152 2153 2154 2155 2156 2157 2158 2159 2160 2161 2162 2163 2164
    while(i >= 15) {
      // For Intel don't generate consecutive addess nops (mix with regular nops)
      i -= 15;
      emit_byte(0x66);   // size prefix
      emit_byte(0x66);   // size prefix
      emit_byte(0x66);   // size prefix
      addr_nop_8();
      emit_byte(0x66);   // size prefix
      emit_byte(0x66);   // size prefix
      emit_byte(0x66);   // size prefix
      emit_byte(0x90);   // nop
    }
    switch (i) {
      case 14:
        emit_byte(0x66); // size prefix
      case 13:
        emit_byte(0x66); // size prefix
      case 12:
        addr_nop_8();
        emit_byte(0x66); // size prefix
        emit_byte(0x66); // size prefix
        emit_byte(0x66); // size prefix
        emit_byte(0x90); // nop
        break;
      case 11:
        emit_byte(0x66); // size prefix
      case 10:
        emit_byte(0x66); // size prefix
      case 9:
        emit_byte(0x66); // size prefix
      case 8:
        addr_nop_8();
        break;
      case 7:
        addr_nop_7();
        break;
      case 6:
        emit_byte(0x66); // size prefix
      case 5:
        addr_nop_5();
        break;
      case 4:
        addr_nop_4();
        break;
      case 3:
        // Don't use "0x0F 0x1F 0x00" - need patching safe padding
        emit_byte(0x66); // size prefix
      case 2:
        emit_byte(0x66); // size prefix
      case 1:
        emit_byte(0x90); // nop
        break;
      default:
        assert(i == 0, " ");
    }
    return;
  }
  if (UseAddressNop && VM_Version::is_amd()) {
    //
    // Using multi-bytes nops "0x0F 0x1F [address]" for AMD.
    //  1: 0x90
    //  2: 0x66 0x90
    //  3: 0x66 0x66 0x90 (don't use "0x0F 0x1F 0x00" - need patching safe padding)
    //  4: 0x0F 0x1F 0x40 0x00
    //  5: 0x0F 0x1F 0x44 0x00 0x00
    //  6: 0x66 0x0F 0x1F 0x44 0x00 0x00
    //  7: 0x0F 0x1F 0x80 0x00 0x00 0x00 0x00
    //  8: 0x0F 0x1F 0x84 0x00 0x00 0x00 0x00 0x00
    //  9: 0x66 0x0F 0x1F 0x84 0x00 0x00 0x00 0x00 0x00
    // 10: 0x66 0x66 0x0F 0x1F 0x84 0x00 0x00 0x00 0x00 0x00
    // 11: 0x66 0x66 0x66 0x0F 0x1F 0x84 0x00 0x00 0x00 0x00 0x00

    // The rest coding is AMD specific - use consecutive address nops

    // 12: 0x66 0x0F 0x1F 0x44 0x00 0x00 0x66 0x0F 0x1F 0x44 0x00 0x00
    // 13: 0x0F 0x1F 0x80 0x00 0x00 0x00 0x00 0x66 0x0F 0x1F 0x44 0x00 0x00
    // 14: 0x0F 0x1F 0x80 0x00 0x00 0x00 0x00 0x0F 0x1F 0x80 0x00 0x00 0x00 0x00
    // 15: 0x0F 0x1F 0x84 0x00 0x00 0x00 0x00 0x00 0x0F 0x1F 0x80 0x00 0x00 0x00 0x00
    // 16: 0x0F 0x1F 0x84 0x00 0x00 0x00 0x00 0x00 0x0F 0x1F 0x84 0x00 0x00 0x00 0x00 0x00
    //     Size prefixes (0x66) are added for larger sizes

    while(i >= 22) {
      i -= 11;
      emit_byte(0x66); // size prefix
      emit_byte(0x66); // size prefix
      emit_byte(0x66); // size prefix
      addr_nop_8();
    }
    // Generate first nop for size between 21-12
    switch (i) {
      case 21:
        i -= 1;
        emit_byte(0x66); // size prefix
      case 20:
      case 19:
        i -= 1;
        emit_byte(0x66); // size prefix
      case 18:
      case 17:
        i -= 1;
        emit_byte(0x66); // size prefix
      case 16:
      case 15:
        i -= 8;
        addr_nop_8();
        break;
      case 14:
      case 13:
        i -= 7;
        addr_nop_7();
        break;
      case 12:
        i -= 6;
        emit_byte(0x66); // size prefix
        addr_nop_5();
        break;
      default:
        assert(i < 12, " ");
    }

    // Generate second nop for size between 11-1
    switch (i) {
      case 11:
        emit_byte(0x66); // size prefix
      case 10:
        emit_byte(0x66); // size prefix
      case 9:
        emit_byte(0x66); // size prefix
      case 8:
        addr_nop_8();
        break;
      case 7:
        addr_nop_7();
        break;
      case 6:
        emit_byte(0x66); // size prefix
      case 5:
        addr_nop_5();
        break;
      case 4:
        addr_nop_4();
        break;
      case 3:
        // Don't use "0x0F 0x1F 0x00" - need patching safe padding
        emit_byte(0x66); // size prefix
      case 2:
        emit_byte(0x66); // size prefix
      case 1:
        emit_byte(0x90); // nop
        break;
      default:
        assert(i == 0, " ");
    }
    return;
  }

  // Using nops with size prefixes "0x66 0x90".
  // From AMD Optimization Guide:
  //  1: 0x90
  //  2: 0x66 0x90
  //  3: 0x66 0x66 0x90
  //  4: 0x66 0x66 0x66 0x90
  //  5: 0x66 0x66 0x90 0x66 0x90
  //  6: 0x66 0x66 0x90 0x66 0x66 0x90
  //  7: 0x66 0x66 0x66 0x90 0x66 0x66 0x90
  //  8: 0x66 0x66 0x66 0x90 0x66 0x66 0x66 0x90
  //  9: 0x66 0x66 0x90 0x66 0x66 0x90 0x66 0x66 0x90
  // 10: 0x66 0x66 0x66 0x90 0x66 0x66 0x90 0x66 0x66 0x90
  //
  while(i > 12) {
    i -= 4;
    emit_byte(0x66); // size prefix
    emit_byte(0x66);
    emit_byte(0x66);
    emit_byte(0x90); // nop
  }
  // 1 - 12 nops
  if(i > 8) {
    if(i > 9) {
      i -= 1;
      emit_byte(0x66);
    }
    i -= 3;
    emit_byte(0x66);
    emit_byte(0x66);
    emit_byte(0x90);
  }
  // 1 - 8 nops
  if(i > 4) {
    if(i > 6) {
      i -= 1;
      emit_byte(0x66);
    }
    i -= 3;
    emit_byte(0x66);
    emit_byte(0x66);
    emit_byte(0x90);
  }
  switch (i) {
    case 4:
      emit_byte(0x66);
    case 3:
      emit_byte(0x66);
    case 2:
      emit_byte(0x66);
    case 1:
      emit_byte(0x90);
      break;
    default:
      assert(i == 0, " ");
  }
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}

2167 2168 2169 2170
void Assembler::notl(Register dst) {
  int encode = prefix_and_encode(dst->encoding());
  emit_byte(0xF7);
  emit_byte(0xD0 | encode );
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}

2173
void Assembler::orl(Address dst, int32_t imm32) {
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  InstructionMark im(this);
2175 2176 2177 2178
  prefix(dst);
  emit_byte(0x81);
  emit_operand(rcx, dst, 4);
  emit_long(imm32);
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}

2181 2182 2183
void Assembler::orl(Register dst, int32_t imm32) {
  prefix(dst);
  emit_arith(0x81, 0xC8, dst, imm32);
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}

2186 2187

void Assembler::orl(Register dst, Address src) {
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  InstructionMark im(this);
2189 2190
  prefix(src, dst);
  emit_byte(0x0B);
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  emit_operand(dst, src);
}

2194 2195 2196 2197

void Assembler::orl(Register dst, Register src) {
  (void) prefix_and_encode(dst->encoding(), src->encoding());
  emit_arith(0x0B, 0xC0, dst, src);
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}

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2200 2201 2202 2203 2204 2205 2206 2207 2208 2209 2210 2211 2212 2213 2214 2215 2216 2217 2218 2219 2220 2221 2222 2223 2224
void Assembler::pcmpestri(XMMRegister dst, Address src, int imm8) {
  assert(VM_Version::supports_sse4_2(), "");

  InstructionMark im(this);
  emit_byte(0x66);
  prefix(src, dst);
  emit_byte(0x0F);
  emit_byte(0x3A);
  emit_byte(0x61);
  emit_operand(dst, src);
  emit_byte(imm8);
}

void Assembler::pcmpestri(XMMRegister dst, XMMRegister src, int imm8) {
  assert(VM_Version::supports_sse4_2(), "");

  emit_byte(0x66);
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x3A);
  emit_byte(0x61);
  emit_byte(0xC0 | encode);
  emit_byte(imm8);
}

2225 2226
// generic
void Assembler::pop(Register dst) {
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  int encode = prefix_and_encode(dst->encoding());
2228
  emit_byte(0x58 | encode);
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}

2231 2232 2233 2234 2235 2236 2237 2238 2239 2240 2241 2242 2243 2244 2245 2246 2247 2248 2249
void Assembler::popcntl(Register dst, Address src) {
  assert(VM_Version::supports_popcnt(), "must support");
  InstructionMark im(this);
  emit_byte(0xF3);
  prefix(src, dst);
  emit_byte(0x0F);
  emit_byte(0xB8);
  emit_operand(dst, src);
}

void Assembler::popcntl(Register dst, Register src) {
  assert(VM_Version::supports_popcnt(), "must support");
  emit_byte(0xF3);
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0xB8);
  emit_byte(0xC0 | encode);
}

2250 2251
void Assembler::popf() {
  emit_byte(0x9D);
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}

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#ifndef _LP64 // no 32bit push/pop on amd64
2255 2256 2257 2258 2259 2260
void Assembler::popl(Address dst) {
  // NOTE: this will adjust stack by 8byte on 64bits
  InstructionMark im(this);
  prefix(dst);
  emit_byte(0x8F);
  emit_operand(rax, dst);
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}
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#endif
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2264 2265 2266
void Assembler::prefetch_prefix(Address src) {
  prefix(src);
  emit_byte(0x0F);
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}

2269 2270 2271 2272 2273 2274
void Assembler::prefetchnta(Address src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), "must support"));
  InstructionMark im(this);
  prefetch_prefix(src);
  emit_byte(0x18);
  emit_operand(rax, src); // 0, src
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}

2277 2278 2279 2280 2281 2282
void Assembler::prefetchr(Address src) {
  NOT_LP64(assert(VM_Version::supports_3dnow(), "must support"));
  InstructionMark im(this);
  prefetch_prefix(src);
  emit_byte(0x0D);
  emit_operand(rax, src); // 0, src
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}

2285 2286 2287 2288 2289 2290
void Assembler::prefetcht0(Address src) {
  NOT_LP64(assert(VM_Version::supports_sse(), "must support"));
  InstructionMark im(this);
  prefetch_prefix(src);
  emit_byte(0x18);
  emit_operand(rcx, src); // 1, src
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}

2293 2294
void Assembler::prefetcht1(Address src) {
  NOT_LP64(assert(VM_Version::supports_sse(), "must support"));
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  InstructionMark im(this);
2296 2297 2298
  prefetch_prefix(src);
  emit_byte(0x18);
  emit_operand(rdx, src); // 2, src
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}

2301 2302 2303 2304 2305 2306
void Assembler::prefetcht2(Address src) {
  NOT_LP64(assert(VM_Version::supports_sse(), "must support"));
  InstructionMark im(this);
  prefetch_prefix(src);
  emit_byte(0x18);
  emit_operand(rbx, src); // 3, src
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}

2309 2310
void Assembler::prefetchw(Address src) {
  NOT_LP64(assert(VM_Version::supports_3dnow(), "must support"));
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  InstructionMark im(this);
2312 2313 2314
  prefetch_prefix(src);
  emit_byte(0x0D);
  emit_operand(rcx, src); // 1, src
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}

2317 2318
void Assembler::prefix(Prefix p) {
  a_byte(p);
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}

2321 2322 2323 2324 2325 2326 2327 2328 2329 2330 2331
void Assembler::pshufd(XMMRegister dst, XMMRegister src, int mode) {
  assert(isByte(mode), "invalid value");
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));

  emit_byte(0x66);
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x70);
  emit_byte(0xC0 | encode);
  emit_byte(mode & 0xFF);

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}

2334 2335 2336 2337
void Assembler::pshufd(XMMRegister dst, Address src, int mode) {
  assert(isByte(mode), "invalid value");
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));

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  InstructionMark im(this);
2339 2340 2341 2342 2343 2344
  emit_byte(0x66);
  prefix(src, dst);
  emit_byte(0x0F);
  emit_byte(0x70);
  emit_operand(dst, src);
  emit_byte(mode & 0xFF);
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}

2347 2348 2349
void Assembler::pshuflw(XMMRegister dst, XMMRegister src, int mode) {
  assert(isByte(mode), "invalid value");
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
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2351 2352 2353 2354 2355 2356
  emit_byte(0xF2);
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x70);
  emit_byte(0xC0 | encode);
  emit_byte(mode & 0xFF);
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}

2359 2360 2361 2362
void Assembler::pshuflw(XMMRegister dst, Address src, int mode) {
  assert(isByte(mode), "invalid value");
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));

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  InstructionMark im(this);
2364 2365 2366 2367
  emit_byte(0xF2);
  prefix(src, dst); // QQ new
  emit_byte(0x0F);
  emit_byte(0x70);
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  emit_operand(dst, src);
2369
  emit_byte(mode & 0xFF);
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}

2372 2373 2374 2375 2376 2377 2378 2379 2380 2381
void Assembler::psrlq(XMMRegister dst, int shift) {
  // HMM Table D-1 says sse2 or mmx
  NOT_LP64(assert(VM_Version::supports_sse(), ""));

  int encode = prefixq_and_encode(xmm2->encoding(), dst->encoding());
  emit_byte(0x66);
  emit_byte(0x0F);
  emit_byte(0x73);
  emit_byte(0xC0 | encode);
  emit_byte(shift);
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}

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2384 2385 2386 2387 2388 2389 2390 2391 2392 2393 2394 2395 2396 2397 2398 2399 2400 2401 2402 2403 2404 2405 2406
void Assembler::ptest(XMMRegister dst, Address src) {
  assert(VM_Version::supports_sse4_1(), "");

  InstructionMark im(this);
  emit_byte(0x66);
  prefix(src, dst);
  emit_byte(0x0F);
  emit_byte(0x38);
  emit_byte(0x17);
  emit_operand(dst, src);
}

void Assembler::ptest(XMMRegister dst, XMMRegister src) {
  assert(VM_Version::supports_sse4_1(), "");

  emit_byte(0x66);
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x38);
  emit_byte(0x17);
  emit_byte(0xC0 | encode);
}

2407 2408 2409 2410 2411 2412 2413
void Assembler::punpcklbw(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0x66);
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x60);
  emit_byte(0xC0 | encode);
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}

2416 2417 2418 2419
void Assembler::push(int32_t imm32) {
  // in 64bits we push 64bits onto the stack but only
  // take a 32bit immediate
  emit_byte(0x68);
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  emit_long(imm32);
}

2423 2424 2425 2426
void Assembler::push(Register src) {
  int encode = prefix_and_encode(src->encoding());

  emit_byte(0x50 | encode);
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}

2429 2430
void Assembler::pushf() {
  emit_byte(0x9C);
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}

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#ifndef _LP64 // no 32bit push/pop on amd64
2434 2435 2436 2437 2438 2439
void Assembler::pushl(Address src) {
  // Note this will push 64bit on 64bit
  InstructionMark im(this);
  prefix(src);
  emit_byte(0xFF);
  emit_operand(rsi, src);
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}
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#endif
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2443 2444
void Assembler::pxor(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
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  InstructionMark im(this);
2446 2447
  emit_byte(0x66);
  prefix(src, dst);
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  emit_byte(0x0F);
2449 2450
  emit_byte(0xEF);
  emit_operand(dst, src);
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}

2453 2454
void Assembler::pxor(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
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  InstructionMark im(this);
2456 2457
  emit_byte(0x66);
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
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  emit_byte(0x0F);
2459 2460
  emit_byte(0xEF);
  emit_byte(0xC0 | encode);
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}

2463 2464 2465 2466 2467 2468 2469 2470 2471 2472 2473
void Assembler::rcll(Register dst, int imm8) {
  assert(isShiftCount(imm8), "illegal shift count");
  int encode = prefix_and_encode(dst->encoding());
  if (imm8 == 1) {
    emit_byte(0xD1);
    emit_byte(0xD0 | encode);
  } else {
    emit_byte(0xC1);
    emit_byte(0xD0 | encode);
    emit_byte(imm8);
  }
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}

2476 2477 2478 2479 2480 2481 2482
// copies data from [esi] to [edi] using rcx pointer sized words
// generic
void Assembler::rep_mov() {
  emit_byte(0xF3);
  // MOVSQ
  LP64_ONLY(prefix(REX_W));
  emit_byte(0xA5);
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}

2485 2486 2487 2488 2489 2490 2491 2492 2493 2494 2495 2496 2497 2498 2499 2500 2501 2502 2503 2504 2505 2506 2507 2508 2509 2510 2511 2512 2513 2514 2515 2516 2517 2518 2519 2520 2521 2522 2523 2524 2525 2526 2527 2528 2529 2530 2531 2532 2533 2534 2535 2536 2537 2538 2539 2540 2541 2542 2543 2544 2545 2546 2547 2548 2549 2550 2551 2552 2553 2554 2555 2556 2557 2558 2559 2560 2561
// sets rcx pointer sized words with rax, value at [edi]
// generic
void Assembler::rep_set() { // rep_set
  emit_byte(0xF3);
  // STOSQ
  LP64_ONLY(prefix(REX_W));
  emit_byte(0xAB);
}

// scans rcx pointer sized words at [edi] for occurance of rax,
// generic
void Assembler::repne_scan() { // repne_scan
  emit_byte(0xF2);
  // SCASQ
  LP64_ONLY(prefix(REX_W));
  emit_byte(0xAF);
}

#ifdef _LP64
// scans rcx 4 byte words at [edi] for occurance of rax,
// generic
void Assembler::repne_scanl() { // repne_scan
  emit_byte(0xF2);
  // SCASL
  emit_byte(0xAF);
}
#endif

void Assembler::ret(int imm16) {
  if (imm16 == 0) {
    emit_byte(0xC3);
  } else {
    emit_byte(0xC2);
    emit_word(imm16);
  }
}

void Assembler::sahf() {
#ifdef _LP64
  // Not supported in 64bit mode
  ShouldNotReachHere();
#endif
  emit_byte(0x9E);
}

void Assembler::sarl(Register dst, int imm8) {
  int encode = prefix_and_encode(dst->encoding());
  assert(isShiftCount(imm8), "illegal shift count");
  if (imm8 == 1) {
    emit_byte(0xD1);
    emit_byte(0xF8 | encode);
  } else {
    emit_byte(0xC1);
    emit_byte(0xF8 | encode);
    emit_byte(imm8);
  }
}

void Assembler::sarl(Register dst) {
  int encode = prefix_and_encode(dst->encoding());
  emit_byte(0xD3);
  emit_byte(0xF8 | encode);
}

void Assembler::sbbl(Address dst, int32_t imm32) {
  InstructionMark im(this);
  prefix(dst);
  emit_arith_operand(0x81, rbx, dst, imm32);
}

void Assembler::sbbl(Register dst, int32_t imm32) {
  prefix(dst);
  emit_arith(0x81, 0xD8, dst, imm32);
}


void Assembler::sbbl(Register dst, Address src) {
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  InstructionMark im(this);
  prefix(src, dst);
2564
  emit_byte(0x1B);
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  emit_operand(dst, src);
}

2568 2569 2570
void Assembler::sbbl(Register dst, Register src) {
  (void) prefix_and_encode(dst->encoding(), src->encoding());
  emit_arith(0x1B, 0xC0, dst, src);
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}

2573 2574 2575 2576 2577 2578
void Assembler::setb(Condition cc, Register dst) {
  assert(0 <= cc && cc < 16, "illegal cc");
  int encode = prefix_and_encode(dst->encoding(), true);
  emit_byte(0x0F);
  emit_byte(0x90 | cc);
  emit_byte(0xC0 | encode);
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}

2581 2582 2583 2584 2585 2586 2587 2588 2589 2590 2591
void Assembler::shll(Register dst, int imm8) {
  assert(isShiftCount(imm8), "illegal shift count");
  int encode = prefix_and_encode(dst->encoding());
  if (imm8 == 1 ) {
    emit_byte(0xD1);
    emit_byte(0xE0 | encode);
  } else {
    emit_byte(0xC1);
    emit_byte(0xE0 | encode);
    emit_byte(imm8);
  }
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}

2594 2595 2596 2597 2598 2599 2600 2601 2602 2603 2604 2605 2606 2607 2608 2609 2610 2611 2612 2613 2614 2615 2616 2617 2618 2619 2620 2621 2622 2623 2624
void Assembler::shll(Register dst) {
  int encode = prefix_and_encode(dst->encoding());
  emit_byte(0xD3);
  emit_byte(0xE0 | encode);
}

void Assembler::shrl(Register dst, int imm8) {
  assert(isShiftCount(imm8), "illegal shift count");
  int encode = prefix_and_encode(dst->encoding());
  emit_byte(0xC1);
  emit_byte(0xE8 | encode);
  emit_byte(imm8);
}

void Assembler::shrl(Register dst) {
  int encode = prefix_and_encode(dst->encoding());
  emit_byte(0xD3);
  emit_byte(0xE8 | encode);
}

// copies a single word from [esi] to [edi]
void Assembler::smovl() {
  emit_byte(0xA5);
}

void Assembler::sqrtsd(XMMRegister dst, XMMRegister src) {
  // HMM Table D-1 says sse2
  // NOT_LP64(assert(VM_Version::supports_sse(), ""));
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0xF2);
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
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  emit_byte(0x0F);
2626 2627
  emit_byte(0x51);
  emit_byte(0xC0 | encode);
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}

2630 2631 2632 2633
void Assembler::stmxcsr( Address dst) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
  InstructionMark im(this);
  prefix(dst);
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  emit_byte(0x0F);
2635 2636
  emit_byte(0xAE);
  emit_operand(as_Register(3), dst);
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}

2639 2640 2641 2642 2643 2644 2645 2646 2647 2648 2649 2650
void Assembler::subl(Address dst, int32_t imm32) {
  InstructionMark im(this);
  prefix(dst);
  if (is8bit(imm32)) {
    emit_byte(0x83);
    emit_operand(rbp, dst, 1);
    emit_byte(imm32 & 0xFF);
  } else {
    emit_byte(0x81);
    emit_operand(rbp, dst, 4);
    emit_long(imm32);
  }
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}

2653 2654 2655 2656 2657 2658 2659 2660 2661 2662 2663 2664 2665
void Assembler::subl(Register dst, int32_t imm32) {
  prefix(dst);
  emit_arith(0x81, 0xE8, dst, imm32);
}

void Assembler::subl(Address dst, Register src) {
  InstructionMark im(this);
  prefix(dst, src);
  emit_byte(0x29);
  emit_operand(src, dst);
}

void Assembler::subl(Register dst, Address src) {
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  InstructionMark im(this);
  prefix(src, dst);
2668
  emit_byte(0x2B);
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  emit_operand(dst, src);
}

2672 2673 2674 2675 2676 2677 2678 2679
void Assembler::subl(Register dst, Register src) {
  (void) prefix_and_encode(dst->encoding(), src->encoding());
  emit_arith(0x2B, 0xC0, dst, src);
}

void Assembler::subsd(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0xF2);
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  int encode = prefix_and_encode(dst->encoding(), src->encoding());
2681 2682 2683
  emit_byte(0x0F);
  emit_byte(0x5C);
  emit_byte(0xC0 | encode);
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}

2686 2687
void Assembler::subsd(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
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  InstructionMark im(this);
2689 2690 2691 2692
  emit_byte(0xF2);
  prefix(src, dst);
  emit_byte(0x0F);
  emit_byte(0x5C);
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  emit_operand(dst, src);
}

2696 2697 2698 2699 2700 2701 2702
void Assembler::subss(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
  emit_byte(0xF3);
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x5C);
  emit_byte(0xC0 | encode);
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}

2705 2706
void Assembler::subss(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
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  InstructionMark im(this);
2708 2709
  emit_byte(0xF3);
  prefix(src, dst);
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  emit_byte(0x0F);
2711 2712
  emit_byte(0x5C);
  emit_operand(dst, src);
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}

2715 2716 2717 2718
void Assembler::testb(Register dst, int imm8) {
  NOT_LP64(assert(dst->has_byte_register(), "must have byte register"));
  (void) prefix_and_encode(dst->encoding(), true);
  emit_arith_b(0xF6, 0xC0, dst, imm8);
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}

2721 2722 2723 2724 2725 2726 2727 2728 2729 2730 2731 2732 2733
void Assembler::testl(Register dst, int32_t imm32) {
  // not using emit_arith because test
  // doesn't support sign-extension of
  // 8bit operands
  int encode = dst->encoding();
  if (encode == 0) {
    emit_byte(0xA9);
  } else {
    encode = prefix_and_encode(encode);
    emit_byte(0xF7);
    emit_byte(0xC0 | encode);
  }
  emit_long(imm32);
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}

2736 2737 2738 2739
void Assembler::testl(Register dst, Register src) {
  (void) prefix_and_encode(dst->encoding(), src->encoding());
  emit_arith(0x85, 0xC0, dst, src);
}
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void Assembler::testl(Register dst, Address  src) {
  InstructionMark im(this);
  prefix(src, dst);
  emit_byte(0x85);
  emit_operand(dst, src);
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}

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void Assembler::ucomisd(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0x66);
  ucomiss(dst, src);
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}

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void Assembler::ucomisd(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0x66);
  ucomiss(dst, src);
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}

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void Assembler::ucomiss(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));

  InstructionMark im(this);
  prefix(src, dst);
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  emit_byte(0x0F);
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  emit_byte(0x2E);
  emit_operand(dst, src);
}

void Assembler::ucomiss(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x2E);
  emit_byte(0xC0 | encode);
}


void Assembler::xaddl(Address dst, Register src) {
  InstructionMark im(this);
  prefix(dst, src);
  emit_byte(0x0F);
  emit_byte(0xC1);
  emit_operand(src, dst);
}

void Assembler::xchgl(Register dst, Address src) { // xchg
  InstructionMark im(this);
  prefix(src, dst);
  emit_byte(0x87);
  emit_operand(dst, src);
}

void Assembler::xchgl(Register dst, Register src) {
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x87);
  emit_byte(0xc0 | encode);
}

void Assembler::xorl(Register dst, int32_t imm32) {
  prefix(dst);
  emit_arith(0x81, 0xF0, dst, imm32);
}

void Assembler::xorl(Register dst, Address src) {
  InstructionMark im(this);
  prefix(src, dst);
  emit_byte(0x33);
  emit_operand(dst, src);
}

void Assembler::xorl(Register dst, Register src) {
  (void) prefix_and_encode(dst->encoding(), src->encoding());
  emit_arith(0x33, 0xC0, dst, src);
}

void Assembler::xorpd(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0x66);
  xorps(dst, src);
}

void Assembler::xorpd(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  InstructionMark im(this);
  emit_byte(0x66);
  prefix(src, dst);
  emit_byte(0x0F);
  emit_byte(0x57);
  emit_operand(dst, src);
}


void Assembler::xorps(XMMRegister dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
  int encode = prefix_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x57);
  emit_byte(0xC0 | encode);
}

void Assembler::xorps(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
  InstructionMark im(this);
  prefix(src, dst);
  emit_byte(0x0F);
  emit_byte(0x57);
  emit_operand(dst, src);
}

#ifndef _LP64
// 32bit only pieces of the assembler

void Assembler::cmp_literal32(Register src1, int32_t imm32, RelocationHolder const& rspec) {
  // NO PREFIX AS NEVER 64BIT
  InstructionMark im(this);
  emit_byte(0x81);
  emit_byte(0xF8 | src1->encoding());
  emit_data(imm32, rspec, 0);
}

void Assembler::cmp_literal32(Address src1, int32_t imm32, RelocationHolder const& rspec) {
  // NO PREFIX AS NEVER 64BIT (not even 32bit versions of 64bit regs
  InstructionMark im(this);
  emit_byte(0x81);
  emit_operand(rdi, src1);
  emit_data(imm32, rspec, 0);
}

// The 64-bit (32bit platform) cmpxchg compares the value at adr with the contents of rdx:rax,
// and stores rcx:rbx into adr if so; otherwise, the value at adr is loaded
// into rdx:rax.  The ZF is set if the compared values were equal, and cleared otherwise.
void Assembler::cmpxchg8(Address adr) {
  InstructionMark im(this);
  emit_byte(0x0F);
  emit_byte(0xc7);
  emit_operand(rcx, adr);
}

void Assembler::decl(Register dst) {
  // Don't use it directly. Use MacroAssembler::decrementl() instead.
 emit_byte(0x48 | dst->encoding());
}

#endif // _LP64

// 64bit typically doesn't use the x87 but needs to for the trig funcs

void Assembler::fabs() {
  emit_byte(0xD9);
  emit_byte(0xE1);
}

void Assembler::fadd(int i) {
  emit_farith(0xD8, 0xC0, i);
}

void Assembler::fadd_d(Address src) {
  InstructionMark im(this);
  emit_byte(0xDC);
  emit_operand32(rax, src);
}

void Assembler::fadd_s(Address src) {
  InstructionMark im(this);
  emit_byte(0xD8);
  emit_operand32(rax, src);
}

void Assembler::fadda(int i) {
  emit_farith(0xDC, 0xC0, i);
}

void Assembler::faddp(int i) {
  emit_farith(0xDE, 0xC0, i);
}

void Assembler::fchs() {
  emit_byte(0xD9);
  emit_byte(0xE0);
}

void Assembler::fcom(int i) {
  emit_farith(0xD8, 0xD0, i);
}

void Assembler::fcomp(int i) {
  emit_farith(0xD8, 0xD8, i);
}

void Assembler::fcomp_d(Address src) {
  InstructionMark im(this);
  emit_byte(0xDC);
  emit_operand32(rbx, src);
}

void Assembler::fcomp_s(Address src) {
  InstructionMark im(this);
  emit_byte(0xD8);
  emit_operand32(rbx, src);
}

void Assembler::fcompp() {
  emit_byte(0xDE);
  emit_byte(0xD9);
}

void Assembler::fcos() {
  emit_byte(0xD9);
  emit_byte(0xFF);
}

void Assembler::fdecstp() {
  emit_byte(0xD9);
  emit_byte(0xF6);
}

void Assembler::fdiv(int i) {
  emit_farith(0xD8, 0xF0, i);
}

void Assembler::fdiv_d(Address src) {
  InstructionMark im(this);
  emit_byte(0xDC);
  emit_operand32(rsi, src);
}

void Assembler::fdiv_s(Address src) {
  InstructionMark im(this);
  emit_byte(0xD8);
  emit_operand32(rsi, src);
}

void Assembler::fdiva(int i) {
  emit_farith(0xDC, 0xF8, i);
}

// Note: The Intel manual (Pentium Processor User's Manual, Vol.3, 1994)
//       is erroneous for some of the floating-point instructions below.

void Assembler::fdivp(int i) {
  emit_farith(0xDE, 0xF8, i);                    // ST(0) <- ST(0) / ST(1) and pop (Intel manual wrong)
}

void Assembler::fdivr(int i) {
  emit_farith(0xD8, 0xF8, i);
}

void Assembler::fdivr_d(Address src) {
  InstructionMark im(this);
  emit_byte(0xDC);
  emit_operand32(rdi, src);
}

void Assembler::fdivr_s(Address src) {
  InstructionMark im(this);
  emit_byte(0xD8);
  emit_operand32(rdi, src);
}

void Assembler::fdivra(int i) {
  emit_farith(0xDC, 0xF0, i);
}

void Assembler::fdivrp(int i) {
  emit_farith(0xDE, 0xF0, i);                    // ST(0) <- ST(1) / ST(0) and pop (Intel manual wrong)
}

void Assembler::ffree(int i) {
  emit_farith(0xDD, 0xC0, i);
}

void Assembler::fild_d(Address adr) {
  InstructionMark im(this);
  emit_byte(0xDF);
  emit_operand32(rbp, adr);
}

void Assembler::fild_s(Address adr) {
  InstructionMark im(this);
  emit_byte(0xDB);
  emit_operand32(rax, adr);
}

void Assembler::fincstp() {
  emit_byte(0xD9);
  emit_byte(0xF7);
}

void Assembler::finit() {
  emit_byte(0x9B);
  emit_byte(0xDB);
  emit_byte(0xE3);
}

void Assembler::fist_s(Address adr) {
  InstructionMark im(this);
  emit_byte(0xDB);
  emit_operand32(rdx, adr);
}

void Assembler::fistp_d(Address adr) {
  InstructionMark im(this);
  emit_byte(0xDF);
  emit_operand32(rdi, adr);
}

void Assembler::fistp_s(Address adr) {
  InstructionMark im(this);
  emit_byte(0xDB);
  emit_operand32(rbx, adr);
}

void Assembler::fld1() {
  emit_byte(0xD9);
  emit_byte(0xE8);
}

void Assembler::fld_d(Address adr) {
  InstructionMark im(this);
  emit_byte(0xDD);
  emit_operand32(rax, adr);
}

void Assembler::fld_s(Address adr) {
  InstructionMark im(this);
  emit_byte(0xD9);
  emit_operand32(rax, adr);
}


void Assembler::fld_s(int index) {
  emit_farith(0xD9, 0xC0, index);
}

void Assembler::fld_x(Address adr) {
  InstructionMark im(this);
  emit_byte(0xDB);
  emit_operand32(rbp, adr);
}

void Assembler::fldcw(Address src) {
  InstructionMark im(this);
  emit_byte(0xd9);
  emit_operand32(rbp, src);
}

void Assembler::fldenv(Address src) {
  InstructionMark im(this);
  emit_byte(0xD9);
  emit_operand32(rsp, src);
}

void Assembler::fldlg2() {
  emit_byte(0xD9);
  emit_byte(0xEC);
}

void Assembler::fldln2() {
  emit_byte(0xD9);
  emit_byte(0xED);
}

void Assembler::fldz() {
  emit_byte(0xD9);
  emit_byte(0xEE);
}

void Assembler::flog() {
  fldln2();
  fxch();
  fyl2x();
}

void Assembler::flog10() {
  fldlg2();
  fxch();
  fyl2x();
}

void Assembler::fmul(int i) {
  emit_farith(0xD8, 0xC8, i);
}

void Assembler::fmul_d(Address src) {
  InstructionMark im(this);
  emit_byte(0xDC);
  emit_operand32(rcx, src);
}

void Assembler::fmul_s(Address src) {
  InstructionMark im(this);
  emit_byte(0xD8);
  emit_operand32(rcx, src);
}

void Assembler::fmula(int i) {
  emit_farith(0xDC, 0xC8, i);
}

void Assembler::fmulp(int i) {
  emit_farith(0xDE, 0xC8, i);
}

void Assembler::fnsave(Address dst) {
  InstructionMark im(this);
  emit_byte(0xDD);
  emit_operand32(rsi, dst);
}

void Assembler::fnstcw(Address src) {
  InstructionMark im(this);
  emit_byte(0x9B);
  emit_byte(0xD9);
  emit_operand32(rdi, src);
}

void Assembler::fnstsw_ax() {
  emit_byte(0xdF);
  emit_byte(0xE0);
}

void Assembler::fprem() {
  emit_byte(0xD9);
  emit_byte(0xF8);
}

void Assembler::fprem1() {
  emit_byte(0xD9);
  emit_byte(0xF5);
}

void Assembler::frstor(Address src) {
  InstructionMark im(this);
  emit_byte(0xDD);
  emit_operand32(rsp, src);
}

void Assembler::fsin() {
  emit_byte(0xD9);
  emit_byte(0xFE);
}

void Assembler::fsqrt() {
  emit_byte(0xD9);
  emit_byte(0xFA);
}

void Assembler::fst_d(Address adr) {
  InstructionMark im(this);
  emit_byte(0xDD);
  emit_operand32(rdx, adr);
}

void Assembler::fst_s(Address adr) {
  InstructionMark im(this);
  emit_byte(0xD9);
  emit_operand32(rdx, adr);
}

void Assembler::fstp_d(Address adr) {
  InstructionMark im(this);
  emit_byte(0xDD);
  emit_operand32(rbx, adr);
}

void Assembler::fstp_d(int index) {
  emit_farith(0xDD, 0xD8, index);
}

void Assembler::fstp_s(Address adr) {
  InstructionMark im(this);
  emit_byte(0xD9);
  emit_operand32(rbx, adr);
}

void Assembler::fstp_x(Address adr) {
  InstructionMark im(this);
  emit_byte(0xDB);
  emit_operand32(rdi, adr);
}

void Assembler::fsub(int i) {
  emit_farith(0xD8, 0xE0, i);
}

void Assembler::fsub_d(Address src) {
  InstructionMark im(this);
  emit_byte(0xDC);
  emit_operand32(rsp, src);
}

void Assembler::fsub_s(Address src) {
  InstructionMark im(this);
  emit_byte(0xD8);
  emit_operand32(rsp, src);
}

void Assembler::fsuba(int i) {
  emit_farith(0xDC, 0xE8, i);
}

void Assembler::fsubp(int i) {
  emit_farith(0xDE, 0xE8, i);                    // ST(0) <- ST(0) - ST(1) and pop (Intel manual wrong)
}

void Assembler::fsubr(int i) {
  emit_farith(0xD8, 0xE8, i);
}

void Assembler::fsubr_d(Address src) {
  InstructionMark im(this);
  emit_byte(0xDC);
  emit_operand32(rbp, src);
}

void Assembler::fsubr_s(Address src) {
  InstructionMark im(this);
  emit_byte(0xD8);
  emit_operand32(rbp, src);
}

void Assembler::fsubra(int i) {
  emit_farith(0xDC, 0xE0, i);
}

void Assembler::fsubrp(int i) {
  emit_farith(0xDE, 0xE0, i);                    // ST(0) <- ST(1) - ST(0) and pop (Intel manual wrong)
}

void Assembler::ftan() {
  emit_byte(0xD9);
  emit_byte(0xF2);
  emit_byte(0xDD);
  emit_byte(0xD8);
}

void Assembler::ftst() {
  emit_byte(0xD9);
  emit_byte(0xE4);
}

void Assembler::fucomi(int i) {
  // make sure the instruction is supported (introduced for P6, together with cmov)
  guarantee(VM_Version::supports_cmov(), "illegal instruction");
  emit_farith(0xDB, 0xE8, i);
}

void Assembler::fucomip(int i) {
  // make sure the instruction is supported (introduced for P6, together with cmov)
  guarantee(VM_Version::supports_cmov(), "illegal instruction");
  emit_farith(0xDF, 0xE8, i);
}

void Assembler::fwait() {
  emit_byte(0x9B);
}

void Assembler::fxch(int i) {
  emit_farith(0xD9, 0xC8, i);
}

void Assembler::fyl2x() {
  emit_byte(0xD9);
  emit_byte(0xF1);
}


#ifndef _LP64

void Assembler::incl(Register dst) {
  // Don't use it directly. Use MacroAssembler::incrementl() instead.
 emit_byte(0x40 | dst->encoding());
}

void Assembler::lea(Register dst, Address src) {
  leal(dst, src);
}

void Assembler::mov_literal32(Address dst, int32_t imm32,  RelocationHolder const& rspec) {
  InstructionMark im(this);
  emit_byte(0xC7);
  emit_operand(rax, dst);
  emit_data((int)imm32, rspec, 0);
}

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void Assembler::mov_literal32(Register dst, int32_t imm32, RelocationHolder const& rspec) {
  InstructionMark im(this);
  int encode = prefix_and_encode(dst->encoding());
  emit_byte(0xB8 | encode);
  emit_data((int)imm32, rspec, 0);
}
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void Assembler::popa() { // 32bit
  emit_byte(0x61);
}

void Assembler::push_literal32(int32_t imm32, RelocationHolder const& rspec) {
  InstructionMark im(this);
  emit_byte(0x68);
  emit_data(imm32, rspec, 0);
}

void Assembler::pusha() { // 32bit
  emit_byte(0x60);
}

void Assembler::set_byte_if_not_zero(Register dst) {
  emit_byte(0x0F);
  emit_byte(0x95);
  emit_byte(0xE0 | dst->encoding());
}

void Assembler::shldl(Register dst, Register src) {
  emit_byte(0x0F);
  emit_byte(0xA5);
  emit_byte(0xC0 | src->encoding() << 3 | dst->encoding());
}

void Assembler::shrdl(Register dst, Register src) {
  emit_byte(0x0F);
  emit_byte(0xAD);
  emit_byte(0xC0 | src->encoding() << 3 | dst->encoding());
}

#else // LP64

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void Assembler::set_byte_if_not_zero(Register dst) {
  int enc = prefix_and_encode(dst->encoding(), true);
  emit_byte(0x0F);
  emit_byte(0x95);
  emit_byte(0xE0 | enc);
}

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// 64bit only pieces of the assembler
// This should only be used by 64bit instructions that can use rip-relative
// it cannot be used by instructions that want an immediate value.

bool Assembler::reachable(AddressLiteral adr) {
  int64_t disp;
  // None will force a 64bit literal to the code stream. Likely a placeholder
  // for something that will be patched later and we need to certain it will
  // always be reachable.
  if (adr.reloc() == relocInfo::none) {
    return false;
  }
  if (adr.reloc() == relocInfo::internal_word_type) {
    // This should be rip relative and easily reachable.
    return true;
  }
  if (adr.reloc() == relocInfo::virtual_call_type ||
      adr.reloc() == relocInfo::opt_virtual_call_type ||
      adr.reloc() == relocInfo::static_call_type ||
      adr.reloc() == relocInfo::static_stub_type ) {
    // This should be rip relative within the code cache and easily
    // reachable until we get huge code caches. (At which point
    // ic code is going to have issues).
    return true;
  }
  if (adr.reloc() != relocInfo::external_word_type &&
      adr.reloc() != relocInfo::poll_return_type &&  // these are really external_word but need special
      adr.reloc() != relocInfo::poll_type &&         // relocs to identify them
      adr.reloc() != relocInfo::runtime_call_type ) {
    return false;
  }

  // Stress the correction code
  if (ForceUnreachable) {
    // Must be runtimecall reloc, see if it is in the codecache
    // Flipping stuff in the codecache to be unreachable causes issues
    // with things like inline caches where the additional instructions
    // are not handled.
    if (CodeCache::find_blob(adr._target) == NULL) {
      return false;
    }
  }
  // For external_word_type/runtime_call_type if it is reachable from where we
  // are now (possibly a temp buffer) and where we might end up
  // anywhere in the codeCache then we are always reachable.
  // This would have to change if we ever save/restore shared code
  // to be more pessimistic.

  disp = (int64_t)adr._target - ((int64_t)CodeCache::low_bound() + sizeof(int));
  if (!is_simm32(disp)) return false;
  disp = (int64_t)adr._target - ((int64_t)CodeCache::high_bound() + sizeof(int));
  if (!is_simm32(disp)) return false;

  disp = (int64_t)adr._target - ((int64_t)_code_pos + sizeof(int));

  // Because rip relative is a disp + address_of_next_instruction and we
  // don't know the value of address_of_next_instruction we apply a fudge factor
  // to make sure we will be ok no matter the size of the instruction we get placed into.
  // We don't have to fudge the checks above here because they are already worst case.

  // 12 == override/rex byte, opcode byte, rm byte, sib byte, a 4-byte disp , 4-byte literal
  // + 4 because better safe than sorry.
  const int fudge = 12 + 4;
  if (disp < 0) {
    disp -= fudge;
  } else {
    disp += fudge;
  }
  return is_simm32(disp);
}

void Assembler::emit_data64(jlong data,
                            relocInfo::relocType rtype,
                            int format) {
  if (rtype == relocInfo::none) {
    emit_long64(data);
  } else {
    emit_data64(data, Relocation::spec_simple(rtype), format);
  }
}

void Assembler::emit_data64(jlong data,
                            RelocationHolder const& rspec,
                            int format) {
  assert(imm_operand == 0, "default format must be immediate in this file");
  assert(imm_operand == format, "must be immediate");
  assert(inst_mark() != NULL, "must be inside InstructionMark");
  // Do not use AbstractAssembler::relocate, which is not intended for
  // embedded words.  Instead, relocate to the enclosing instruction.
  code_section()->relocate(inst_mark(), rspec, format);
#ifdef ASSERT
  check_relocation(rspec, format);
#endif
  emit_long64(data);
}

int Assembler::prefix_and_encode(int reg_enc, bool byteinst) {
  if (reg_enc >= 8) {
    prefix(REX_B);
    reg_enc -= 8;
  } else if (byteinst && reg_enc >= 4) {
    prefix(REX);
  }
  return reg_enc;
}

int Assembler::prefixq_and_encode(int reg_enc) {
  if (reg_enc < 8) {
    prefix(REX_W);
  } else {
    prefix(REX_WB);
    reg_enc -= 8;
  }
  return reg_enc;
}

int Assembler::prefix_and_encode(int dst_enc, int src_enc, bool byteinst) {
  if (dst_enc < 8) {
    if (src_enc >= 8) {
      prefix(REX_B);
      src_enc -= 8;
    } else if (byteinst && src_enc >= 4) {
      prefix(REX);
    }
  } else {
    if (src_enc < 8) {
      prefix(REX_R);
    } else {
      prefix(REX_RB);
      src_enc -= 8;
    }
    dst_enc -= 8;
  }
  return dst_enc << 3 | src_enc;
}

int Assembler::prefixq_and_encode(int dst_enc, int src_enc) {
  if (dst_enc < 8) {
    if (src_enc < 8) {
      prefix(REX_W);
    } else {
      prefix(REX_WB);
      src_enc -= 8;
    }
  } else {
    if (src_enc < 8) {
      prefix(REX_WR);
    } else {
      prefix(REX_WRB);
      src_enc -= 8;
    }
    dst_enc -= 8;
  }
  return dst_enc << 3 | src_enc;
}

void Assembler::prefix(Register reg) {
  if (reg->encoding() >= 8) {
    prefix(REX_B);
  }
}

void Assembler::prefix(Address adr) {
  if (adr.base_needs_rex()) {
    if (adr.index_needs_rex()) {
      prefix(REX_XB);
    } else {
      prefix(REX_B);
    }
  } else {
    if (adr.index_needs_rex()) {
      prefix(REX_X);
    }
  }
}

void Assembler::prefixq(Address adr) {
  if (adr.base_needs_rex()) {
    if (adr.index_needs_rex()) {
      prefix(REX_WXB);
    } else {
      prefix(REX_WB);
    }
  } else {
    if (adr.index_needs_rex()) {
      prefix(REX_WX);
    } else {
      prefix(REX_W);
    }
  }
}


void Assembler::prefix(Address adr, Register reg, bool byteinst) {
  if (reg->encoding() < 8) {
    if (adr.base_needs_rex()) {
      if (adr.index_needs_rex()) {
        prefix(REX_XB);
      } else {
        prefix(REX_B);
      }
    } else {
      if (adr.index_needs_rex()) {
        prefix(REX_X);
      } else if (reg->encoding() >= 4 ) {
        prefix(REX);
      }
    }
  } else {
    if (adr.base_needs_rex()) {
      if (adr.index_needs_rex()) {
        prefix(REX_RXB);
      } else {
        prefix(REX_RB);
      }
    } else {
      if (adr.index_needs_rex()) {
        prefix(REX_RX);
      } else {
        prefix(REX_R);
      }
    }
  }
}

void Assembler::prefixq(Address adr, Register src) {
  if (src->encoding() < 8) {
    if (adr.base_needs_rex()) {
      if (adr.index_needs_rex()) {
        prefix(REX_WXB);
      } else {
        prefix(REX_WB);
      }
    } else {
      if (adr.index_needs_rex()) {
        prefix(REX_WX);
      } else {
        prefix(REX_W);
      }
    }
  } else {
    if (adr.base_needs_rex()) {
      if (adr.index_needs_rex()) {
        prefix(REX_WRXB);
      } else {
        prefix(REX_WRB);
      }
    } else {
      if (adr.index_needs_rex()) {
        prefix(REX_WRX);
      } else {
        prefix(REX_WR);
      }
    }
  }
}

void Assembler::prefix(Address adr, XMMRegister reg) {
  if (reg->encoding() < 8) {
    if (adr.base_needs_rex()) {
      if (adr.index_needs_rex()) {
        prefix(REX_XB);
      } else {
        prefix(REX_B);
      }
    } else {
      if (adr.index_needs_rex()) {
        prefix(REX_X);
      }
    }
  } else {
    if (adr.base_needs_rex()) {
      if (adr.index_needs_rex()) {
        prefix(REX_RXB);
      } else {
        prefix(REX_RB);
      }
    } else {
      if (adr.index_needs_rex()) {
        prefix(REX_RX);
      } else {
        prefix(REX_R);
      }
    }
  }
}

void Assembler::adcq(Register dst, int32_t imm32) {
  (void) prefixq_and_encode(dst->encoding());
  emit_arith(0x81, 0xD0, dst, imm32);
}

void Assembler::adcq(Register dst, Address src) {
  InstructionMark im(this);
  prefixq(src, dst);
  emit_byte(0x13);
  emit_operand(dst, src);
}

void Assembler::adcq(Register dst, Register src) {
  (int) prefixq_and_encode(dst->encoding(), src->encoding());
  emit_arith(0x13, 0xC0, dst, src);
}

void Assembler::addq(Address dst, int32_t imm32) {
  InstructionMark im(this);
  prefixq(dst);
  emit_arith_operand(0x81, rax, dst,imm32);
}

void Assembler::addq(Address dst, Register src) {
  InstructionMark im(this);
  prefixq(dst, src);
  emit_byte(0x01);
  emit_operand(src, dst);
}

void Assembler::addq(Register dst, int32_t imm32) {
  (void) prefixq_and_encode(dst->encoding());
  emit_arith(0x81, 0xC0, dst, imm32);
}

void Assembler::addq(Register dst, Address src) {
  InstructionMark im(this);
  prefixq(src, dst);
  emit_byte(0x03);
  emit_operand(dst, src);
}

void Assembler::addq(Register dst, Register src) {
  (void) prefixq_and_encode(dst->encoding(), src->encoding());
  emit_arith(0x03, 0xC0, dst, src);
}

void Assembler::andq(Register dst, int32_t imm32) {
  (void) prefixq_and_encode(dst->encoding());
  emit_arith(0x81, 0xE0, dst, imm32);
}

void Assembler::andq(Register dst, Address src) {
  InstructionMark im(this);
  prefixq(src, dst);
  emit_byte(0x23);
  emit_operand(dst, src);
}

void Assembler::andq(Register dst, Register src) {
  (int) prefixq_and_encode(dst->encoding(), src->encoding());
  emit_arith(0x23, 0xC0, dst, src);
}

3726 3727 3728 3729 3730 3731 3732 3733 3734 3735 3736 3737 3738 3739 3740
void Assembler::bsfq(Register dst, Register src) {
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0xBC);
  emit_byte(0xC0 | encode);
}

void Assembler::bsrq(Register dst, Register src) {
  assert(!VM_Version::supports_lzcnt(), "encoding is treated as LZCNT");
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0xBD);
  emit_byte(0xC0 | encode);
}

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void Assembler::bswapq(Register reg) {
  int encode = prefixq_and_encode(reg->encoding());
  emit_byte(0x0F);
  emit_byte(0xC8 | encode);
}

void Assembler::cdqq() {
  prefix(REX_W);
  emit_byte(0x99);
}

void Assembler::clflush(Address adr) {
  prefix(adr);
  emit_byte(0x0F);
  emit_byte(0xAE);
  emit_operand(rdi, adr);
}

void Assembler::cmovq(Condition cc, Register dst, Register src) {
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x40 | cc);
  emit_byte(0xC0 | encode);
}

void Assembler::cmovq(Condition cc, Register dst, Address src) {
  InstructionMark im(this);
  prefixq(src, dst);
  emit_byte(0x0F);
  emit_byte(0x40 | cc);
  emit_operand(dst, src);
}

void Assembler::cmpq(Address dst, int32_t imm32) {
  InstructionMark im(this);
  prefixq(dst);
  emit_byte(0x81);
  emit_operand(rdi, dst, 4);
  emit_long(imm32);
}

void Assembler::cmpq(Register dst, int32_t imm32) {
  (void) prefixq_and_encode(dst->encoding());
  emit_arith(0x81, 0xF8, dst, imm32);
}

void Assembler::cmpq(Address dst, Register src) {
  InstructionMark im(this);
  prefixq(dst, src);
  emit_byte(0x3B);
  emit_operand(src, dst);
}

void Assembler::cmpq(Register dst, Register src) {
  (void) prefixq_and_encode(dst->encoding(), src->encoding());
  emit_arith(0x3B, 0xC0, dst, src);
}

void Assembler::cmpq(Register dst, Address  src) {
  InstructionMark im(this);
  prefixq(src, dst);
  emit_byte(0x3B);
  emit_operand(dst, src);
}

void Assembler::cmpxchgq(Register reg, Address adr) {
  InstructionMark im(this);
  prefixq(adr, reg);
  emit_byte(0x0F);
  emit_byte(0xB1);
  emit_operand(reg, adr);
}

void Assembler::cvtsi2sdq(XMMRegister dst, Register src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0xF2);
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x2A);
  emit_byte(0xC0 | encode);
}

void Assembler::cvtsi2ssq(XMMRegister dst, Register src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
  emit_byte(0xF3);
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x2A);
  emit_byte(0xC0 | encode);
}

void Assembler::cvttsd2siq(Register dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  emit_byte(0xF2);
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x2C);
  emit_byte(0xC0 | encode);
}

void Assembler::cvttss2siq(Register dst, XMMRegister src) {
  NOT_LP64(assert(VM_Version::supports_sse(), ""));
  emit_byte(0xF3);
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x2C);
  emit_byte(0xC0 | encode);
}

void Assembler::decl(Register dst) {
  // Don't use it directly. Use MacroAssembler::decrementl() instead.
  // Use two-byte form (one-byte form is a REX prefix in 64-bit mode)
  int encode = prefix_and_encode(dst->encoding());
  emit_byte(0xFF);
  emit_byte(0xC8 | encode);
}

void Assembler::decq(Register dst) {
  // Don't use it directly. Use MacroAssembler::decrementq() instead.
  // Use two-byte form (one-byte from is a REX prefix in 64-bit mode)
  int encode = prefixq_and_encode(dst->encoding());
  emit_byte(0xFF);
  emit_byte(0xC8 | encode);
}

void Assembler::decq(Address dst) {
  // Don't use it directly. Use MacroAssembler::decrementq() instead.
  InstructionMark im(this);
  prefixq(dst);
  emit_byte(0xFF);
  emit_operand(rcx, dst);
}

void Assembler::fxrstor(Address src) {
  prefixq(src);
  emit_byte(0x0F);
  emit_byte(0xAE);
  emit_operand(as_Register(1), src);
}

void Assembler::fxsave(Address dst) {
  prefixq(dst);
  emit_byte(0x0F);
  emit_byte(0xAE);
  emit_operand(as_Register(0), dst);
}

void Assembler::idivq(Register src) {
  int encode = prefixq_and_encode(src->encoding());
  emit_byte(0xF7);
  emit_byte(0xF8 | encode);
}

void Assembler::imulq(Register dst, Register src) {
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0xAF);
  emit_byte(0xC0 | encode);
}

void Assembler::imulq(Register dst, Register src, int value) {
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  if (is8bit(value)) {
    emit_byte(0x6B);
    emit_byte(0xC0 | encode);
    emit_byte(value);
  } else {
    emit_byte(0x69);
    emit_byte(0xC0 | encode);
    emit_long(value);
  }
}

void Assembler::incl(Register dst) {
  // Don't use it directly. Use MacroAssembler::incrementl() instead.
  // Use two-byte form (one-byte from is a REX prefix in 64-bit mode)
  int encode = prefix_and_encode(dst->encoding());
  emit_byte(0xFF);
  emit_byte(0xC0 | encode);
}

void Assembler::incq(Register dst) {
  // Don't use it directly. Use MacroAssembler::incrementq() instead.
  // Use two-byte form (one-byte from is a REX prefix in 64-bit mode)
  int encode = prefixq_and_encode(dst->encoding());
  emit_byte(0xFF);
  emit_byte(0xC0 | encode);
}

void Assembler::incq(Address dst) {
  // Don't use it directly. Use MacroAssembler::incrementq() instead.
  InstructionMark im(this);
  prefixq(dst);
  emit_byte(0xFF);
  emit_operand(rax, dst);
}

void Assembler::lea(Register dst, Address src) {
  leaq(dst, src);
}

void Assembler::leaq(Register dst, Address src) {
  InstructionMark im(this);
  prefixq(src, dst);
  emit_byte(0x8D);
  emit_operand(dst, src);
}

void Assembler::mov64(Register dst, int64_t imm64) {
  InstructionMark im(this);
  int encode = prefixq_and_encode(dst->encoding());
  emit_byte(0xB8 | encode);
  emit_long64(imm64);
}

void Assembler::mov_literal64(Register dst, intptr_t imm64, RelocationHolder const& rspec) {
  InstructionMark im(this);
  int encode = prefixq_and_encode(dst->encoding());
  emit_byte(0xB8 | encode);
  emit_data64(imm64, rspec);
}

3963 3964 3965 3966 3967 3968 3969 3970 3971 3972 3973 3974 3975 3976 3977 3978 3979 3980 3981 3982 3983 3984 3985 3986 3987 3988 3989 3990 3991 3992 3993
void Assembler::mov_narrow_oop(Register dst, int32_t imm32, RelocationHolder const& rspec) {
  InstructionMark im(this);
  int encode = prefix_and_encode(dst->encoding());
  emit_byte(0xB8 | encode);
  emit_data((int)imm32, rspec, narrow_oop_operand);
}

void Assembler::mov_narrow_oop(Address dst, int32_t imm32,  RelocationHolder const& rspec) {
  InstructionMark im(this);
  prefix(dst);
  emit_byte(0xC7);
  emit_operand(rax, dst, 4);
  emit_data((int)imm32, rspec, narrow_oop_operand);
}

void Assembler::cmp_narrow_oop(Register src1, int32_t imm32, RelocationHolder const& rspec) {
  InstructionMark im(this);
  int encode = prefix_and_encode(src1->encoding());
  emit_byte(0x81);
  emit_byte(0xF8 | encode);
  emit_data((int)imm32, rspec, narrow_oop_operand);
}

void Assembler::cmp_narrow_oop(Address src1, int32_t imm32, RelocationHolder const& rspec) {
  InstructionMark im(this);
  prefix(src1);
  emit_byte(0x81);
  emit_operand(rax, src1, 4);
  emit_data((int)imm32, rspec, narrow_oop_operand);
}

3994 3995 3996 3997 3998 3999 4000 4001 4002
void Assembler::lzcntq(Register dst, Register src) {
  assert(VM_Version::supports_lzcnt(), "encoding is treated as BSR");
  emit_byte(0xF3);
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0xBD);
  emit_byte(0xC0 | encode);
}

4003 4004 4005 4006 4007 4008 4009 4010 4011 4012 4013 4014 4015 4016 4017 4018 4019 4020 4021
void Assembler::movdq(XMMRegister dst, Register src) {
  // table D-1 says MMX/SSE2
  NOT_LP64(assert(VM_Version::supports_sse2() || VM_Version::supports_mmx(), ""));
  emit_byte(0x66);
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0x6E);
  emit_byte(0xC0 | encode);
}

void Assembler::movdq(Register dst, XMMRegister src) {
  // table D-1 says MMX/SSE2
  NOT_LP64(assert(VM_Version::supports_sse2() || VM_Version::supports_mmx(), ""));
  emit_byte(0x66);
  // swap src/dst to get correct prefix
  int encode = prefixq_and_encode(src->encoding(), dst->encoding());
  emit_byte(0x0F);
  emit_byte(0x7E);
  emit_byte(0xC0 | encode);
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}

4024 4025 4026 4027 4028
void Assembler::movq(Register dst, Register src) {
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x8B);
  emit_byte(0xC0 | encode);
}
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4030 4031 4032 4033 4034 4035
void Assembler::movq(Register dst, Address src) {
  InstructionMark im(this);
  prefixq(src, dst);
  emit_byte(0x8B);
  emit_operand(dst, src);
}
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4037 4038 4039 4040 4041 4042
void Assembler::movq(Address dst, Register src) {
  InstructionMark im(this);
  prefixq(dst, src);
  emit_byte(0x89);
  emit_operand(src, dst);
}
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4044 4045 4046 4047 4048 4049 4050 4051 4052 4053 4054 4055 4056 4057 4058
void Assembler::movsbq(Register dst, Address src) {
  InstructionMark im(this);
  prefixq(src, dst);
  emit_byte(0x0F);
  emit_byte(0xBE);
  emit_operand(dst, src);
}

void Assembler::movsbq(Register dst, Register src) {
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0xBE);
  emit_byte(0xC0 | encode);
}

4059 4060 4061 4062 4063 4064 4065 4066 4067 4068 4069 4070 4071 4072 4073 4074 4075 4076 4077 4078 4079 4080 4081 4082 4083 4084 4085 4086 4087 4088 4089 4090 4091
void Assembler::movslq(Register dst, int32_t imm32) {
  // dbx shows movslq(rcx, 3) as movq     $0x0000000049000000,(%rbx)
  // and movslq(r8, 3); as movl     $0x0000000048000000,(%rbx)
  // as a result we shouldn't use until tested at runtime...
  ShouldNotReachHere();
  InstructionMark im(this);
  int encode = prefixq_and_encode(dst->encoding());
  emit_byte(0xC7 | encode);
  emit_long(imm32);
}

void Assembler::movslq(Address dst, int32_t imm32) {
  assert(is_simm32(imm32), "lost bits");
  InstructionMark im(this);
  prefixq(dst);
  emit_byte(0xC7);
  emit_operand(rax, dst, 4);
  emit_long(imm32);
}

void Assembler::movslq(Register dst, Address src) {
  InstructionMark im(this);
  prefixq(src, dst);
  emit_byte(0x63);
  emit_operand(dst, src);
}

void Assembler::movslq(Register dst, Register src) {
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x63);
  emit_byte(0xC0 | encode);
}

4092 4093 4094 4095 4096 4097 4098 4099 4100 4101 4102 4103 4104 4105 4106 4107 4108 4109 4110 4111 4112 4113 4114 4115 4116 4117 4118 4119 4120 4121 4122 4123 4124 4125 4126 4127 4128 4129 4130 4131 4132 4133 4134 4135 4136
void Assembler::movswq(Register dst, Address src) {
  InstructionMark im(this);
  prefixq(src, dst);
  emit_byte(0x0F);
  emit_byte(0xBF);
  emit_operand(dst, src);
}

void Assembler::movswq(Register dst, Register src) {
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0xBF);
  emit_byte(0xC0 | encode);
}

void Assembler::movzbq(Register dst, Address src) {
  InstructionMark im(this);
  prefixq(src, dst);
  emit_byte(0x0F);
  emit_byte(0xB6);
  emit_operand(dst, src);
}

void Assembler::movzbq(Register dst, Register src) {
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0xB6);
  emit_byte(0xC0 | encode);
}

void Assembler::movzwq(Register dst, Address src) {
  InstructionMark im(this);
  prefixq(src, dst);
  emit_byte(0x0F);
  emit_byte(0xB7);
  emit_operand(dst, src);
}

void Assembler::movzwq(Register dst, Register src) {
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0xB7);
  emit_byte(0xC0 | encode);
}

4137 4138 4139 4140 4141 4142 4143 4144 4145 4146 4147 4148 4149 4150 4151 4152 4153 4154 4155 4156 4157 4158 4159 4160 4161 4162 4163 4164 4165 4166 4167 4168 4169 4170 4171 4172 4173 4174 4175 4176 4177 4178 4179 4180 4181 4182 4183 4184 4185 4186 4187 4188 4189 4190 4191 4192 4193 4194
void Assembler::negq(Register dst) {
  int encode = prefixq_and_encode(dst->encoding());
  emit_byte(0xF7);
  emit_byte(0xD8 | encode);
}

void Assembler::notq(Register dst) {
  int encode = prefixq_and_encode(dst->encoding());
  emit_byte(0xF7);
  emit_byte(0xD0 | encode);
}

void Assembler::orq(Address dst, int32_t imm32) {
  InstructionMark im(this);
  prefixq(dst);
  emit_byte(0x81);
  emit_operand(rcx, dst, 4);
  emit_long(imm32);
}

void Assembler::orq(Register dst, int32_t imm32) {
  (void) prefixq_and_encode(dst->encoding());
  emit_arith(0x81, 0xC8, dst, imm32);
}

void Assembler::orq(Register dst, Address src) {
  InstructionMark im(this);
  prefixq(src, dst);
  emit_byte(0x0B);
  emit_operand(dst, src);
}

void Assembler::orq(Register dst, Register src) {
  (void) prefixq_and_encode(dst->encoding(), src->encoding());
  emit_arith(0x0B, 0xC0, dst, src);
}

void Assembler::popa() { // 64bit
  movq(r15, Address(rsp, 0));
  movq(r14, Address(rsp, wordSize));
  movq(r13, Address(rsp, 2 * wordSize));
  movq(r12, Address(rsp, 3 * wordSize));
  movq(r11, Address(rsp, 4 * wordSize));
  movq(r10, Address(rsp, 5 * wordSize));
  movq(r9,  Address(rsp, 6 * wordSize));
  movq(r8,  Address(rsp, 7 * wordSize));
  movq(rdi, Address(rsp, 8 * wordSize));
  movq(rsi, Address(rsp, 9 * wordSize));
  movq(rbp, Address(rsp, 10 * wordSize));
  // skip rsp
  movq(rbx, Address(rsp, 12 * wordSize));
  movq(rdx, Address(rsp, 13 * wordSize));
  movq(rcx, Address(rsp, 14 * wordSize));
  movq(rax, Address(rsp, 15 * wordSize));

  addq(rsp, 16 * wordSize);
}

4195 4196 4197 4198 4199 4200 4201 4202 4203 4204 4205 4206 4207 4208 4209 4210 4211 4212 4213
void Assembler::popcntq(Register dst, Address src) {
  assert(VM_Version::supports_popcnt(), "must support");
  InstructionMark im(this);
  emit_byte(0xF3);
  prefixq(src, dst);
  emit_byte(0x0F);
  emit_byte(0xB8);
  emit_operand(dst, src);
}

void Assembler::popcntq(Register dst, Register src) {
  assert(VM_Version::supports_popcnt(), "must support");
  emit_byte(0xF3);
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x0F);
  emit_byte(0xB8);
  emit_byte(0xC0 | encode);
}

4214 4215 4216 4217 4218 4219 4220 4221 4222 4223 4224 4225 4226 4227 4228 4229 4230 4231 4232 4233 4234 4235 4236 4237 4238 4239 4240 4241 4242 4243 4244 4245 4246 4247 4248 4249 4250 4251 4252 4253 4254 4255 4256 4257 4258 4259 4260 4261 4262
void Assembler::popq(Address dst) {
  InstructionMark im(this);
  prefixq(dst);
  emit_byte(0x8F);
  emit_operand(rax, dst);
}

void Assembler::pusha() { // 64bit
  // we have to store original rsp.  ABI says that 128 bytes
  // below rsp are local scratch.
  movq(Address(rsp, -5 * wordSize), rsp);

  subq(rsp, 16 * wordSize);

  movq(Address(rsp, 15 * wordSize), rax);
  movq(Address(rsp, 14 * wordSize), rcx);
  movq(Address(rsp, 13 * wordSize), rdx);
  movq(Address(rsp, 12 * wordSize), rbx);
  // skip rsp
  movq(Address(rsp, 10 * wordSize), rbp);
  movq(Address(rsp, 9 * wordSize), rsi);
  movq(Address(rsp, 8 * wordSize), rdi);
  movq(Address(rsp, 7 * wordSize), r8);
  movq(Address(rsp, 6 * wordSize), r9);
  movq(Address(rsp, 5 * wordSize), r10);
  movq(Address(rsp, 4 * wordSize), r11);
  movq(Address(rsp, 3 * wordSize), r12);
  movq(Address(rsp, 2 * wordSize), r13);
  movq(Address(rsp, wordSize), r14);
  movq(Address(rsp, 0), r15);
}

void Assembler::pushq(Address src) {
  InstructionMark im(this);
  prefixq(src);
  emit_byte(0xFF);
  emit_operand(rsi, src);
}

void Assembler::rclq(Register dst, int imm8) {
  assert(isShiftCount(imm8 >> 1), "illegal shift count");
  int encode = prefixq_and_encode(dst->encoding());
  if (imm8 == 1) {
    emit_byte(0xD1);
    emit_byte(0xD0 | encode);
  } else {
    emit_byte(0xC1);
    emit_byte(0xD0 | encode);
    emit_byte(imm8);
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  }
4264 4265 4266 4267 4268 4269 4270 4271 4272 4273 4274 4275 4276
}
void Assembler::sarq(Register dst, int imm8) {
  assert(isShiftCount(imm8 >> 1), "illegal shift count");
  int encode = prefixq_and_encode(dst->encoding());
  if (imm8 == 1) {
    emit_byte(0xD1);
    emit_byte(0xF8 | encode);
  } else {
    emit_byte(0xC1);
    emit_byte(0xF8 | encode);
    emit_byte(imm8);
  }
}
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4278 4279 4280 4281 4282 4283 4284 4285 4286 4287
void Assembler::sarq(Register dst) {
  int encode = prefixq_and_encode(dst->encoding());
  emit_byte(0xD3);
  emit_byte(0xF8 | encode);
}
void Assembler::sbbq(Address dst, int32_t imm32) {
  InstructionMark im(this);
  prefixq(dst);
  emit_arith_operand(0x81, rbx, dst, imm32);
}
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4289 4290 4291 4292
void Assembler::sbbq(Register dst, int32_t imm32) {
  (void) prefixq_and_encode(dst->encoding());
  emit_arith(0x81, 0xD8, dst, imm32);
}
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4294 4295 4296 4297 4298 4299
void Assembler::sbbq(Register dst, Address src) {
  InstructionMark im(this);
  prefixq(src, dst);
  emit_byte(0x1B);
  emit_operand(dst, src);
}
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4301 4302 4303 4304
void Assembler::sbbq(Register dst, Register src) {
  (void) prefixq_and_encode(dst->encoding(), src->encoding());
  emit_arith(0x1B, 0xC0, dst, src);
}
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4306 4307 4308 4309 4310 4311 4312 4313 4314 4315
void Assembler::shlq(Register dst, int imm8) {
  assert(isShiftCount(imm8 >> 1), "illegal shift count");
  int encode = prefixq_and_encode(dst->encoding());
  if (imm8 == 1) {
    emit_byte(0xD1);
    emit_byte(0xE0 | encode);
  } else {
    emit_byte(0xC1);
    emit_byte(0xE0 | encode);
    emit_byte(imm8);
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  }
4317 4318 4319 4320 4321 4322 4323 4324 4325 4326 4327 4328 4329 4330 4331 4332 4333 4334 4335 4336 4337 4338 4339 4340 4341 4342 4343 4344 4345 4346 4347 4348 4349 4350 4351 4352 4353 4354 4355 4356 4357 4358 4359
}

void Assembler::shlq(Register dst) {
  int encode = prefixq_and_encode(dst->encoding());
  emit_byte(0xD3);
  emit_byte(0xE0 | encode);
}

void Assembler::shrq(Register dst, int imm8) {
  assert(isShiftCount(imm8 >> 1), "illegal shift count");
  int encode = prefixq_and_encode(dst->encoding());
  emit_byte(0xC1);
  emit_byte(0xE8 | encode);
  emit_byte(imm8);
}

void Assembler::shrq(Register dst) {
  int encode = prefixq_and_encode(dst->encoding());
  emit_byte(0xD3);
  emit_byte(0xE8 | encode);
}

void Assembler::sqrtsd(XMMRegister dst, Address src) {
  NOT_LP64(assert(VM_Version::supports_sse2(), ""));
  InstructionMark im(this);
  emit_byte(0xF2);
  prefix(src, dst);
  emit_byte(0x0F);
  emit_byte(0x51);
  emit_operand(dst, src);
}

void Assembler::subq(Address dst, int32_t imm32) {
  InstructionMark im(this);
  prefixq(dst);
  if (is8bit(imm32)) {
    emit_byte(0x83);
    emit_operand(rbp, dst, 1);
    emit_byte(imm32 & 0xFF);
  } else {
    emit_byte(0x81);
    emit_operand(rbp, dst, 4);
    emit_long(imm32);
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  }
}

4363 4364 4365 4366 4367 4368 4369 4370 4371 4372 4373 4374 4375 4376 4377 4378 4379 4380 4381 4382 4383 4384 4385 4386 4387 4388 4389 4390 4391 4392 4393 4394
void Assembler::subq(Register dst, int32_t imm32) {
  (void) prefixq_and_encode(dst->encoding());
  emit_arith(0x81, 0xE8, dst, imm32);
}

void Assembler::subq(Address dst, Register src) {
  InstructionMark im(this);
  prefixq(dst, src);
  emit_byte(0x29);
  emit_operand(src, dst);
}

void Assembler::subq(Register dst, Address src) {
  InstructionMark im(this);
  prefixq(src, dst);
  emit_byte(0x2B);
  emit_operand(dst, src);
}

void Assembler::subq(Register dst, Register src) {
  (void) prefixq_and_encode(dst->encoding(), src->encoding());
  emit_arith(0x2B, 0xC0, dst, src);
}

void Assembler::testq(Register dst, int32_t imm32) {
  // not using emit_arith because test
  // doesn't support sign-extension of
  // 8bit operands
  int encode = dst->encoding();
  if (encode == 0) {
    prefix(REX_W);
    emit_byte(0xA9);
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  } else {
4396 4397 4398
    encode = prefixq_and_encode(encode);
    emit_byte(0xF7);
    emit_byte(0xC0 | encode);
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  }
4400
  emit_long(imm32);
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}

4403 4404 4405
void Assembler::testq(Register dst, Register src) {
  (void) prefixq_and_encode(dst->encoding(), src->encoding());
  emit_arith(0x85, 0xC0, dst, src);
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}

4408 4409 4410 4411 4412 4413
void Assembler::xaddq(Address dst, Register src) {
  InstructionMark im(this);
  prefixq(dst, src);
  emit_byte(0x0F);
  emit_byte(0xC1);
  emit_operand(src, dst);
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}

4416 4417 4418 4419 4420
void Assembler::xchgq(Register dst, Address src) {
  InstructionMark im(this);
  prefixq(src, dst);
  emit_byte(0x87);
  emit_operand(dst, src);
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}

4423 4424 4425 4426
void Assembler::xchgq(Register dst, Register src) {
  int encode = prefixq_and_encode(dst->encoding(), src->encoding());
  emit_byte(0x87);
  emit_byte(0xc0 | encode);
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}

4429 4430 4431
void Assembler::xorq(Register dst, Register src) {
  (void) prefixq_and_encode(dst->encoding(), src->encoding());
  emit_arith(0x33, 0xC0, dst, src);
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}

4434 4435 4436 4437 4438
void Assembler::xorq(Register dst, Address src) {
  InstructionMark im(this);
  prefixq(src, dst);
  emit_byte(0x33);
  emit_operand(dst, src);
4439 4440
}

4441
#endif // !LP64
4442

4443 4444 4445 4446 4447 4448 4449 4450 4451 4452 4453 4454 4455 4456 4457 4458 4459
static Assembler::Condition reverse[] = {
    Assembler::noOverflow     /* overflow      = 0x0 */ ,
    Assembler::overflow       /* noOverflow    = 0x1 */ ,
    Assembler::aboveEqual     /* carrySet      = 0x2, below         = 0x2 */ ,
    Assembler::below          /* aboveEqual    = 0x3, carryClear    = 0x3 */ ,
    Assembler::notZero        /* zero          = 0x4, equal         = 0x4 */ ,
    Assembler::zero           /* notZero       = 0x5, notEqual      = 0x5 */ ,
    Assembler::above          /* belowEqual    = 0x6 */ ,
    Assembler::belowEqual     /* above         = 0x7 */ ,
    Assembler::positive       /* negative      = 0x8 */ ,
    Assembler::negative       /* positive      = 0x9 */ ,
    Assembler::noParity       /* parity        = 0xa */ ,
    Assembler::parity         /* noParity      = 0xb */ ,
    Assembler::greaterEqual   /* less          = 0xc */ ,
    Assembler::less           /* greaterEqual  = 0xd */ ,
    Assembler::greater        /* lessEqual     = 0xe */ ,
    Assembler::lessEqual      /* greater       = 0xf, */
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4461
};
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4464
// Implementation of MacroAssembler
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4466 4467
// First all the versions that have distinct versions depending on 32/64 bit
// Unless the difference is trivial (1 line or so).
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4469
#ifndef _LP64
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4471
// 32bit versions
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4473 4474
Address MacroAssembler::as_Address(AddressLiteral adr) {
  return Address(adr.target(), adr.rspec());
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}

4477 4478
Address MacroAssembler::as_Address(ArrayAddress adr) {
  return Address::make_array(adr);
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}

4481 4482 4483 4484 4485 4486 4487 4488 4489 4490 4491
int MacroAssembler::biased_locking_enter(Register lock_reg,
                                         Register obj_reg,
                                         Register swap_reg,
                                         Register tmp_reg,
                                         bool swap_reg_contains_mark,
                                         Label& done,
                                         Label* slow_case,
                                         BiasedLockingCounters* counters) {
  assert(UseBiasedLocking, "why call this otherwise?");
  assert(swap_reg == rax, "swap_reg must be rax, for cmpxchg");
  assert_different_registers(lock_reg, obj_reg, swap_reg);
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4493 4494
  if (PrintBiasedLockingStatistics && counters == NULL)
    counters = BiasedLocking::counters();
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4496 4497 4498 4499
  bool need_tmp_reg = false;
  if (tmp_reg == noreg) {
    need_tmp_reg = true;
    tmp_reg = lock_reg;
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  } else {
4501
    assert_different_registers(lock_reg, obj_reg, swap_reg, tmp_reg);
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  }
4503 4504 4505 4506
  assert(markOopDesc::age_shift == markOopDesc::lock_bits + markOopDesc::biased_lock_bits, "biased locking makes assumptions about bit layout");
  Address mark_addr      (obj_reg, oopDesc::mark_offset_in_bytes());
  Address klass_addr     (obj_reg, oopDesc::klass_offset_in_bytes());
  Address saved_mark_addr(lock_reg, 0);
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4508 4509 4510 4511 4512 4513 4514 4515 4516 4517 4518
  // Biased locking
  // See whether the lock is currently biased toward our thread and
  // whether the epoch is still valid
  // Note that the runtime guarantees sufficient alignment of JavaThread
  // pointers to allow age to be placed into low bits
  // First check to see whether biasing is even enabled for this object
  Label cas_label;
  int null_check_offset = -1;
  if (!swap_reg_contains_mark) {
    null_check_offset = offset();
    movl(swap_reg, mark_addr);
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  }
4520 4521 4522 4523 4524 4525 4526 4527 4528 4529 4530 4531 4532 4533 4534 4535 4536 4537 4538 4539 4540 4541 4542 4543 4544 4545 4546 4547 4548 4549 4550 4551 4552 4553 4554 4555 4556
  if (need_tmp_reg) {
    push(tmp_reg);
  }
  movl(tmp_reg, swap_reg);
  andl(tmp_reg, markOopDesc::biased_lock_mask_in_place);
  cmpl(tmp_reg, markOopDesc::biased_lock_pattern);
  if (need_tmp_reg) {
    pop(tmp_reg);
  }
  jcc(Assembler::notEqual, cas_label);
  // The bias pattern is present in the object's header. Need to check
  // whether the bias owner and the epoch are both still current.
  // Note that because there is no current thread register on x86 we
  // need to store off the mark word we read out of the object to
  // avoid reloading it and needing to recheck invariants below. This
  // store is unfortunate but it makes the overall code shorter and
  // simpler.
  movl(saved_mark_addr, swap_reg);
  if (need_tmp_reg) {
    push(tmp_reg);
  }
  get_thread(tmp_reg);
  xorl(swap_reg, tmp_reg);
  if (swap_reg_contains_mark) {
    null_check_offset = offset();
  }
  movl(tmp_reg, klass_addr);
  xorl(swap_reg, Address(tmp_reg, Klass::prototype_header_offset_in_bytes() + klassOopDesc::klass_part_offset_in_bytes()));
  andl(swap_reg, ~((int) markOopDesc::age_mask_in_place));
  if (need_tmp_reg) {
    pop(tmp_reg);
  }
  if (counters != NULL) {
    cond_inc32(Assembler::zero,
               ExternalAddress((address)counters->biased_lock_entry_count_addr()));
  }
  jcc(Assembler::equal, done);
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4558 4559
  Label try_revoke_bias;
  Label try_rebias;
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4561 4562 4563 4564 4565 4566 4567 4568 4569 4570 4571 4572 4573 4574 4575 4576 4577 4578 4579 4580 4581 4582 4583 4584 4585 4586 4587 4588 4589 4590 4591 4592 4593 4594 4595
  // At this point we know that the header has the bias pattern and
  // that we are not the bias owner in the current epoch. We need to
  // figure out more details about the state of the header in order to
  // know what operations can be legally performed on the object's
  // header.

  // If the low three bits in the xor result aren't clear, that means
  // the prototype header is no longer biased and we have to revoke
  // the bias on this object.
  testl(swap_reg, markOopDesc::biased_lock_mask_in_place);
  jcc(Assembler::notZero, try_revoke_bias);

  // Biasing is still enabled for this data type. See whether the
  // epoch of the current bias is still valid, meaning that the epoch
  // bits of the mark word are equal to the epoch bits of the
  // prototype header. (Note that the prototype header's epoch bits
  // only change at a safepoint.) If not, attempt to rebias the object
  // toward the current thread. Note that we must be absolutely sure
  // that the current epoch is invalid in order to do this because
  // otherwise the manipulations it performs on the mark word are
  // illegal.
  testl(swap_reg, markOopDesc::epoch_mask_in_place);
  jcc(Assembler::notZero, try_rebias);

  // The epoch of the current bias is still valid but we know nothing
  // about the owner; it might be set or it might be clear. Try to
  // acquire the bias of the object using an atomic operation. If this
  // fails we will go in to the runtime to revoke the object's bias.
  // Note that we first construct the presumed unbiased header so we
  // don't accidentally blow away another thread's valid bias.
  movl(swap_reg, saved_mark_addr);
  andl(swap_reg,
       markOopDesc::biased_lock_mask_in_place | markOopDesc::age_mask_in_place | markOopDesc::epoch_mask_in_place);
  if (need_tmp_reg) {
    push(tmp_reg);
D
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4596
  }
4597 4598 4599 4600 4601 4602 4603 4604 4605 4606 4607 4608 4609 4610 4611 4612 4613 4614 4615 4616 4617
  get_thread(tmp_reg);
  orl(tmp_reg, swap_reg);
  if (os::is_MP()) {
    lock();
  }
  cmpxchgptr(tmp_reg, Address(obj_reg, 0));
  if (need_tmp_reg) {
    pop(tmp_reg);
  }
  // If the biasing toward our thread failed, this means that
  // another thread succeeded in biasing it toward itself and we
  // need to revoke that bias. The revocation will occur in the
  // interpreter runtime in the slow case.
  if (counters != NULL) {
    cond_inc32(Assembler::zero,
               ExternalAddress((address)counters->anonymously_biased_lock_entry_count_addr()));
  }
  if (slow_case != NULL) {
    jcc(Assembler::notZero, *slow_case);
  }
  jmp(done);
D
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4618

4619 4620 4621 4622 4623 4624 4625 4626 4627 4628 4629 4630
  bind(try_rebias);
  // At this point we know the epoch has expired, meaning that the
  // current "bias owner", if any, is actually invalid. Under these
  // circumstances _only_, we are allowed to use the current header's
  // value as the comparison value when doing the cas to acquire the
  // bias in the current epoch. In other words, we allow transfer of
  // the bias from one thread to another directly in this situation.
  //
  // FIXME: due to a lack of registers we currently blow away the age
  // bits in this situation. Should attempt to preserve them.
  if (need_tmp_reg) {
    push(tmp_reg);
D
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4631
  }
4632 4633 4634 4635 4636 4637 4638 4639 4640 4641 4642 4643 4644 4645 4646 4647 4648 4649 4650 4651 4652 4653
  get_thread(tmp_reg);
  movl(swap_reg, klass_addr);
  orl(tmp_reg, Address(swap_reg, Klass::prototype_header_offset_in_bytes() + klassOopDesc::klass_part_offset_in_bytes()));
  movl(swap_reg, saved_mark_addr);
  if (os::is_MP()) {
    lock();
  }
  cmpxchgptr(tmp_reg, Address(obj_reg, 0));
  if (need_tmp_reg) {
    pop(tmp_reg);
  }
  // If the biasing toward our thread failed, then another thread
  // succeeded in biasing it toward itself and we need to revoke that
  // bias. The revocation will occur in the runtime in the slow case.
  if (counters != NULL) {
    cond_inc32(Assembler::zero,
               ExternalAddress((address)counters->rebiased_lock_entry_count_addr()));
  }
  if (slow_case != NULL) {
    jcc(Assembler::notZero, *slow_case);
  }
  jmp(done);
D
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4654

4655 4656 4657 4658 4659 4660 4661 4662 4663 4664 4665 4666 4667 4668 4669 4670 4671 4672 4673 4674 4675 4676 4677 4678 4679 4680 4681 4682 4683 4684 4685 4686
  bind(try_revoke_bias);
  // The prototype mark in the klass doesn't have the bias bit set any
  // more, indicating that objects of this data type are not supposed
  // to be biased any more. We are going to try to reset the mark of
  // this object to the prototype value and fall through to the
  // CAS-based locking scheme. Note that if our CAS fails, it means
  // that another thread raced us for the privilege of revoking the
  // bias of this particular object, so it's okay to continue in the
  // normal locking code.
  //
  // FIXME: due to a lack of registers we currently blow away the age
  // bits in this situation. Should attempt to preserve them.
  movl(swap_reg, saved_mark_addr);
  if (need_tmp_reg) {
    push(tmp_reg);
  }
  movl(tmp_reg, klass_addr);
  movl(tmp_reg, Address(tmp_reg, Klass::prototype_header_offset_in_bytes() + klassOopDesc::klass_part_offset_in_bytes()));
  if (os::is_MP()) {
    lock();
  }
  cmpxchgptr(tmp_reg, Address(obj_reg, 0));
  if (need_tmp_reg) {
    pop(tmp_reg);
  }
  // Fall through to the normal CAS-based lock, because no matter what
  // the result of the above CAS, some thread must have succeeded in
  // removing the bias bit from the object's header.
  if (counters != NULL) {
    cond_inc32(Assembler::zero,
               ExternalAddress((address)counters->revoked_lock_entry_count_addr()));
  }
D
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4688
  bind(cas_label);
D
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4690
  return null_check_offset;
D
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4691
}
4692 4693 4694 4695
void MacroAssembler::call_VM_leaf_base(address entry_point,
                                       int number_of_arguments) {
  call(RuntimeAddress(entry_point));
  increment(rsp, number_of_arguments * wordSize);
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}

4698 4699
void MacroAssembler::cmpoop(Address src1, jobject obj) {
  cmp_literal32(src1, (int32_t)obj, oop_Relocation::spec_for_immediate());
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}

4702 4703
void MacroAssembler::cmpoop(Register src1, jobject obj) {
  cmp_literal32(src1, (int32_t)obj, oop_Relocation::spec_for_immediate());
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4704 4705
}

4706 4707 4708 4709 4710 4711 4712 4713
void MacroAssembler::extend_sign(Register hi, Register lo) {
  // According to Intel Doc. AP-526, "Integer Divide", p.18.
  if (VM_Version::is_P6() && hi == rdx && lo == rax) {
    cdql();
  } else {
    movl(hi, lo);
    sarl(hi, 31);
  }
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}

4716 4717 4718 4719 4720 4721 4722
void MacroAssembler::fat_nop() {
  // A 5 byte nop that is safe for patching (see patch_verified_entry)
  emit_byte(0x26); // es:
  emit_byte(0x2e); // cs:
  emit_byte(0x64); // fs:
  emit_byte(0x65); // gs:
  emit_byte(0x90);
D
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4723 4724
}

4725 4726 4727 4728 4729 4730 4731 4732
void MacroAssembler::jC2(Register tmp, Label& L) {
  // set parity bit if FPU flag C2 is set (via rax)
  save_rax(tmp);
  fwait(); fnstsw_ax();
  sahf();
  restore_rax(tmp);
  // branch
  jcc(Assembler::parity, L);
D
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4733 4734
}

4735 4736 4737 4738 4739 4740 4741 4742
void MacroAssembler::jnC2(Register tmp, Label& L) {
  // set parity bit if FPU flag C2 is set (via rax)
  save_rax(tmp);
  fwait(); fnstsw_ax();
  sahf();
  restore_rax(tmp);
  // branch
  jcc(Assembler::noParity, L);
D
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}

4745 4746 4747 4748
// 32bit can do a case table jump in one instruction but we no longer allow the base
// to be installed in the Address class
void MacroAssembler::jump(ArrayAddress entry) {
  jmp(as_Address(entry));
D
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}

4751 4752 4753 4754
// Note: y_lo will be destroyed
void MacroAssembler::lcmp2int(Register x_hi, Register x_lo, Register y_hi, Register y_lo) {
  // Long compare for Java (semantics as described in JVM spec.)
  Label high, low, done;
D
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4756 4757 4758 4759 4760 4761 4762 4763
  cmpl(x_hi, y_hi);
  jcc(Assembler::less, low);
  jcc(Assembler::greater, high);
  // x_hi is the return register
  xorl(x_hi, x_hi);
  cmpl(x_lo, y_lo);
  jcc(Assembler::below, low);
  jcc(Assembler::equal, done);
D
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4764

4765 4766 4767 4768
  bind(high);
  xorl(x_hi, x_hi);
  increment(x_hi);
  jmp(done);
D
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4769

4770 4771 4772
  bind(low);
  xorl(x_hi, x_hi);
  decrementl(x_hi);
D
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4773

4774
  bind(done);
D
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4775 4776
}

4777 4778
void MacroAssembler::lea(Register dst, AddressLiteral src) {
    mov_literal32(dst, (int32_t)src.target(), src.rspec());
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}

4781 4782 4783 4784
void MacroAssembler::lea(Address dst, AddressLiteral adr) {
  // leal(dst, as_Address(adr));
  // see note in movl as to why we must use a move
  mov_literal32(dst, (int32_t) adr.target(), adr.rspec());
D
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4785 4786
}

4787 4788 4789
void MacroAssembler::leave() {
  mov(rsp, rbp);
  pop(rbp);
D
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}

4792 4793 4794 4795 4796 4797 4798 4799 4800 4801 4802 4803 4804 4805 4806 4807 4808 4809 4810 4811 4812 4813 4814 4815 4816 4817 4818 4819 4820 4821 4822 4823 4824 4825 4826 4827 4828 4829 4830 4831 4832 4833 4834 4835 4836 4837 4838 4839 4840 4841 4842 4843 4844 4845 4846 4847 4848 4849 4850 4851 4852 4853 4854 4855 4856 4857 4858 4859 4860 4861 4862 4863 4864 4865 4866 4867 4868 4869 4870 4871 4872 4873 4874 4875 4876 4877
void MacroAssembler::lmul(int x_rsp_offset, int y_rsp_offset) {
  // Multiplication of two Java long values stored on the stack
  // as illustrated below. Result is in rdx:rax.
  //
  // rsp ---> [  ??  ] \               \
  //            ....    | y_rsp_offset  |
  //          [ y_lo ] /  (in bytes)    | x_rsp_offset
  //          [ y_hi ]                  | (in bytes)
  //            ....                    |
  //          [ x_lo ]                 /
  //          [ x_hi ]
  //            ....
  //
  // Basic idea: lo(result) = lo(x_lo * y_lo)
  //             hi(result) = hi(x_lo * y_lo) + lo(x_hi * y_lo) + lo(x_lo * y_hi)
  Address x_hi(rsp, x_rsp_offset + wordSize); Address x_lo(rsp, x_rsp_offset);
  Address y_hi(rsp, y_rsp_offset + wordSize); Address y_lo(rsp, y_rsp_offset);
  Label quick;
  // load x_hi, y_hi and check if quick
  // multiplication is possible
  movl(rbx, x_hi);
  movl(rcx, y_hi);
  movl(rax, rbx);
  orl(rbx, rcx);                                 // rbx, = 0 <=> x_hi = 0 and y_hi = 0
  jcc(Assembler::zero, quick);                   // if rbx, = 0 do quick multiply
  // do full multiplication
  // 1st step
  mull(y_lo);                                    // x_hi * y_lo
  movl(rbx, rax);                                // save lo(x_hi * y_lo) in rbx,
  // 2nd step
  movl(rax, x_lo);
  mull(rcx);                                     // x_lo * y_hi
  addl(rbx, rax);                                // add lo(x_lo * y_hi) to rbx,
  // 3rd step
  bind(quick);                                   // note: rbx, = 0 if quick multiply!
  movl(rax, x_lo);
  mull(y_lo);                                    // x_lo * y_lo
  addl(rdx, rbx);                                // correct hi(x_lo * y_lo)
}

void MacroAssembler::lneg(Register hi, Register lo) {
  negl(lo);
  adcl(hi, 0);
  negl(hi);
}

void MacroAssembler::lshl(Register hi, Register lo) {
  // Java shift left long support (semantics as described in JVM spec., p.305)
  // (basic idea for shift counts s >= n: x << s == (x << n) << (s - n))
  // shift value is in rcx !
  assert(hi != rcx, "must not use rcx");
  assert(lo != rcx, "must not use rcx");
  const Register s = rcx;                        // shift count
  const int      n = BitsPerWord;
  Label L;
  andl(s, 0x3f);                                 // s := s & 0x3f (s < 0x40)
  cmpl(s, n);                                    // if (s < n)
  jcc(Assembler::less, L);                       // else (s >= n)
  movl(hi, lo);                                  // x := x << n
  xorl(lo, lo);
  // Note: subl(s, n) is not needed since the Intel shift instructions work rcx mod n!
  bind(L);                                       // s (mod n) < n
  shldl(hi, lo);                                 // x := x << s
  shll(lo);
}


void MacroAssembler::lshr(Register hi, Register lo, bool sign_extension) {
  // Java shift right long support (semantics as described in JVM spec., p.306 & p.310)
  // (basic idea for shift counts s >= n: x >> s == (x >> n) >> (s - n))
  assert(hi != rcx, "must not use rcx");
  assert(lo != rcx, "must not use rcx");
  const Register s = rcx;                        // shift count
  const int      n = BitsPerWord;
  Label L;
  andl(s, 0x3f);                                 // s := s & 0x3f (s < 0x40)
  cmpl(s, n);                                    // if (s < n)
  jcc(Assembler::less, L);                       // else (s >= n)
  movl(lo, hi);                                  // x := x >> n
  if (sign_extension) sarl(hi, 31);
  else                xorl(hi, hi);
  // Note: subl(s, n) is not needed since the Intel shift instructions work rcx mod n!
  bind(L);                                       // s (mod n) < n
  shrdl(lo, hi);                                 // x := x >> s
  if (sign_extension) sarl(hi);
  else                shrl(hi);
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}

4880 4881
void MacroAssembler::movoop(Register dst, jobject obj) {
  mov_literal32(dst, (int32_t)obj, oop_Relocation::spec_for_immediate());
D
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}

4884 4885
void MacroAssembler::movoop(Address dst, jobject obj) {
  mov_literal32(dst, (int32_t)obj, oop_Relocation::spec_for_immediate());
D
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}

4888 4889 4890 4891 4892 4893
void MacroAssembler::movptr(Register dst, AddressLiteral src) {
  if (src.is_lval()) {
    mov_literal32(dst, (intptr_t)src.target(), src.rspec());
  } else {
    movl(dst, as_Address(src));
  }
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}

4896 4897
void MacroAssembler::movptr(ArrayAddress dst, Register src) {
  movl(as_Address(dst), src);
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}

4900 4901
void MacroAssembler::movptr(Register dst, ArrayAddress src) {
  movl(dst, as_Address(src));
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4902 4903
}

4904 4905 4906
// src should NEVER be a real pointer. Use AddressLiteral for true pointers
void MacroAssembler::movptr(Address dst, intptr_t src) {
  movl(dst, src);
D
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}

4909 4910 4911

void MacroAssembler::movsd(XMMRegister dst, AddressLiteral src) {
  movsd(dst, as_Address(src));
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}

4914 4915 4916 4917 4918
void MacroAssembler::pop_callee_saved_registers() {
  pop(rcx);
  pop(rdx);
  pop(rdi);
  pop(rsi);
D
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}

4921 4922 4923
void MacroAssembler::pop_fTOS() {
  fld_d(Address(rsp, 0));
  addl(rsp, 2 * wordSize);
D
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}

4926 4927 4928 4929 4930
void MacroAssembler::push_callee_saved_registers() {
  push(rsi);
  push(rdi);
  push(rdx);
  push(rcx);
D
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}

4933 4934 4935
void MacroAssembler::push_fTOS() {
  subl(rsp, 2 * wordSize);
  fstp_d(Address(rsp, 0));
D
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}

4938 4939 4940

void MacroAssembler::pushoop(jobject obj) {
  push_literal32((int32_t)obj, oop_Relocation::spec_for_immediate());
D
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4941 4942
}

4943 4944 4945 4946 4947 4948 4949

void MacroAssembler::pushptr(AddressLiteral src) {
  if (src.is_lval()) {
    push_literal32((int32_t)src.target(), src.rspec());
  } else {
    pushl(as_Address(src));
  }
D
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4950 4951
}

4952 4953 4954
void MacroAssembler::set_word_if_not_zero(Register dst) {
  xorl(dst, dst);
  set_byte_if_not_zero(dst);
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}

4957 4958
static void pass_arg0(MacroAssembler* masm, Register arg) {
  masm->push(arg);
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}

4961 4962
static void pass_arg1(MacroAssembler* masm, Register arg) {
  masm->push(arg);
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}

4965 4966
static void pass_arg2(MacroAssembler* masm, Register arg) {
  masm->push(arg);
4967 4968
}

4969 4970
static void pass_arg3(MacroAssembler* masm, Register arg) {
  masm->push(arg);
4971 4972
}

4973 4974 4975 4976 4977 4978 4979 4980 4981 4982 4983 4984 4985 4986 4987 4988 4989 4990 4991 4992 4993 4994 4995 4996 4997 4998 4999 5000 5001 5002 5003 5004 5005 5006 5007 5008 5009 5010 5011 5012 5013 5014 5015
#ifndef PRODUCT
extern "C" void findpc(intptr_t x);
#endif

void MacroAssembler::debug32(int rdi, int rsi, int rbp, int rsp, int rbx, int rdx, int rcx, int rax, int eip, char* msg) {
  // In order to get locks to work, we need to fake a in_VM state
  JavaThread* thread = JavaThread::current();
  JavaThreadState saved_state = thread->thread_state();
  thread->set_thread_state(_thread_in_vm);
  if (ShowMessageBoxOnError) {
    JavaThread* thread = JavaThread::current();
    JavaThreadState saved_state = thread->thread_state();
    thread->set_thread_state(_thread_in_vm);
    if (CountBytecodes || TraceBytecodes || StopInterpreterAt) {
      ttyLocker ttyl;
      BytecodeCounter::print();
    }
    // To see where a verify_oop failed, get $ebx+40/X for this frame.
    // This is the value of eip which points to where verify_oop will return.
    if (os::message_box(msg, "Execution stopped, print registers?")) {
      ttyLocker ttyl;
      tty->print_cr("eip = 0x%08x", eip);
#ifndef PRODUCT
      tty->cr();
      findpc(eip);
      tty->cr();
#endif
      tty->print_cr("rax, = 0x%08x", rax);
      tty->print_cr("rbx, = 0x%08x", rbx);
      tty->print_cr("rcx = 0x%08x", rcx);
      tty->print_cr("rdx = 0x%08x", rdx);
      tty->print_cr("rdi = 0x%08x", rdi);
      tty->print_cr("rsi = 0x%08x", rsi);
      tty->print_cr("rbp, = 0x%08x", rbp);
      tty->print_cr("rsp = 0x%08x", rsp);
      BREAKPOINT;
    }
  } else {
    ttyLocker ttyl;
    ::tty->print_cr("=============== DEBUG MESSAGE: %s ================\n", msg);
    assert(false, "DEBUG MESSAGE");
  }
  ThreadStateTransition::transition(thread, _thread_in_vm, saved_state);
D
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}

5018 5019 5020 5021 5022 5023 5024 5025
void MacroAssembler::stop(const char* msg) {
  ExternalAddress message((address)msg);
  // push address of message
  pushptr(message.addr());
  { Label L; call(L, relocInfo::none); bind(L); }     // push eip
  pusha();                                           // push registers
  call(RuntimeAddress(CAST_FROM_FN_PTR(address, MacroAssembler::debug32)));
  hlt();
D
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5026 5027
}

5028 5029 5030 5031 5032 5033 5034 5035 5036 5037 5038 5039 5040 5041 5042
void MacroAssembler::warn(const char* msg) {
  push_CPU_state();

  ExternalAddress message((address) msg);
  // push address of message
  pushptr(message.addr());

  call(RuntimeAddress(CAST_FROM_FN_PTR(address, warning)));
  addl(rsp, wordSize);       // discard argument
  pop_CPU_state();
}

#else // _LP64

// 64 bit versions
D
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Address MacroAssembler::as_Address(AddressLiteral adr) {
5045 5046 5047
  // amd64 always does this as a pc-rel
  // we can be absolute or disp based on the instruction type
  // jmp/call are displacements others are absolute
D
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  assert(!adr.is_lval(), "must be rval");
  assert(reachable(adr), "must be");
5050 5051 5052 5053 5054 5055 5056 5057 5058 5059 5060
  return Address((int32_t)(intptr_t)(adr.target() - pc()), adr.target(), adr.reloc());

}

Address MacroAssembler::as_Address(ArrayAddress adr) {
  AddressLiteral base = adr.base();
  lea(rscratch1, base);
  Address index = adr.index();
  assert(index._disp == 0, "must not have disp"); // maybe it can?
  Address array(rscratch1, index._index, index._scale, index._disp);
  return array;
D
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}

5063 5064 5065 5066 5067 5068 5069 5070 5071 5072 5073 5074 5075 5076 5077 5078 5079 5080 5081 5082 5083 5084 5085 5086 5087 5088 5089 5090 5091 5092 5093 5094 5095 5096 5097 5098 5099 5100 5101 5102 5103 5104 5105 5106 5107 5108 5109 5110 5111 5112 5113 5114 5115 5116 5117 5118 5119 5120 5121 5122 5123 5124 5125 5126 5127 5128 5129 5130 5131 5132 5133 5134 5135 5136 5137 5138 5139 5140 5141 5142 5143 5144 5145 5146 5147 5148 5149 5150 5151 5152 5153 5154 5155 5156 5157 5158 5159 5160 5161 5162 5163 5164 5165 5166 5167 5168 5169 5170 5171 5172 5173 5174 5175 5176 5177 5178 5179 5180 5181 5182 5183 5184 5185 5186 5187 5188 5189 5190 5191 5192 5193 5194 5195 5196 5197 5198 5199 5200 5201 5202 5203 5204 5205 5206 5207 5208 5209 5210 5211 5212 5213 5214 5215
int MacroAssembler::biased_locking_enter(Register lock_reg,
                                         Register obj_reg,
                                         Register swap_reg,
                                         Register tmp_reg,
                                         bool swap_reg_contains_mark,
                                         Label& done,
                                         Label* slow_case,
                                         BiasedLockingCounters* counters) {
  assert(UseBiasedLocking, "why call this otherwise?");
  assert(swap_reg == rax, "swap_reg must be rax for cmpxchgq");
  assert(tmp_reg != noreg, "tmp_reg must be supplied");
  assert_different_registers(lock_reg, obj_reg, swap_reg, tmp_reg);
  assert(markOopDesc::age_shift == markOopDesc::lock_bits + markOopDesc::biased_lock_bits, "biased locking makes assumptions about bit layout");
  Address mark_addr      (obj_reg, oopDesc::mark_offset_in_bytes());
  Address saved_mark_addr(lock_reg, 0);

  if (PrintBiasedLockingStatistics && counters == NULL)
    counters = BiasedLocking::counters();

  // Biased locking
  // See whether the lock is currently biased toward our thread and
  // whether the epoch is still valid
  // Note that the runtime guarantees sufficient alignment of JavaThread
  // pointers to allow age to be placed into low bits
  // First check to see whether biasing is even enabled for this object
  Label cas_label;
  int null_check_offset = -1;
  if (!swap_reg_contains_mark) {
    null_check_offset = offset();
    movq(swap_reg, mark_addr);
  }
  movq(tmp_reg, swap_reg);
  andq(tmp_reg, markOopDesc::biased_lock_mask_in_place);
  cmpq(tmp_reg, markOopDesc::biased_lock_pattern);
  jcc(Assembler::notEqual, cas_label);
  // The bias pattern is present in the object's header. Need to check
  // whether the bias owner and the epoch are both still current.
  load_prototype_header(tmp_reg, obj_reg);
  orq(tmp_reg, r15_thread);
  xorq(tmp_reg, swap_reg);
  andq(tmp_reg, ~((int) markOopDesc::age_mask_in_place));
  if (counters != NULL) {
    cond_inc32(Assembler::zero,
               ExternalAddress((address) counters->anonymously_biased_lock_entry_count_addr()));
  }
  jcc(Assembler::equal, done);

  Label try_revoke_bias;
  Label try_rebias;

  // At this point we know that the header has the bias pattern and
  // that we are not the bias owner in the current epoch. We need to
  // figure out more details about the state of the header in order to
  // know what operations can be legally performed on the object's
  // header.

  // If the low three bits in the xor result aren't clear, that means
  // the prototype header is no longer biased and we have to revoke
  // the bias on this object.
  testq(tmp_reg, markOopDesc::biased_lock_mask_in_place);
  jcc(Assembler::notZero, try_revoke_bias);

  // Biasing is still enabled for this data type. See whether the
  // epoch of the current bias is still valid, meaning that the epoch
  // bits of the mark word are equal to the epoch bits of the
  // prototype header. (Note that the prototype header's epoch bits
  // only change at a safepoint.) If not, attempt to rebias the object
  // toward the current thread. Note that we must be absolutely sure
  // that the current epoch is invalid in order to do this because
  // otherwise the manipulations it performs on the mark word are
  // illegal.
  testq(tmp_reg, markOopDesc::epoch_mask_in_place);
  jcc(Assembler::notZero, try_rebias);

  // The epoch of the current bias is still valid but we know nothing
  // about the owner; it might be set or it might be clear. Try to
  // acquire the bias of the object using an atomic operation. If this
  // fails we will go in to the runtime to revoke the object's bias.
  // Note that we first construct the presumed unbiased header so we
  // don't accidentally blow away another thread's valid bias.
  andq(swap_reg,
       markOopDesc::biased_lock_mask_in_place | markOopDesc::age_mask_in_place | markOopDesc::epoch_mask_in_place);
  movq(tmp_reg, swap_reg);
  orq(tmp_reg, r15_thread);
  if (os::is_MP()) {
    lock();
  }
  cmpxchgq(tmp_reg, Address(obj_reg, 0));
  // If the biasing toward our thread failed, this means that
  // another thread succeeded in biasing it toward itself and we
  // need to revoke that bias. The revocation will occur in the
  // interpreter runtime in the slow case.
  if (counters != NULL) {
    cond_inc32(Assembler::zero,
               ExternalAddress((address) counters->anonymously_biased_lock_entry_count_addr()));
  }
  if (slow_case != NULL) {
    jcc(Assembler::notZero, *slow_case);
  }
  jmp(done);

  bind(try_rebias);
  // At this point we know the epoch has expired, meaning that the
  // current "bias owner", if any, is actually invalid. Under these
  // circumstances _only_, we are allowed to use the current header's
  // value as the comparison value when doing the cas to acquire the
  // bias in the current epoch. In other words, we allow transfer of
  // the bias from one thread to another directly in this situation.
  //
  // FIXME: due to a lack of registers we currently blow away the age
  // bits in this situation. Should attempt to preserve them.
  load_prototype_header(tmp_reg, obj_reg);
  orq(tmp_reg, r15_thread);
  if (os::is_MP()) {
    lock();
  }
  cmpxchgq(tmp_reg, Address(obj_reg, 0));
  // If the biasing toward our thread failed, then another thread
  // succeeded in biasing it toward itself and we need to revoke that
  // bias. The revocation will occur in the runtime in the slow case.
  if (counters != NULL) {
    cond_inc32(Assembler::zero,
               ExternalAddress((address) counters->rebiased_lock_entry_count_addr()));
  }
  if (slow_case != NULL) {
    jcc(Assembler::notZero, *slow_case);
  }
  jmp(done);

  bind(try_revoke_bias);
  // The prototype mark in the klass doesn't have the bias bit set any
  // more, indicating that objects of this data type are not supposed
  // to be biased any more. We are going to try to reset the mark of
  // this object to the prototype value and fall through to the
  // CAS-based locking scheme. Note that if our CAS fails, it means
  // that another thread raced us for the privilege of revoking the
  // bias of this particular object, so it's okay to continue in the
  // normal locking code.
  //
  // FIXME: due to a lack of registers we currently blow away the age
  // bits in this situation. Should attempt to preserve them.
  load_prototype_header(tmp_reg, obj_reg);
  if (os::is_MP()) {
    lock();
  }
  cmpxchgq(tmp_reg, Address(obj_reg, 0));
  // Fall through to the normal CAS-based lock, because no matter what
  // the result of the above CAS, some thread must have succeeded in
  // removing the bias bit from the object's header.
  if (counters != NULL) {
    cond_inc32(Assembler::zero,
               ExternalAddress((address) counters->revoked_lock_entry_count_addr()));
  }
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5217
  bind(cas_label);
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5218

5219
  return null_check_offset;
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5220 5221
}

5222 5223
void MacroAssembler::call_VM_leaf_base(address entry_point, int num_args) {
  Label L, E;
D
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5225 5226 5227 5228 5229
#ifdef _WIN64
  // Windows always allocates space for it's register args
  assert(num_args <= 4, "only register arguments supported");
  subq(rsp,  frame::arg_reg_save_area_bytes);
#endif
D
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5231 5232 5233
  // Align stack if necessary
  testl(rsp, 15);
  jcc(Assembler::zero, L);
D
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5234

5235 5236 5237
  subq(rsp, 8);
  {
    call(RuntimeAddress(entry_point));
D
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5238
  }
5239 5240
  addq(rsp, 8);
  jmp(E);
D
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5241

5242 5243 5244
  bind(L);
  {
    call(RuntimeAddress(entry_point));
D
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5245 5246
  }

5247
  bind(E);
D
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5248

5249 5250 5251 5252
#ifdef _WIN64
  // restore stack pointer
  addq(rsp, frame::arg_reg_save_area_bytes);
#endif
D
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5253 5254 5255

}

5256 5257
void MacroAssembler::cmp64(Register src1, AddressLiteral src2) {
  assert(!src2.is_lval(), "should use cmpptr");
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  if (reachable(src2)) {
    cmpq(src1, as_Address(src2));
  } else {
    lea(rscratch1, src2);
    Assembler::cmpq(src1, Address(rscratch1, 0));
  }
}

5267 5268 5269 5270 5271 5272 5273 5274 5275 5276 5277 5278 5279 5280 5281 5282 5283 5284 5285 5286 5287 5288 5289 5290 5291 5292 5293 5294 5295 5296 5297 5298 5299 5300 5301 5302 5303 5304 5305 5306 5307 5308 5309
int MacroAssembler::corrected_idivq(Register reg) {
  // Full implementation of Java ldiv and lrem; checks for special
  // case as described in JVM spec., p.243 & p.271.  The function
  // returns the (pc) offset of the idivl instruction - may be needed
  // for implicit exceptions.
  //
  //         normal case                           special case
  //
  // input : rax: dividend                         min_long
  //         reg: divisor   (may not be eax/edx)   -1
  //
  // output: rax: quotient  (= rax idiv reg)       min_long
  //         rdx: remainder (= rax irem reg)       0
  assert(reg != rax && reg != rdx, "reg cannot be rax or rdx register");
  static const int64_t min_long = 0x8000000000000000;
  Label normal_case, special_case;

  // check for special case
  cmp64(rax, ExternalAddress((address) &min_long));
  jcc(Assembler::notEqual, normal_case);
  xorl(rdx, rdx); // prepare rdx for possible special case (where
                  // remainder = 0)
  cmpq(reg, -1);
  jcc(Assembler::equal, special_case);

  // handle normal case
  bind(normal_case);
  cdqq();
  int idivq_offset = offset();
  idivq(reg);

  // normal and special case exit
  bind(special_case);

  return idivq_offset;
}

void MacroAssembler::decrementq(Register reg, int value) {
  if (value == min_jint) { subq(reg, value); return; }
  if (value <  0) { incrementq(reg, -value); return; }
  if (value == 0) {                        ; return; }
  if (value == 1 && UseIncDec) { decq(reg) ; return; }
  /* else */      { subq(reg, value)       ; return; }
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5310 5311
}

5312 5313 5314 5315 5316 5317 5318
void MacroAssembler::decrementq(Address dst, int value) {
  if (value == min_jint) { subq(dst, value); return; }
  if (value <  0) { incrementq(dst, -value); return; }
  if (value == 0) {                        ; return; }
  if (value == 1 && UseIncDec) { decq(dst) ; return; }
  /* else */      { subq(dst, value)       ; return; }
}
D
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5319

5320 5321 5322 5323 5324 5325 5326 5327 5328
void MacroAssembler::fat_nop() {
  // A 5 byte nop that is safe for patching (see patch_verified_entry)
  // Recommened sequence from 'Software Optimization Guide for the AMD
  // Hammer Processor'
  emit_byte(0x66);
  emit_byte(0x66);
  emit_byte(0x90);
  emit_byte(0x66);
  emit_byte(0x90);
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}

5331 5332 5333 5334 5335 5336
void MacroAssembler::incrementq(Register reg, int value) {
  if (value == min_jint) { addq(reg, value); return; }
  if (value <  0) { decrementq(reg, -value); return; }
  if (value == 0) {                        ; return; }
  if (value == 1 && UseIncDec) { incq(reg) ; return; }
  /* else */      { addq(reg, value)       ; return; }
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}

5339 5340 5341 5342 5343 5344
void MacroAssembler::incrementq(Address dst, int value) {
  if (value == min_jint) { addq(dst, value); return; }
  if (value <  0) { decrementq(dst, -value); return; }
  if (value == 0) {                        ; return; }
  if (value == 1 && UseIncDec) { incq(dst) ; return; }
  /* else */      { addq(dst, value)       ; return; }
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}

5347 5348 5349 5350 5351 5352 5353 5354
// 32bit can do a case table jump in one instruction but we no longer allow the base
// to be installed in the Address class
void MacroAssembler::jump(ArrayAddress entry) {
  lea(rscratch1, entry.base());
  Address dispatch = entry.index();
  assert(dispatch._base == noreg, "must be");
  dispatch._base = rscratch1;
  jmp(dispatch);
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5355 5356
}

5357 5358 5359
void MacroAssembler::lcmp2int(Register x_hi, Register x_lo, Register y_hi, Register y_lo) {
  ShouldNotReachHere(); // 64bit doesn't use two regs
  cmpq(x_lo, y_lo);
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5360 5361 5362 5363 5364 5365
}

void MacroAssembler::lea(Register dst, AddressLiteral src) {
    mov_literal64(dst, (intptr_t)src.target(), src.rspec());
}

5366 5367 5368
void MacroAssembler::lea(Address dst, AddressLiteral adr) {
  mov_literal64(rscratch1, (intptr_t)adr.target(), adr.rspec());
  movptr(dst, rscratch1);
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}

5371 5372 5373
void MacroAssembler::leave() {
  // %%% is this really better? Why not on 32bit too?
  emit_byte(0xC9); // LEAVE
D
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5374 5375
}

5376 5377 5378
void MacroAssembler::lneg(Register hi, Register lo) {
  ShouldNotReachHere(); // 64bit doesn't use two regs
  negq(lo);
D
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5379 5380 5381 5382 5383 5384 5385 5386 5387 5388 5389 5390 5391 5392 5393 5394 5395 5396 5397 5398 5399 5400 5401 5402 5403 5404
}

void MacroAssembler::movoop(Register dst, jobject obj) {
  mov_literal64(dst, (intptr_t)obj, oop_Relocation::spec_for_immediate());
}

void MacroAssembler::movoop(Address dst, jobject obj) {
  mov_literal64(rscratch1, (intptr_t)obj, oop_Relocation::spec_for_immediate());
  movq(dst, rscratch1);
}

void MacroAssembler::movptr(Register dst, AddressLiteral src) {
  if (src.is_lval()) {
    mov_literal64(dst, (intptr_t)src.target(), src.rspec());
  } else {
    if (reachable(src)) {
      movq(dst, as_Address(src));
    } else {
      lea(rscratch1, src);
      movq(dst, Address(rscratch1,0));
    }
  }
}

void MacroAssembler::movptr(ArrayAddress dst, Register src) {
  movq(as_Address(dst), src);
5405 5406 5407 5408 5409 5410 5411 5412 5413 5414 5415 5416 5417 5418 5419 5420 5421 5422 5423
}

void MacroAssembler::movptr(Register dst, ArrayAddress src) {
  movq(dst, as_Address(src));
}

// src should NEVER be a real pointer. Use AddressLiteral for true pointers
void MacroAssembler::movptr(Address dst, intptr_t src) {
  mov64(rscratch1, src);
  movq(dst, rscratch1);
}

// These are mostly for initializing NULL
void MacroAssembler::movptr(Address dst, int32_t src) {
  movslq(dst, src);
}

void MacroAssembler::movptr(Register dst, int32_t src) {
  mov64(dst, (intptr_t)src);
D
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5424 5425 5426 5427
}

void MacroAssembler::pushoop(jobject obj) {
  movoop(rscratch1, obj);
5428
  push(rscratch1);
D
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5429 5430 5431 5432 5433
}

void MacroAssembler::pushptr(AddressLiteral src) {
  lea(rscratch1, src);
  if (src.is_lval()) {
5434
    push(rscratch1);
D
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5435 5436 5437
  } else {
    pushq(Address(rscratch1, 0));
  }
5438 5439 5440 5441 5442
}

void MacroAssembler::reset_last_Java_frame(bool clear_fp,
                                           bool clear_pc) {
  // we must set sp to zero to clear frame
5443
  movptr(Address(r15_thread, JavaThread::last_Java_sp_offset()), NULL_WORD);
5444 5445 5446
  // must clear fp, so that compiled frames are not confused; it is
  // possible that we need it only for debugging
  if (clear_fp) {
5447
    movptr(Address(r15_thread, JavaThread::last_Java_fp_offset()), NULL_WORD);
5448 5449 5450
  }

  if (clear_pc) {
5451
    movptr(Address(r15_thread, JavaThread::last_Java_pc_offset()), NULL_WORD);
D
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5452 5453 5454
  }
}

5455 5456 5457 5458 5459 5460 5461 5462 5463 5464 5465 5466 5467 5468 5469 5470 5471 5472 5473 5474 5475 5476 5477 5478 5479 5480 5481 5482
void MacroAssembler::set_last_Java_frame(Register last_java_sp,
                                         Register last_java_fp,
                                         address  last_java_pc) {
  // determine last_java_sp register
  if (!last_java_sp->is_valid()) {
    last_java_sp = rsp;
  }

  // last_java_fp is optional
  if (last_java_fp->is_valid()) {
    movptr(Address(r15_thread, JavaThread::last_Java_fp_offset()),
           last_java_fp);
  }

  // last_java_pc is optional
  if (last_java_pc != NULL) {
    Address java_pc(r15_thread,
                    JavaThread::frame_anchor_offset() + JavaFrameAnchor::last_Java_pc_offset());
    lea(rscratch1, InternalAddress(last_java_pc));
    movptr(java_pc, rscratch1);
  }

  movptr(Address(r15_thread, JavaThread::last_Java_sp_offset()), last_java_sp);
}

static void pass_arg0(MacroAssembler* masm, Register arg) {
  if (c_rarg0 != arg ) {
    masm->mov(c_rarg0, arg);
D
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  }
}

5486 5487 5488 5489 5490 5491 5492 5493 5494 5495 5496 5497 5498 5499 5500 5501 5502 5503 5504 5505 5506 5507 5508 5509 5510 5511 5512 5513 5514 5515 5516 5517 5518 5519 5520 5521 5522 5523 5524 5525 5526 5527 5528 5529 5530 5531 5532 5533 5534 5535 5536 5537 5538 5539 5540 5541 5542 5543 5544 5545 5546 5547 5548 5549 5550 5551 5552 5553 5554 5555 5556 5557 5558 5559 5560 5561 5562 5563 5564 5565 5566 5567 5568 5569 5570 5571 5572 5573 5574
static void pass_arg1(MacroAssembler* masm, Register arg) {
  if (c_rarg1 != arg ) {
    masm->mov(c_rarg1, arg);
  }
}

static void pass_arg2(MacroAssembler* masm, Register arg) {
  if (c_rarg2 != arg ) {
    masm->mov(c_rarg2, arg);
  }
}

static void pass_arg3(MacroAssembler* masm, Register arg) {
  if (c_rarg3 != arg ) {
    masm->mov(c_rarg3, arg);
  }
}

void MacroAssembler::stop(const char* msg) {
  address rip = pc();
  pusha(); // get regs on stack
  lea(c_rarg0, ExternalAddress((address) msg));
  lea(c_rarg1, InternalAddress(rip));
  movq(c_rarg2, rsp); // pass pointer to regs array
  andq(rsp, -16); // align stack as required by ABI
  call(RuntimeAddress(CAST_FROM_FN_PTR(address, MacroAssembler::debug64)));
  hlt();
}

void MacroAssembler::warn(const char* msg) {
  push(r12);
  movq(r12, rsp);
  andq(rsp, -16);     // align stack as required by push_CPU_state and call

  push_CPU_state();   // keeps alignment at 16 bytes
  lea(c_rarg0, ExternalAddress((address) msg));
  call_VM_leaf(CAST_FROM_FN_PTR(address, warning), c_rarg0);
  pop_CPU_state();

  movq(rsp, r12);
  pop(r12);
}

#ifndef PRODUCT
extern "C" void findpc(intptr_t x);
#endif

void MacroAssembler::debug64(char* msg, int64_t pc, int64_t regs[]) {
  // In order to get locks to work, we need to fake a in_VM state
  if (ShowMessageBoxOnError ) {
    JavaThread* thread = JavaThread::current();
    JavaThreadState saved_state = thread->thread_state();
    thread->set_thread_state(_thread_in_vm);
#ifndef PRODUCT
    if (CountBytecodes || TraceBytecodes || StopInterpreterAt) {
      ttyLocker ttyl;
      BytecodeCounter::print();
    }
#endif
    // To see where a verify_oop failed, get $ebx+40/X for this frame.
    // XXX correct this offset for amd64
    // This is the value of eip which points to where verify_oop will return.
    if (os::message_box(msg, "Execution stopped, print registers?")) {
      ttyLocker ttyl;
      tty->print_cr("rip = 0x%016lx", pc);
#ifndef PRODUCT
      tty->cr();
      findpc(pc);
      tty->cr();
#endif
      tty->print_cr("rax = 0x%016lx", regs[15]);
      tty->print_cr("rbx = 0x%016lx", regs[12]);
      tty->print_cr("rcx = 0x%016lx", regs[14]);
      tty->print_cr("rdx = 0x%016lx", regs[13]);
      tty->print_cr("rdi = 0x%016lx", regs[8]);
      tty->print_cr("rsi = 0x%016lx", regs[9]);
      tty->print_cr("rbp = 0x%016lx", regs[10]);
      tty->print_cr("rsp = 0x%016lx", regs[11]);
      tty->print_cr("r8  = 0x%016lx", regs[7]);
      tty->print_cr("r9  = 0x%016lx", regs[6]);
      tty->print_cr("r10 = 0x%016lx", regs[5]);
      tty->print_cr("r11 = 0x%016lx", regs[4]);
      tty->print_cr("r12 = 0x%016lx", regs[3]);
      tty->print_cr("r13 = 0x%016lx", regs[2]);
      tty->print_cr("r14 = 0x%016lx", regs[1]);
      tty->print_cr("r15 = 0x%016lx", regs[0]);
      BREAKPOINT;
    }
    ThreadStateTransition::transition(thread, _thread_in_vm, saved_state);
D
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  } else {
5576 5577 5578
    ttyLocker ttyl;
    ::tty->print_cr("=============== DEBUG MESSAGE: %s ================\n",
                    msg);
D
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5579 5580 5581
  }
}

5582
#endif // _LP64
D
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5583

5584
// Now versions that are common to 32/64 bit
D
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5585

5586 5587
void MacroAssembler::addptr(Register dst, int32_t imm32) {
  LP64_ONLY(addq(dst, imm32)) NOT_LP64(addl(dst, imm32));
D
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5588 5589
}

5590 5591
void MacroAssembler::addptr(Register dst, Register src) {
  LP64_ONLY(addq(dst, src)) NOT_LP64(addl(dst, src));
D
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5592 5593
}

5594 5595
void MacroAssembler::addptr(Address dst, Register src) {
  LP64_ONLY(addq(dst, src)) NOT_LP64(addl(dst, src));
D
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5596 5597
}

5598 5599 5600 5601
void MacroAssembler::align(int modulus) {
  if (offset() % modulus != 0) {
    nop(modulus - (offset() % modulus));
  }
D
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5602 5603
}

5604
void MacroAssembler::andpd(XMMRegister dst, AddressLiteral src) {
R
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5605 5606 5607 5608 5609 5610
  if (reachable(src)) {
    andpd(dst, as_Address(src));
  } else {
    lea(rscratch1, src);
    andpd(dst, Address(rscratch1, 0));
  }
D
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5611 5612
}

5613 5614
void MacroAssembler::andptr(Register dst, int32_t imm32) {
  LP64_ONLY(andq(dst, imm32)) NOT_LP64(andl(dst, imm32));
D
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5615 5616
}

5617 5618 5619 5620 5621 5622
void MacroAssembler::atomic_incl(AddressLiteral counter_addr) {
  pushf();
  if (os::is_MP())
    lock();
  incrementl(counter_addr);
  popf();
D
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5623 5624
}

5625 5626 5627 5628 5629 5630 5631 5632 5633 5634 5635 5636 5637
// Writes to stack successive pages until offset reached to check for
// stack overflow + shadow pages.  This clobbers tmp.
void MacroAssembler::bang_stack_size(Register size, Register tmp) {
  movptr(tmp, rsp);
  // Bang stack for total size given plus shadow page size.
  // Bang one page at a time because large size can bang beyond yellow and
  // red zones.
  Label loop;
  bind(loop);
  movl(Address(tmp, (-os::vm_page_size())), size );
  subptr(tmp, os::vm_page_size());
  subl(size, os::vm_page_size());
  jcc(Assembler::greater, loop);
D
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5638

5639 5640 5641 5642 5643 5644 5645
  // Bang down shadow pages too.
  // The -1 because we already subtracted 1 page.
  for (int i = 0; i< StackShadowPages-1; i++) {
    // this could be any sized move but this is can be a debugging crumb
    // so the bigger the better.
    movptr(Address(tmp, (-i*os::vm_page_size())), size );
  }
D
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5646 5647
}

5648 5649 5650 5651 5652 5653 5654 5655 5656 5657 5658 5659 5660
void MacroAssembler::biased_locking_exit(Register obj_reg, Register temp_reg, Label& done) {
  assert(UseBiasedLocking, "why call this otherwise?");

  // Check for biased locking unlock case, which is a no-op
  // Note: we do not have to check the thread ID for two reasons.
  // First, the interpreter checks for IllegalMonitorStateException at
  // a higher level. Second, if the bias was revoked while we held the
  // lock, the object could not be rebiased toward another thread, so
  // the bias bit would be clear.
  movptr(temp_reg, Address(obj_reg, oopDesc::mark_offset_in_bytes()));
  andptr(temp_reg, markOopDesc::biased_lock_mask_in_place);
  cmpptr(temp_reg, markOopDesc::biased_lock_pattern);
  jcc(Assembler::equal, done);
D
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5661 5662
}

5663 5664 5665 5666 5667 5668 5669
void MacroAssembler::c2bool(Register x) {
  // implements x == 0 ? 0 : 1
  // note: must only look at least-significant byte of x
  //       since C-style booleans are stored in one byte
  //       only! (was bug)
  andl(x, 0xFF);
  setb(Assembler::notZero, x);
D
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5670 5671
}

5672 5673 5674
// Wouldn't need if AddressLiteral version had new name
void MacroAssembler::call(Label& L, relocInfo::relocType rtype) {
  Assembler::call(L, rtype);
D
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5675 5676
}

5677 5678
void MacroAssembler::call(Register entry) {
  Assembler::call(entry);
D
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5679 5680
}

5681 5682 5683 5684 5685 5686
void MacroAssembler::call(AddressLiteral entry) {
  if (reachable(entry)) {
    Assembler::call_literal(entry.target(), entry.rspec());
  } else {
    lea(rscratch1, entry);
    Assembler::call(rscratch1);
D
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5687 5688 5689
  }
}

5690
// Implementation of call_VM versions
D
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5691

5692 5693 5694 5695 5696 5697
void MacroAssembler::call_VM(Register oop_result,
                             address entry_point,
                             bool check_exceptions) {
  Label C, E;
  call(C, relocInfo::none);
  jmp(E);
D
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5698

5699 5700 5701
  bind(C);
  call_VM_helper(oop_result, entry_point, 0, check_exceptions);
  ret(0);
D
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5702

5703
  bind(E);
D
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5704 5705
}

5706 5707 5708 5709 5710 5711 5712
void MacroAssembler::call_VM(Register oop_result,
                             address entry_point,
                             Register arg_1,
                             bool check_exceptions) {
  Label C, E;
  call(C, relocInfo::none);
  jmp(E);
D
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5713

5714 5715 5716 5717
  bind(C);
  pass_arg1(this, arg_1);
  call_VM_helper(oop_result, entry_point, 1, check_exceptions);
  ret(0);
D
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5718

5719
  bind(E);
D
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5720 5721
}

5722 5723 5724 5725 5726 5727 5728 5729
void MacroAssembler::call_VM(Register oop_result,
                             address entry_point,
                             Register arg_1,
                             Register arg_2,
                             bool check_exceptions) {
  Label C, E;
  call(C, relocInfo::none);
  jmp(E);
D
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5730

5731
  bind(C);
D
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5732

5733
  LP64_ONLY(assert(arg_1 != c_rarg2, "smashed arg"));
D
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5734

5735 5736 5737 5738
  pass_arg2(this, arg_2);
  pass_arg1(this, arg_1);
  call_VM_helper(oop_result, entry_point, 2, check_exceptions);
  ret(0);
D
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5739

5740
  bind(E);
D
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5741 5742
}

5743 5744 5745 5746 5747 5748 5749 5750 5751
void MacroAssembler::call_VM(Register oop_result,
                             address entry_point,
                             Register arg_1,
                             Register arg_2,
                             Register arg_3,
                             bool check_exceptions) {
  Label C, E;
  call(C, relocInfo::none);
  jmp(E);
D
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5752

5753
  bind(C);
D
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5754

5755 5756 5757
  LP64_ONLY(assert(arg_1 != c_rarg3, "smashed arg"));
  LP64_ONLY(assert(arg_2 != c_rarg3, "smashed arg"));
  pass_arg3(this, arg_3);
D
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5758

5759 5760
  LP64_ONLY(assert(arg_1 != c_rarg2, "smashed arg"));
  pass_arg2(this, arg_2);
D
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5761

5762 5763 5764
  pass_arg1(this, arg_1);
  call_VM_helper(oop_result, entry_point, 3, check_exceptions);
  ret(0);
D
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5765

5766 5767
  bind(E);
}
D
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5768

5769 5770 5771 5772 5773 5774 5775 5776
void MacroAssembler::call_VM(Register oop_result,
                             Register last_java_sp,
                             address entry_point,
                             int number_of_arguments,
                             bool check_exceptions) {
  Register thread = LP64_ONLY(r15_thread) NOT_LP64(noreg);
  call_VM_base(oop_result, thread, last_java_sp, entry_point, number_of_arguments, check_exceptions);
}
D
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5777

5778 5779 5780 5781 5782 5783 5784 5785
void MacroAssembler::call_VM(Register oop_result,
                             Register last_java_sp,
                             address entry_point,
                             Register arg_1,
                             bool check_exceptions) {
  pass_arg1(this, arg_1);
  call_VM(oop_result, last_java_sp, entry_point, 1, check_exceptions);
}
D
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5786

5787 5788 5789 5790 5791 5792
void MacroAssembler::call_VM(Register oop_result,
                             Register last_java_sp,
                             address entry_point,
                             Register arg_1,
                             Register arg_2,
                             bool check_exceptions) {
D
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5793

5794 5795 5796 5797
  LP64_ONLY(assert(arg_1 != c_rarg2, "smashed arg"));
  pass_arg2(this, arg_2);
  pass_arg1(this, arg_1);
  call_VM(oop_result, last_java_sp, entry_point, 2, check_exceptions);
D
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5798 5799
}

5800 5801 5802 5803 5804 5805 5806 5807 5808 5809 5810 5811 5812 5813 5814
void MacroAssembler::call_VM(Register oop_result,
                             Register last_java_sp,
                             address entry_point,
                             Register arg_1,
                             Register arg_2,
                             Register arg_3,
                             bool check_exceptions) {
  LP64_ONLY(assert(arg_1 != c_rarg3, "smashed arg"));
  LP64_ONLY(assert(arg_2 != c_rarg3, "smashed arg"));
  pass_arg3(this, arg_3);
  LP64_ONLY(assert(arg_1 != c_rarg2, "smashed arg"));
  pass_arg2(this, arg_2);
  pass_arg1(this, arg_1);
  call_VM(oop_result, last_java_sp, entry_point, 3, check_exceptions);
}
D
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5815 5816 5817 5818

void MacroAssembler::call_VM_base(Register oop_result,
                                  Register java_thread,
                                  Register last_java_sp,
5819 5820 5821 5822 5823 5824 5825 5826 5827 5828 5829 5830
                                  address  entry_point,
                                  int      number_of_arguments,
                                  bool     check_exceptions) {
  // determine java_thread register
  if (!java_thread->is_valid()) {
#ifdef _LP64
    java_thread = r15_thread;
#else
    java_thread = rdi;
    get_thread(java_thread);
#endif // LP64
  }
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5831 5832 5833 5834 5835
  // determine last_java_sp register
  if (!last_java_sp->is_valid()) {
    last_java_sp = rsp;
  }
  // debugging support
5836 5837 5838 5839
  assert(number_of_arguments >= 0   , "cannot have negative number of arguments");
  LP64_ONLY(assert(java_thread == r15_thread, "unexpected register"));
  assert(java_thread != oop_result  , "cannot use the same register for java_thread & oop_result");
  assert(java_thread != last_java_sp, "cannot use the same register for java_thread & last_java_sp");
D
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5840

5841
  // push java thread (becomes first argument of C function)
D
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5842

5843 5844
  NOT_LP64(push(java_thread); number_of_arguments++);
  LP64_ONLY(mov(c_rarg0, r15_thread));
D
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5845

5846 5847
  // set last Java frame before call
  assert(last_java_sp != rbp, "can't use ebp/rbp");
D
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5848

5849 5850
  // Only interpreter should have to set fp
  set_last_Java_frame(java_thread, last_java_sp, rbp, NULL);
D
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5851

5852 5853
  // do the call, remove parameters
  MacroAssembler::call_VM_leaf_base(entry_point, number_of_arguments);
D
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5854

5855 5856 5857 5858 5859 5860 5861 5862 5863 5864 5865 5866 5867 5868
  // restore the thread (cannot use the pushed argument since arguments
  // may be overwritten by C code generated by an optimizing compiler);
  // however can use the register value directly if it is callee saved.
  if (LP64_ONLY(true ||) java_thread == rdi || java_thread == rsi) {
    // rdi & rsi (also r15) are callee saved -> nothing to do
#ifdef ASSERT
    guarantee(java_thread != rax, "change this code");
    push(rax);
    { Label L;
      get_thread(rax);
      cmpptr(java_thread, rax);
      jcc(Assembler::equal, L);
      stop("MacroAssembler::call_VM_base: rdi not callee saved?");
      bind(L);
D
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5869
    }
5870
    pop(rax);
D
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5871
#endif
5872 5873
  } else {
    get_thread(java_thread);
D
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5874 5875
  }
  // reset last Java frame
5876 5877
  // Only interpreter should have to clear fp
  reset_last_Java_frame(java_thread, true, false);
D
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5878

5879 5880 5881 5882 5883
#ifndef CC_INTERP
   // C++ interp handles this in the interpreter
  check_and_handle_popframe(java_thread);
  check_and_handle_earlyret(java_thread);
#endif /* CC_INTERP */
D
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5884 5885

  if (check_exceptions) {
5886 5887 5888 5889 5890 5891
    // check for pending exceptions (java_thread is set upon return)
    cmpptr(Address(java_thread, Thread::pending_exception_offset()), (int32_t) NULL_WORD);
#ifndef _LP64
    jump_cc(Assembler::notEqual,
            RuntimeAddress(StubRoutines::forward_exception_entry()));
#else
D
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5892 5893 5894
    // This used to conditionally jump to forward_exception however it is
    // possible if we relocate that the branch will not reach. So we must jump
    // around so we can always reach
5895

D
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5896 5897 5898 5899
    Label ok;
    jcc(Assembler::equal, ok);
    jump(RuntimeAddress(StubRoutines::forward_exception_entry()));
    bind(ok);
5900
#endif // LP64
D
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5901 5902 5903 5904
  }

  // get oop result if there is one and reset the value in the thread
  if (oop_result->is_valid()) {
5905
    movptr(oop_result, Address(java_thread, JavaThread::vm_result_offset()));
5906
    movptr(Address(java_thread, JavaThread::vm_result_offset()), NULL_WORD);
5907
    verify_oop(oop_result, "broken oop in call_VM_base");
D
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5908 5909 5910
  }
}

5911
void MacroAssembler::call_VM_helper(Register oop_result, address entry_point, int number_of_arguments, bool check_exceptions) {
D
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5912

5913 5914 5915 5916 5917 5918 5919 5920 5921
  // Calculate the value for last_Java_sp
  // somewhat subtle. call_VM does an intermediate call
  // which places a return address on the stack just under the
  // stack pointer as the user finsihed with it. This allows
  // use to retrieve last_Java_pc from last_Java_sp[-1].
  // On 32bit we then have to push additional args on the stack to accomplish
  // the actual requested call. On 64bit call_VM only can use register args
  // so the only extra space is the return address that call_VM created.
  // This hopefully explains the calculations here.
D
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5922

5923
#ifdef _LP64
D
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5924
  // We've pushed one address, correct last_Java_sp
5925 5926 5927 5928 5929 5930
  lea(rax, Address(rsp, wordSize));
#else
  lea(rax, Address(rsp, (1 + number_of_arguments) * wordSize));
#endif // LP64

  call_VM_base(oop_result, noreg, rax, entry_point, number_of_arguments, check_exceptions);
D
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5931 5932 5933

}

5934 5935 5936
void MacroAssembler::call_VM_leaf(address entry_point, int number_of_arguments) {
  call_VM_leaf_base(entry_point, number_of_arguments);
}
D
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5937

5938 5939 5940 5941
void MacroAssembler::call_VM_leaf(address entry_point, Register arg_0) {
  pass_arg0(this, arg_0);
  call_VM_leaf(entry_point, 1);
}
D
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5942

5943
void MacroAssembler::call_VM_leaf(address entry_point, Register arg_0, Register arg_1) {
D
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5944

5945 5946 5947 5948
  LP64_ONLY(assert(arg_0 != c_rarg1, "smashed arg"));
  pass_arg1(this, arg_1);
  pass_arg0(this, arg_0);
  call_VM_leaf(entry_point, 2);
D
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5949 5950
}

5951 5952 5953 5954 5955 5956 5957 5958 5959
void MacroAssembler::call_VM_leaf(address entry_point, Register arg_0, Register arg_1, Register arg_2) {
  LP64_ONLY(assert(arg_0 != c_rarg2, "smashed arg"));
  LP64_ONLY(assert(arg_1 != c_rarg2, "smashed arg"));
  pass_arg2(this, arg_2);
  LP64_ONLY(assert(arg_0 != c_rarg1, "smashed arg"));
  pass_arg1(this, arg_1);
  pass_arg0(this, arg_0);
  call_VM_leaf(entry_point, 3);
}
D
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5960

5961 5962
void MacroAssembler::check_and_handle_earlyret(Register java_thread) {
}
D
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5963

5964 5965
void MacroAssembler::check_and_handle_popframe(Register java_thread) {
}
D
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5966

5967 5968 5969 5970 5971 5972
void MacroAssembler::cmp32(AddressLiteral src1, int32_t imm) {
  if (reachable(src1)) {
    cmpl(as_Address(src1), imm);
  } else {
    lea(rscratch1, src1);
    cmpl(Address(rscratch1, 0), imm);
D
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5973
  }
5974
}
D
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5975

5976 5977 5978 5979 5980 5981 5982 5983
void MacroAssembler::cmp32(Register src1, AddressLiteral src2) {
  assert(!src2.is_lval(), "use cmpptr");
  if (reachable(src2)) {
    cmpl(src1, as_Address(src2));
  } else {
    lea(rscratch1, src2);
    cmpl(src1, Address(rscratch1, 0));
  }
D
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5984 5985
}

5986 5987 5988
void MacroAssembler::cmp32(Register src1, int32_t imm) {
  Assembler::cmpl(src1, imm);
}
D
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5989

5990 5991 5992
void MacroAssembler::cmp32(Register src1, Address src2) {
  Assembler::cmpl(src1, src2);
}
D
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5993

5994 5995 5996 5997 5998 5999 6000 6001 6002 6003 6004 6005 6006 6007 6008 6009 6010 6011
void MacroAssembler::cmpsd2int(XMMRegister opr1, XMMRegister opr2, Register dst, bool unordered_is_less) {
  ucomisd(opr1, opr2);

  Label L;
  if (unordered_is_less) {
    movl(dst, -1);
    jcc(Assembler::parity, L);
    jcc(Assembler::below , L);
    movl(dst, 0);
    jcc(Assembler::equal , L);
    increment(dst);
  } else { // unordered is greater
    movl(dst, 1);
    jcc(Assembler::parity, L);
    jcc(Assembler::above , L);
    movl(dst, 0);
    jcc(Assembler::equal , L);
    decrementl(dst);
D
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6012
  }
6013 6014 6015 6016 6017 6018 6019 6020 6021 6022 6023 6024 6025 6026 6027 6028 6029 6030 6031 6032 6033
  bind(L);
}

void MacroAssembler::cmpss2int(XMMRegister opr1, XMMRegister opr2, Register dst, bool unordered_is_less) {
  ucomiss(opr1, opr2);

  Label L;
  if (unordered_is_less) {
    movl(dst, -1);
    jcc(Assembler::parity, L);
    jcc(Assembler::below , L);
    movl(dst, 0);
    jcc(Assembler::equal , L);
    increment(dst);
  } else { // unordered is greater
    movl(dst, 1);
    jcc(Assembler::parity, L);
    jcc(Assembler::above , L);
    movl(dst, 0);
    jcc(Assembler::equal , L);
    decrementl(dst);
D
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6034
  }
6035 6036
  bind(L);
}
D
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6037

6038 6039 6040 6041 6042 6043 6044 6045 6046 6047 6048 6049 6050 6051 6052 6053 6054 6055 6056 6057 6058 6059 6060 6061 6062 6063 6064 6065 6066 6067 6068 6069 6070 6071 6072 6073 6074 6075 6076 6077 6078 6079 6080 6081 6082 6083 6084 6085 6086 6087 6088 6089 6090 6091 6092 6093 6094 6095 6096

void MacroAssembler::cmp8(AddressLiteral src1, int imm) {
  if (reachable(src1)) {
    cmpb(as_Address(src1), imm);
  } else {
    lea(rscratch1, src1);
    cmpb(Address(rscratch1, 0), imm);
  }
}

void MacroAssembler::cmpptr(Register src1, AddressLiteral src2) {
#ifdef _LP64
  if (src2.is_lval()) {
    movptr(rscratch1, src2);
    Assembler::cmpq(src1, rscratch1);
  } else if (reachable(src2)) {
    cmpq(src1, as_Address(src2));
  } else {
    lea(rscratch1, src2);
    Assembler::cmpq(src1, Address(rscratch1, 0));
  }
#else
  if (src2.is_lval()) {
    cmp_literal32(src1, (int32_t) src2.target(), src2.rspec());
  } else {
    cmpl(src1, as_Address(src2));
  }
#endif // _LP64
}

void MacroAssembler::cmpptr(Address src1, AddressLiteral src2) {
  assert(src2.is_lval(), "not a mem-mem compare");
#ifdef _LP64
  // moves src2's literal address
  movptr(rscratch1, src2);
  Assembler::cmpq(src1, rscratch1);
#else
  cmp_literal32(src1, (int32_t) src2.target(), src2.rspec());
#endif // _LP64
}

void MacroAssembler::locked_cmpxchgptr(Register reg, AddressLiteral adr) {
  if (reachable(adr)) {
    if (os::is_MP())
      lock();
    cmpxchgptr(reg, as_Address(adr));
  } else {
    lea(rscratch1, adr);
    if (os::is_MP())
      lock();
    cmpxchgptr(reg, Address(rscratch1, 0));
  }
}

void MacroAssembler::cmpxchgptr(Register reg, Address adr) {
  LP64_ONLY(cmpxchgq(reg, adr)) NOT_LP64(cmpxchgl(reg, adr));
}

void MacroAssembler::comisd(XMMRegister dst, AddressLiteral src) {
R
roland 已提交
6097 6098 6099 6100 6101 6102
  if (reachable(src)) {
    comisd(dst, as_Address(src));
  } else {
    lea(rscratch1, src);
    comisd(dst, Address(rscratch1, 0));
  }
6103 6104 6105
}

void MacroAssembler::comiss(XMMRegister dst, AddressLiteral src) {
R
roland 已提交
6106 6107 6108 6109 6110 6111
  if (reachable(src)) {
    comiss(dst, as_Address(src));
  } else {
    lea(rscratch1, src);
    comiss(dst, Address(rscratch1, 0));
  }
6112 6113 6114 6115 6116 6117 6118 6119 6120 6121 6122 6123 6124 6125 6126 6127 6128 6129 6130 6131 6132 6133 6134 6135 6136 6137 6138 6139 6140 6141 6142 6143 6144 6145 6146 6147 6148 6149 6150 6151 6152 6153 6154 6155 6156 6157 6158 6159 6160 6161 6162 6163 6164 6165 6166 6167 6168 6169 6170 6171 6172 6173 6174
}


void MacroAssembler::cond_inc32(Condition cond, AddressLiteral counter_addr) {
  Condition negated_cond = negate_condition(cond);
  Label L;
  jcc(negated_cond, L);
  atomic_incl(counter_addr);
  bind(L);
}

int MacroAssembler::corrected_idivl(Register reg) {
  // Full implementation of Java idiv and irem; checks for
  // special case as described in JVM spec., p.243 & p.271.
  // The function returns the (pc) offset of the idivl
  // instruction - may be needed for implicit exceptions.
  //
  //         normal case                           special case
  //
  // input : rax,: dividend                         min_int
  //         reg: divisor   (may not be rax,/rdx)   -1
  //
  // output: rax,: quotient  (= rax, idiv reg)       min_int
  //         rdx: remainder (= rax, irem reg)       0
  assert(reg != rax && reg != rdx, "reg cannot be rax, or rdx register");
  const int min_int = 0x80000000;
  Label normal_case, special_case;

  // check for special case
  cmpl(rax, min_int);
  jcc(Assembler::notEqual, normal_case);
  xorl(rdx, rdx); // prepare rdx for possible special case (where remainder = 0)
  cmpl(reg, -1);
  jcc(Assembler::equal, special_case);

  // handle normal case
  bind(normal_case);
  cdql();
  int idivl_offset = offset();
  idivl(reg);

  // normal and special case exit
  bind(special_case);

  return idivl_offset;
}



void MacroAssembler::decrementl(Register reg, int value) {
  if (value == min_jint) {subl(reg, value) ; return; }
  if (value <  0) { incrementl(reg, -value); return; }
  if (value == 0) {                        ; return; }
  if (value == 1 && UseIncDec) { decl(reg) ; return; }
  /* else */      { subl(reg, value)       ; return; }
}

void MacroAssembler::decrementl(Address dst, int value) {
  if (value == min_jint) {subl(dst, value) ; return; }
  if (value <  0) { incrementl(dst, -value); return; }
  if (value == 0) {                        ; return; }
  if (value == 1 && UseIncDec) { decl(dst) ; return; }
  /* else */      { subl(dst, value)       ; return; }
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}

6177 6178 6179 6180 6181 6182
void MacroAssembler::division_with_shift (Register reg, int shift_value) {
  assert (shift_value > 0, "illegal shift value");
  Label _is_positive;
  testl (reg, reg);
  jcc (Assembler::positive, _is_positive);
  int offset = (1 << shift_value) - 1 ;
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6184 6185 6186 6187
  if (offset == 1) {
    incrementl(reg);
  } else {
    addl(reg, offset);
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6188 6189
  }

6190 6191
  bind (_is_positive);
  sarl(reg, shift_value);
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6192 6193
}

6194 6195 6196 6197 6198 6199 6200 6201
// !defined(COMPILER2) is because of stupid core builds
#if !defined(_LP64) || defined(COMPILER1) || !defined(COMPILER2)
void MacroAssembler::empty_FPU_stack() {
  if (VM_Version::supports_mmx()) {
    emms();
  } else {
    for (int i = 8; i-- > 0; ) ffree(i);
  }
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6202
}
6203
#endif // !LP64 || C1 || !C2
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6204

6205 6206 6207 6208 6209 6210 6211 6212 6213

// Defines obj, preserves var_size_in_bytes
void MacroAssembler::eden_allocate(Register obj,
                                   Register var_size_in_bytes,
                                   int con_size_in_bytes,
                                   Register t1,
                                   Label& slow_case) {
  assert(obj == rax, "obj must be in rax, for cmpxchg");
  assert_different_registers(obj, var_size_in_bytes, t1);
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6214 6215
  if (CMSIncrementalMode || !Universe::heap()->supports_inline_contig_alloc()) {
    jmp(slow_case);
6216
  } else {
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6217 6218 6219 6220 6221 6222 6223 6224 6225 6226 6227 6228 6229 6230 6231 6232 6233 6234 6235 6236
    Register end = t1;
    Label retry;
    bind(retry);
    ExternalAddress heap_top((address) Universe::heap()->top_addr());
    movptr(obj, heap_top);
    if (var_size_in_bytes == noreg) {
      lea(end, Address(obj, con_size_in_bytes));
    } else {
      lea(end, Address(obj, var_size_in_bytes, Address::times_1));
    }
    // if end < obj then we wrapped around => object too long => slow case
    cmpptr(end, obj);
    jcc(Assembler::below, slow_case);
    cmpptr(end, ExternalAddress((address) Universe::heap()->end_addr()));
    jcc(Assembler::above, slow_case);
    // Compare obj with the top addr, and if still equal, store the new top addr in
    // end at the address of the top addr pointer. Sets ZF if was equal, and clears
    // it otherwise. Use lock prefix for atomicity on MPs.
    locked_cmpxchgptr(end, heap_top);
    jcc(Assembler::notEqual, retry);
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6237 6238 6239
  }
}

6240 6241 6242
void MacroAssembler::enter() {
  push(rbp);
  mov(rbp, rsp);
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}

6245 6246 6247
void MacroAssembler::fcmp(Register tmp) {
  fcmp(tmp, 1, true, true);
}
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6249 6250 6251 6252 6253 6254 6255 6256 6257 6258 6259 6260 6261 6262 6263 6264 6265 6266 6267 6268 6269 6270 6271 6272 6273 6274 6275 6276
void MacroAssembler::fcmp(Register tmp, int index, bool pop_left, bool pop_right) {
  assert(!pop_right || pop_left, "usage error");
  if (VM_Version::supports_cmov()) {
    assert(tmp == noreg, "unneeded temp");
    if (pop_left) {
      fucomip(index);
    } else {
      fucomi(index);
    }
    if (pop_right) {
      fpop();
    }
  } else {
    assert(tmp != noreg, "need temp");
    if (pop_left) {
      if (pop_right) {
        fcompp();
      } else {
        fcomp(index);
      }
    } else {
      fcom(index);
    }
    // convert FPU condition into eflags condition via rax,
    save_rax(tmp);
    fwait(); fnstsw_ax();
    sahf();
    restore_rax(tmp);
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  }
6278 6279 6280 6281 6282
  // condition codes set as follows:
  //
  // CF (corresponds to C0) if x < y
  // PF (corresponds to C2) if unordered
  // ZF (corresponds to C3) if x = y
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}

6285 6286
void MacroAssembler::fcmp2int(Register dst, bool unordered_is_less) {
  fcmp2int(dst, unordered_is_less, 1, true, true);
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}

6289 6290 6291 6292 6293 6294 6295 6296 6297 6298 6299 6300 6301 6302 6303 6304 6305
void MacroAssembler::fcmp2int(Register dst, bool unordered_is_less, int index, bool pop_left, bool pop_right) {
  fcmp(VM_Version::supports_cmov() ? noreg : dst, index, pop_left, pop_right);
  Label L;
  if (unordered_is_less) {
    movl(dst, -1);
    jcc(Assembler::parity, L);
    jcc(Assembler::below , L);
    movl(dst, 0);
    jcc(Assembler::equal , L);
    increment(dst);
  } else { // unordered is greater
    movl(dst, 1);
    jcc(Assembler::parity, L);
    jcc(Assembler::above , L);
    movl(dst, 0);
    jcc(Assembler::equal , L);
    decrementl(dst);
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6306
  }
6307
  bind(L);
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6308 6309
}

6310 6311
void MacroAssembler::fld_d(AddressLiteral src) {
  fld_d(as_Address(src));
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6312 6313
}

6314 6315
void MacroAssembler::fld_s(AddressLiteral src) {
  fld_s(as_Address(src));
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6316 6317
}

6318 6319
void MacroAssembler::fld_x(AddressLiteral src) {
  Assembler::fld_x(as_Address(src));
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}

6322 6323
void MacroAssembler::fldcw(AddressLiteral src) {
  Assembler::fldcw(as_Address(src));
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6324 6325
}

6326 6327 6328
void MacroAssembler::fpop() {
  ffree();
  fincstp();
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6329 6330
}

6331 6332 6333 6334 6335 6336 6337 6338 6339 6340 6341 6342 6343 6344 6345 6346 6347 6348 6349 6350 6351
void MacroAssembler::fremr(Register tmp) {
  save_rax(tmp);
  { Label L;
    bind(L);
    fprem();
    fwait(); fnstsw_ax();
#ifdef _LP64
    testl(rax, 0x400);
    jcc(Assembler::notEqual, L);
#else
    sahf();
    jcc(Assembler::parity, L);
#endif // _LP64
  }
  restore_rax(tmp);
  // Result is in ST0.
  // Note: fxch & fpop to get rid of ST1
  // (otherwise FPU stack could overflow eventually)
  fxch(1);
  fpop();
}
6352 6353


6354 6355 6356
void MacroAssembler::incrementl(AddressLiteral dst) {
  if (reachable(dst)) {
    incrementl(as_Address(dst));
6357
  } else {
6358 6359
    lea(rscratch1, dst);
    incrementl(Address(rscratch1, 0));
6360
  }
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}

6363 6364
void MacroAssembler::incrementl(ArrayAddress dst) {
  incrementl(as_Address(dst));
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}

6367 6368 6369 6370 6371 6372
void MacroAssembler::incrementl(Register reg, int value) {
  if (value == min_jint) {addl(reg, value) ; return; }
  if (value <  0) { decrementl(reg, -value); return; }
  if (value == 0) {                        ; return; }
  if (value == 1 && UseIncDec) { incl(reg) ; return; }
  /* else */      { addl(reg, value)       ; return; }
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}

6375 6376 6377 6378 6379 6380 6381
void MacroAssembler::incrementl(Address dst, int value) {
  if (value == min_jint) {addl(dst, value) ; return; }
  if (value <  0) { decrementl(dst, -value); return; }
  if (value == 0) {                        ; return; }
  if (value == 1 && UseIncDec) { incl(dst) ; return; }
  /* else */      { addl(dst, value)       ; return; }
}
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6383 6384 6385 6386 6387 6388 6389 6390
void MacroAssembler::jump(AddressLiteral dst) {
  if (reachable(dst)) {
    jmp_literal(dst.target(), dst.rspec());
  } else {
    lea(rscratch1, dst);
    jmp(rscratch1);
  }
}
D
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6391

6392 6393 6394 6395 6396 6397 6398 6399 6400 6401 6402 6403 6404 6405 6406 6407 6408 6409 6410 6411 6412 6413 6414 6415 6416 6417 6418 6419
void MacroAssembler::jump_cc(Condition cc, AddressLiteral dst) {
  if (reachable(dst)) {
    InstructionMark im(this);
    relocate(dst.reloc());
    const int short_size = 2;
    const int long_size = 6;
    int offs = (intptr_t)dst.target() - ((intptr_t)_code_pos);
    if (dst.reloc() == relocInfo::none && is8bit(offs - short_size)) {
      // 0111 tttn #8-bit disp
      emit_byte(0x70 | cc);
      emit_byte((offs - short_size) & 0xFF);
    } else {
      // 0000 1111 1000 tttn #32-bit disp
      emit_byte(0x0F);
      emit_byte(0x80 | cc);
      emit_long(offs - long_size);
    }
  } else {
#ifdef ASSERT
    warning("reversing conditional branch");
#endif /* ASSERT */
    Label skip;
    jccb(reverse[cc], skip);
    lea(rscratch1, dst);
    Assembler::jmp(rscratch1);
    bind(skip);
  }
}
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6421 6422 6423 6424 6425 6426 6427 6428
void MacroAssembler::ldmxcsr(AddressLiteral src) {
  if (reachable(src)) {
    Assembler::ldmxcsr(as_Address(src));
  } else {
    lea(rscratch1, src);
    Assembler::ldmxcsr(Address(rscratch1, 0));
  }
}
D
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6430 6431 6432 6433 6434 6435 6436 6437 6438 6439 6440
int MacroAssembler::load_signed_byte(Register dst, Address src) {
  int off;
  if (LP64_ONLY(true ||) VM_Version::is_P6()) {
    off = offset();
    movsbl(dst, src); // movsxb
  } else {
    off = load_unsigned_byte(dst, src);
    shll(dst, 24);
    sarl(dst, 24);
  }
  return off;
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}

6443 6444 6445 6446 6447
// Note: load_signed_short used to be called load_signed_word.
// Although the 'w' in x86 opcodes refers to the term "word" in the assembler
// manual, which means 16 bits, that usage is found nowhere in HotSpot code.
// The term "word" in HotSpot means a 32- or 64-bit machine word.
int MacroAssembler::load_signed_short(Register dst, Address src) {
6448 6449 6450 6451 6452 6453 6454 6455
  int off;
  if (LP64_ONLY(true ||) VM_Version::is_P6()) {
    // This is dubious to me since it seems safe to do a signed 16 => 64 bit
    // version but this is what 64bit has always done. This seems to imply
    // that users are only using 32bits worth.
    off = offset();
    movswl(dst, src); // movsxw
  } else {
6456
    off = load_unsigned_short(dst, src);
6457 6458 6459 6460
    shll(dst, 16);
    sarl(dst, 16);
  }
  return off;
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}

6463 6464 6465 6466 6467 6468 6469 6470 6471 6472 6473 6474 6475
int MacroAssembler::load_unsigned_byte(Register dst, Address src) {
  // According to Intel Doc. AP-526, "Zero-Extension of Short", p.16,
  // and "3.9 Partial Register Penalties", p. 22).
  int off;
  if (LP64_ONLY(true || ) VM_Version::is_P6() || src.uses(dst)) {
    off = offset();
    movzbl(dst, src); // movzxb
  } else {
    xorl(dst, dst);
    off = offset();
    movb(dst, src);
  }
  return off;
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}

6478 6479
// Note: load_unsigned_short used to be called load_unsigned_word.
int MacroAssembler::load_unsigned_short(Register dst, Address src) {
6480 6481 6482 6483 6484 6485 6486 6487 6488 6489 6490 6491
  // According to Intel Doc. AP-526, "Zero-Extension of Short", p.16,
  // and "3.9 Partial Register Penalties", p. 22).
  int off;
  if (LP64_ONLY(true ||) VM_Version::is_P6() || src.uses(dst)) {
    off = offset();
    movzwl(dst, src); // movzxw
  } else {
    xorl(dst, dst);
    off = offset();
    movw(dst, src);
  }
  return off;
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}

6494
void MacroAssembler::load_sized_value(Register dst, Address src,
T
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                                      size_t size_in_bytes, bool is_signed) {
  switch (size_in_bytes) {
6497 6498 6499
#ifndef _LP64
  // For case 8, caller is responsible for manually loading
  // the second word into another register.
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  case  8: movl(dst, src); break;
6501
#else
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  case  8: movq(dst, src); break;
6503
#endif
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6504 6505 6506 6507
  case  4: movl(dst, src); break;
  case  2: is_signed ? load_signed_short(dst, src) : load_unsigned_short(dst, src); break;
  case  1: is_signed ? load_signed_byte( dst, src) : load_unsigned_byte( dst, src); break;
  default: ShouldNotReachHere();
6508 6509 6510
  }
}

6511 6512 6513 6514 6515 6516 6517
void MacroAssembler::mov32(AddressLiteral dst, Register src) {
  if (reachable(dst)) {
    movl(as_Address(dst), src);
  } else {
    lea(rscratch1, dst);
    movl(Address(rscratch1, 0), src);
  }
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}

6520 6521 6522 6523 6524 6525 6526
void MacroAssembler::mov32(Register dst, AddressLiteral src) {
  if (reachable(src)) {
    movl(dst, as_Address(src));
  } else {
    lea(rscratch1, src);
    movl(dst, Address(rscratch1, 0));
  }
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}

6529 6530 6531 6532 6533 6534 6535 6536 6537 6538 6539 6540
// C++ bool manipulation

void MacroAssembler::movbool(Register dst, Address src) {
  if(sizeof(bool) == 1)
    movb(dst, src);
  else if(sizeof(bool) == 2)
    movw(dst, src);
  else if(sizeof(bool) == 4)
    movl(dst, src);
  else
    // unsupported
    ShouldNotReachHere();
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}

6543 6544 6545 6546 6547 6548 6549 6550 6551 6552
void MacroAssembler::movbool(Address dst, bool boolconst) {
  if(sizeof(bool) == 1)
    movb(dst, (int) boolconst);
  else if(sizeof(bool) == 2)
    movw(dst, (int) boolconst);
  else if(sizeof(bool) == 4)
    movl(dst, (int) boolconst);
  else
    // unsupported
    ShouldNotReachHere();
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6553 6554
}

6555 6556 6557 6558 6559 6560 6561 6562 6563 6564
void MacroAssembler::movbool(Address dst, Register src) {
  if(sizeof(bool) == 1)
    movb(dst, src);
  else if(sizeof(bool) == 2)
    movw(dst, src);
  else if(sizeof(bool) == 4)
    movl(dst, src);
  else
    // unsupported
    ShouldNotReachHere();
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}

6567 6568 6569
void MacroAssembler::movbyte(ArrayAddress dst, int src) {
  movb(as_Address(dst), src);
}
D
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6571 6572 6573 6574 6575 6576 6577
void MacroAssembler::movdbl(XMMRegister dst, AddressLiteral src) {
  if (reachable(src)) {
    if (UseXmmLoadAndClearUpper) {
      movsd (dst, as_Address(src));
    } else {
      movlpd(dst, as_Address(src));
    }
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  } else {
6579 6580 6581 6582 6583 6584
    lea(rscratch1, src);
    if (UseXmmLoadAndClearUpper) {
      movsd (dst, Address(rscratch1, 0));
    } else {
      movlpd(dst, Address(rscratch1, 0));
    }
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  }
}

6588 6589 6590 6591 6592 6593 6594
void MacroAssembler::movflt(XMMRegister dst, AddressLiteral src) {
  if (reachable(src)) {
    movss(dst, as_Address(src));
  } else {
    lea(rscratch1, src);
    movss(dst, Address(rscratch1, 0));
  }
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}

6597 6598
void MacroAssembler::movptr(Register dst, Register src) {
  LP64_ONLY(movq(dst, src)) NOT_LP64(movl(dst, src));
D
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}

6601 6602 6603
void MacroAssembler::movptr(Register dst, Address src) {
  LP64_ONLY(movq(dst, src)) NOT_LP64(movl(dst, src));
}
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6605 6606 6607
// src should NEVER be a real pointer. Use AddressLiteral for true pointers
void MacroAssembler::movptr(Register dst, intptr_t src) {
  LP64_ONLY(mov64(dst, src)) NOT_LP64(movl(dst, src));
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}

6610 6611 6612
void MacroAssembler::movptr(Address dst, Register src) {
  LP64_ONLY(movq(dst, src)) NOT_LP64(movl(dst, src));
}
D
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6614 6615 6616 6617 6618 6619 6620 6621
void MacroAssembler::movss(XMMRegister dst, AddressLiteral src) {
  if (reachable(src)) {
    movss(dst, as_Address(src));
  } else {
    lea(rscratch1, src);
    movss(dst, Address(rscratch1, 0));
  }
}
D
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6622

6623 6624 6625 6626 6627 6628 6629 6630 6631 6632 6633 6634 6635 6636
void MacroAssembler::null_check(Register reg, int offset) {
  if (needs_explicit_null_check(offset)) {
    // provoke OS NULL exception if reg = NULL by
    // accessing M[reg] w/o changing any (non-CC) registers
    // NOTE: cmpl is plenty here to provoke a segv
    cmpptr(rax, Address(reg, 0));
    // Note: should probably use testl(rax, Address(reg, 0));
    //       may be shorter code (however, this version of
    //       testl needs to be implemented first)
  } else {
    // nothing to do, (later) access of M[reg + offset]
    // will provoke OS NULL exception if reg = NULL
  }
}
D
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6638 6639 6640 6641
void MacroAssembler::os_breakpoint() {
  // instead of directly emitting a breakpoint, call os:breakpoint for better debugability
  // (e.g., MSVC can't call ps() otherwise)
  call(RuntimeAddress(CAST_FROM_FN_PTR(address, os::breakpoint)));
D
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}

6644 6645 6646 6647
void MacroAssembler::pop_CPU_state() {
  pop_FPU_state();
  pop_IU_state();
}
D
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6649 6650 6651 6652
void MacroAssembler::pop_FPU_state() {
  NOT_LP64(frstor(Address(rsp, 0));)
  LP64_ONLY(fxrstor(Address(rsp, 0));)
  addptr(rsp, FPUStateSizeInWords * wordSize);
D
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6653 6654
}

6655 6656 6657 6658 6659
void MacroAssembler::pop_IU_state() {
  popa();
  LP64_ONLY(addq(rsp, 8));
  popf();
}
D
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6660

6661 6662 6663 6664 6665 6666
// Save Integer and Float state
// Warning: Stack must be 16 byte aligned (64bit)
void MacroAssembler::push_CPU_state() {
  push_IU_state();
  push_FPU_state();
}
D
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6667

6668 6669 6670 6671 6672 6673 6674 6675
void MacroAssembler::push_FPU_state() {
  subptr(rsp, FPUStateSizeInWords * wordSize);
#ifndef _LP64
  fnsave(Address(rsp, 0));
  fwait();
#else
  fxsave(Address(rsp, 0));
#endif // LP64
D
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6676 6677
}

6678 6679 6680 6681 6682 6683 6684
void MacroAssembler::push_IU_state() {
  // Push flags first because pusha kills them
  pushf();
  // Make sure rsp stays 16-byte aligned
  LP64_ONLY(subq(rsp, 8));
  pusha();
}
6685

6686 6687 6688 6689 6690 6691 6692
void MacroAssembler::reset_last_Java_frame(Register java_thread, bool clear_fp, bool clear_pc) {
  // determine java_thread register
  if (!java_thread->is_valid()) {
    java_thread = rdi;
    get_thread(java_thread);
  }
  // we must set sp to zero to clear frame
6693
  movptr(Address(java_thread, JavaThread::last_Java_sp_offset()), NULL_WORD);
6694
  if (clear_fp) {
6695
    movptr(Address(java_thread, JavaThread::last_Java_fp_offset()), NULL_WORD);
D
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6696
  }
6697 6698

  if (clear_pc)
6699
    movptr(Address(java_thread, JavaThread::last_Java_pc_offset()), NULL_WORD);
6700

D
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6701 6702
}

6703 6704 6705 6706 6707 6708 6709 6710 6711 6712 6713 6714 6715
void MacroAssembler::restore_rax(Register tmp) {
  if (tmp == noreg) pop(rax);
  else if (tmp != rax) mov(rax, tmp);
}

void MacroAssembler::round_to(Register reg, int modulus) {
  addptr(reg, modulus - 1);
  andptr(reg, -modulus);
}

void MacroAssembler::save_rax(Register tmp) {
  if (tmp == noreg) push(rax);
  else if (tmp != rax) mov(tmp, rax);
D
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6716 6717 6718 6719 6720 6721
}

// Write serialization page so VM thread can do a pseudo remote membar.
// We use the current thread pointer to calculate a thread specific
// offset to write to within the page. This minimizes bus traffic
// due to cache line collision.
6722
void MacroAssembler::serialize_memory(Register thread, Register tmp) {
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  movl(tmp, thread);
  shrl(tmp, os::get_serialize_page_shift_count());
  andl(tmp, (os::vm_page_size() - sizeof(int)));

  Address index(noreg, tmp, Address::times_1);
  ExternalAddress page(os::get_memory_serialize_page());

6730 6731
  // Size of store must match masking code above
  movl(as_Address(ArrayAddress(page, index)), tmp);
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}

6734 6735 6736 6737 6738 6739 6740 6741 6742 6743 6744 6745 6746 6747 6748 6749 6750 6751
// Calls to C land
//
// When entering C land, the rbp, & rsp of the last Java frame have to be recorded
// in the (thread-local) JavaThread object. When leaving C land, the last Java fp
// has to be reset to 0. This is required to allow proper stack traversal.
void MacroAssembler::set_last_Java_frame(Register java_thread,
                                         Register last_java_sp,
                                         Register last_java_fp,
                                         address  last_java_pc) {
  // determine java_thread register
  if (!java_thread->is_valid()) {
    java_thread = rdi;
    get_thread(java_thread);
  }
  // determine last_java_sp register
  if (!last_java_sp->is_valid()) {
    last_java_sp = rsp;
  }
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  // last_java_fp is optional
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  if (last_java_fp->is_valid()) {
    movptr(Address(java_thread, JavaThread::last_Java_fp_offset()), last_java_fp);
  }
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6759
  // last_java_pc is optional
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6761 6762 6763 6764
  if (last_java_pc != NULL) {
    lea(Address(java_thread,
                 JavaThread::frame_anchor_offset() + JavaFrameAnchor::last_Java_pc_offset()),
        InternalAddress(last_java_pc));
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  }
6767
  movptr(Address(java_thread, JavaThread::last_Java_sp_offset()), last_java_sp);
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}

6770 6771 6772 6773 6774 6775 6776 6777 6778 6779 6780
void MacroAssembler::shlptr(Register dst, int imm8) {
  LP64_ONLY(shlq(dst, imm8)) NOT_LP64(shll(dst, imm8));
}

void MacroAssembler::shrptr(Register dst, int imm8) {
  LP64_ONLY(shrq(dst, imm8)) NOT_LP64(shrl(dst, imm8));
}

void MacroAssembler::sign_extend_byte(Register reg) {
  if (LP64_ONLY(true ||) (VM_Version::is_P6() && reg->has_byte_register())) {
    movsbl(reg, reg); // movsxb
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  } else {
6782 6783
    shll(reg, 24);
    sarl(reg, 24);
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  }
6785
}
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void MacroAssembler::sign_extend_short(Register reg) {
  if (LP64_ONLY(true ||) VM_Version::is_P6()) {
    movswl(reg, reg); // movsxw
  } else {
    shll(reg, 16);
    sarl(reg, 16);
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  }
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}

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//////////////////////////////////////////////////////////////////////////////////
#ifndef SERIALGC
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void MacroAssembler::g1_write_barrier_pre(Register obj,
#ifndef _LP64
                                          Register thread,
#endif
                                          Register tmp,
                                          Register tmp2,
                                          bool tosca_live) {
  LP64_ONLY(Register thread = r15_thread;)
  Address in_progress(thread, in_bytes(JavaThread::satb_mark_queue_offset() +
                                       PtrQueue::byte_offset_of_active()));
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  Address index(thread, in_bytes(JavaThread::satb_mark_queue_offset() +
                                       PtrQueue::byte_offset_of_index()));
  Address buffer(thread, in_bytes(JavaThread::satb_mark_queue_offset() +
                                       PtrQueue::byte_offset_of_buf()));
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  Label done;
  Label runtime;

  // if (!marking_in_progress) goto done;
  if (in_bytes(PtrQueue::byte_width_of_active()) == 4) {
    cmpl(in_progress, 0);
  } else {
    assert(in_bytes(PtrQueue::byte_width_of_active()) == 1, "Assumption");
    cmpb(in_progress, 0);
  }
  jcc(Assembler::equal, done);

  // if (x.f == NULL) goto done;
6829 6830 6831 6832 6833 6834
#ifdef _LP64
  load_heap_oop(tmp2, Address(obj, 0));
#else
  movptr(tmp2, Address(obj, 0));
#endif
  cmpptr(tmp2, (int32_t) NULL_WORD);
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  jcc(Assembler::equal, done);

  // Can we store original value in the thread's buffer?

#ifdef _LP64
6840
  movslq(tmp, index);
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  cmpq(tmp, 0);
#else
  cmpl(index, 0);
#endif
  jcc(Assembler::equal, runtime);
#ifdef _LP64
  subq(tmp, wordSize);
  movl(index, tmp);
  addq(tmp, buffer);
#else
  subl(index, wordSize);
  movl(tmp, buffer);
  addl(tmp, index);
#endif
  movptr(Address(tmp, 0), tmp2);
  jmp(done);
  bind(runtime);
  // save the live input values
  if(tosca_live) push(rax);
  push(obj);
#ifdef _LP64
6862
  call_VM_leaf(CAST_FROM_FN_PTR(address, SharedRuntime::g1_wb_pre), tmp2, r15_thread);
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#else
  push(thread);
  call_VM_leaf(CAST_FROM_FN_PTR(address, SharedRuntime::g1_wb_pre), tmp2, thread);
  pop(thread);
#endif
  pop(obj);
  if(tosca_live) pop(rax);
  bind(done);

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}

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void MacroAssembler::g1_write_barrier_post(Register store_addr,
                                           Register new_val,
#ifndef _LP64
                                           Register thread,
6878
#endif
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                                           Register tmp,
                                           Register tmp2) {
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  LP64_ONLY(Register thread = r15_thread;)
  Address queue_index(thread, in_bytes(JavaThread::dirty_card_queue_offset() +
                                       PtrQueue::byte_offset_of_index()));
  Address buffer(thread, in_bytes(JavaThread::dirty_card_queue_offset() +
                                       PtrQueue::byte_offset_of_buf()));
  BarrierSet* bs = Universe::heap()->barrier_set();
  CardTableModRefBS* ct = (CardTableModRefBS*)bs;
  Label done;
  Label runtime;

  // Does store cross heap regions?

  movptr(tmp, store_addr);
  xorptr(tmp, new_val);
  shrptr(tmp, HeapRegion::LogOfHRGrainBytes);
  jcc(Assembler::equal, done);

  // crosses regions, storing NULL?

  cmpptr(new_val, (int32_t) NULL_WORD);
  jcc(Assembler::equal, done);

  // storing region crossing non-NULL, is card already dirty?

  ExternalAddress cardtable((address) ct->byte_map_base);
  assert(sizeof(*ct->byte_map_base) == sizeof(jbyte), "adjust this code");
#ifdef _LP64
  const Register card_addr = tmp;

  movq(card_addr, store_addr);
  shrq(card_addr, CardTableModRefBS::card_shift);

  lea(tmp2, cardtable);

  // get the address of the card
  addq(card_addr, tmp2);
#else
  const Register card_index = tmp;

  movl(card_index, store_addr);
  shrl(card_index, CardTableModRefBS::card_shift);

  Address index(noreg, card_index, Address::times_1);
  const Register card_addr = tmp;
  lea(card_addr, as_Address(ArrayAddress(cardtable, index)));
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#endif
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  cmpb(Address(card_addr, 0), 0);
  jcc(Assembler::equal, done);

  // storing a region crossing, non-NULL oop, card is clean.
  // dirty card and log.

  movb(Address(card_addr, 0), 0);

  cmpl(queue_index, 0);
  jcc(Assembler::equal, runtime);
  subl(queue_index, wordSize);
  movptr(tmp2, buffer);
#ifdef _LP64
  movslq(rscratch1, queue_index);
  addq(tmp2, rscratch1);
  movq(Address(tmp2, 0), card_addr);
#else
  addl(tmp2, queue_index);
  movl(Address(tmp2, 0), card_index);
#endif
  jmp(done);

  bind(runtime);
  // save the live input values
  push(store_addr);
  push(new_val);
#ifdef _LP64
  call_VM_leaf(CAST_FROM_FN_PTR(address, SharedRuntime::g1_wb_post), card_addr, r15_thread);
#else
  push(thread);
  call_VM_leaf(CAST_FROM_FN_PTR(address, SharedRuntime::g1_wb_post), card_addr, thread);
  pop(thread);
6960
#endif
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  pop(new_val);
  pop(store_addr);

  bind(done);
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}

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#endif // SERIALGC
//////////////////////////////////////////////////////////////////////////////////
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6972 6973 6974 6975 6976 6977 6978 6979 6980 6981 6982 6983 6984 6985 6986 6987 6988 6989 6990 6991 6992 6993 6994 6995 6996 6997 6998 6999 7000 7001 7002 7003 7004 7005 7006 7007 7008 7009 7010 7011 7012 7013 7014 7015 7016 7017 7018 7019 7020 7021 7022 7023 7024 7025 7026 7027 7028 7029 7030 7031 7032 7033 7034 7035 7036 7037 7038 7039 7040 7041 7042 7043 7044 7045 7046 7047 7048 7049 7050 7051 7052 7053 7054 7055 7056 7057
void MacroAssembler::store_check(Register obj) {
  // Does a store check for the oop in register obj. The content of
  // register obj is destroyed afterwards.
  store_check_part_1(obj);
  store_check_part_2(obj);
}

void MacroAssembler::store_check(Register obj, Address dst) {
  store_check(obj);
}


// split the store check operation so that other instructions can be scheduled inbetween
void MacroAssembler::store_check_part_1(Register obj) {
  BarrierSet* bs = Universe::heap()->barrier_set();
  assert(bs->kind() == BarrierSet::CardTableModRef, "Wrong barrier set kind");
  shrptr(obj, CardTableModRefBS::card_shift);
}

void MacroAssembler::store_check_part_2(Register obj) {
  BarrierSet* bs = Universe::heap()->barrier_set();
  assert(bs->kind() == BarrierSet::CardTableModRef, "Wrong barrier set kind");
  CardTableModRefBS* ct = (CardTableModRefBS*)bs;
  assert(sizeof(*ct->byte_map_base) == sizeof(jbyte), "adjust this code");

  // The calculation for byte_map_base is as follows:
  // byte_map_base = _byte_map - (uintptr_t(low_bound) >> card_shift);
  // So this essentially converts an address to a displacement and
  // it will never need to be relocated. On 64bit however the value may be too
  // large for a 32bit displacement

  intptr_t disp = (intptr_t) ct->byte_map_base;
  if (is_simm32(disp)) {
    Address cardtable(noreg, obj, Address::times_1, disp);
    movb(cardtable, 0);
  } else {
    // By doing it as an ExternalAddress disp could be converted to a rip-relative
    // displacement and done in a single instruction given favorable mapping and
    // a smarter version of as_Address. Worst case it is two instructions which
    // is no worse off then loading disp into a register and doing as a simple
    // Address() as above.
    // We can't do as ExternalAddress as the only style since if disp == 0 we'll
    // assert since NULL isn't acceptable in a reloci (see 6644928). In any case
    // in some cases we'll get a single instruction version.

    ExternalAddress cardtable((address)disp);
    Address index(noreg, obj, Address::times_1);
    movb(as_Address(ArrayAddress(cardtable, index)), 0);
  }
}

void MacroAssembler::subptr(Register dst, int32_t imm32) {
  LP64_ONLY(subq(dst, imm32)) NOT_LP64(subl(dst, imm32));
}

void MacroAssembler::subptr(Register dst, Register src) {
  LP64_ONLY(subq(dst, src)) NOT_LP64(subl(dst, src));
}

void MacroAssembler::test32(Register src1, AddressLiteral src2) {
  // src2 must be rval

  if (reachable(src2)) {
    testl(src1, as_Address(src2));
  } else {
    lea(rscratch1, src2);
    testl(src1, Address(rscratch1, 0));
  }
}

// C++ bool manipulation
void MacroAssembler::testbool(Register dst) {
  if(sizeof(bool) == 1)
    testb(dst, 0xff);
  else if(sizeof(bool) == 2) {
    // testw implementation needed for two byte bools
    ShouldNotReachHere();
  } else if(sizeof(bool) == 4)
    testl(dst, dst);
  else
    // unsupported
    ShouldNotReachHere();
}

void MacroAssembler::testptr(Register dst, Register src) {
  LP64_ONLY(testq(dst, src)) NOT_LP64(testl(dst, src));
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}

// Defines obj, preserves var_size_in_bytes, okay for t2 == var_size_in_bytes.
void MacroAssembler::tlab_allocate(Register obj,
                                   Register var_size_in_bytes,
                                   int con_size_in_bytes,
                                   Register t1,
                                   Register t2,
                                   Label& slow_case) {
  assert_different_registers(obj, t1, t2);
  assert_different_registers(obj, var_size_in_bytes, t1);
  Register end = t2;
7070
  Register thread = NOT_LP64(t1) LP64_ONLY(r15_thread);
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  verify_tlab();

7074 7075 7076
  NOT_LP64(get_thread(thread));

  movptr(obj, Address(thread, JavaThread::tlab_top_offset()));
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  if (var_size_in_bytes == noreg) {
7078
    lea(end, Address(obj, con_size_in_bytes));
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  } else {
7080
    lea(end, Address(obj, var_size_in_bytes, Address::times_1));
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  }
7082
  cmpptr(end, Address(thread, JavaThread::tlab_end_offset()));
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  jcc(Assembler::above, slow_case);

  // update the tlab top pointer
7086
  movptr(Address(thread, JavaThread::tlab_top_offset()), end);
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  // recover var_size_in_bytes if necessary
  if (var_size_in_bytes == end) {
7090
    subptr(var_size_in_bytes, obj);
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  }
  verify_tlab();
}

7095
// Preserves rbx, and rdx.
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void MacroAssembler::tlab_refill(Label& retry,
                                 Label& try_eden,
                                 Label& slow_case) {
  Register top = rax;
7100 7101 7102 7103
  Register t1  = rcx;
  Register t2  = rsi;
  Register thread_reg = NOT_LP64(rdi) LP64_ONLY(r15_thread);
  assert_different_registers(top, thread_reg, t1, t2, /* preserve: */ rbx, rdx);
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  Label do_refill, discard_tlab;

  if (CMSIncrementalMode || !Universe::heap()->supports_inline_contig_alloc()) {
    // No allocation in the shared eden.
    jmp(slow_case);
  }

7111 7112 7113 7114
  NOT_LP64(get_thread(thread_reg));

  movptr(top, Address(thread_reg, in_bytes(JavaThread::tlab_top_offset())));
  movptr(t1,  Address(thread_reg, in_bytes(JavaThread::tlab_end_offset())));
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  // calculate amount of free space
7117 7118
  subptr(t1, top);
  shrptr(t1, LogHeapWordSize);
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  // Retain tlab and allocate object in shared space if
  // the amount free in the tlab is too large to discard.
7122
  cmpptr(t1, Address(thread_reg, in_bytes(JavaThread::tlab_refill_waste_limit_offset())));
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  jcc(Assembler::lessEqual, discard_tlab);

  // Retain
7126 7127 7128
  // %%% yuck as movptr...
  movptr(t2, (int32_t) ThreadLocalAllocBuffer::refill_waste_limit_increment());
  addptr(Address(thread_reg, in_bytes(JavaThread::tlab_refill_waste_limit_offset())), t2);
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  if (TLABStats) {
    // increment number of slow_allocations
7131
    addl(Address(thread_reg, in_bytes(JavaThread::tlab_slow_allocations_offset())), 1);
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  }
  jmp(try_eden);

  bind(discard_tlab);
  if (TLABStats) {
    // increment number of refills
7138
    addl(Address(thread_reg, in_bytes(JavaThread::tlab_number_of_refills_offset())), 1);
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    // accumulate wastage -- t1 is amount free in tlab
7140
    addl(Address(thread_reg, in_bytes(JavaThread::tlab_fast_refill_waste_offset())), t1);
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  }

  // if tlab is currently allocated (top or end != null) then
  // fill [top, end + alignment_reserve) with array object
7145
  testptr (top, top);
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  jcc(Assembler::zero, do_refill);

  // set up the mark word
7149
  movptr(Address(top, oopDesc::mark_offset_in_bytes()), (intptr_t)markOopDesc::prototype()->copy_set_hash(0x2));
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  // set the length to the remaining space
7151 7152 7153
  subptr(t1, typeArrayOopDesc::header_size(T_INT));
  addptr(t1, (int32_t)ThreadLocalAllocBuffer::alignment_reserve());
  shlptr(t1, log2_intptr(HeapWordSize/sizeof(jint)));
7154
  movl(Address(top, arrayOopDesc::length_offset_in_bytes()), t1);
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  // set klass to intArrayKlass
7156
  // dubious reloc why not an oop reloc?
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  movptr(t1, ExternalAddress((address) Universe::intArrayKlassObj_addr()));
7158 7159
  // store klass last.  concurrent gcs assumes klass length is valid if
  // klass field is not null.
7160
  store_klass(top, t1);
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  // refill the tlab with an eden allocation
  bind(do_refill);
7164 7165
  movptr(t1, Address(thread_reg, in_bytes(JavaThread::tlab_size_offset())));
  shlptr(t1, LogHeapWordSize);
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  // add object_size ??
  eden_allocate(top, t1, 0, t2, slow_case);

  // Check that t1 was preserved in eden_allocate.
#ifdef ASSERT
  if (UseTLAB) {
    Label ok;
    Register tsize = rsi;
    assert_different_registers(tsize, thread_reg, t1);
7175 7176 7177 7178
    push(tsize);
    movptr(tsize, Address(thread_reg, in_bytes(JavaThread::tlab_size_offset())));
    shlptr(tsize, LogHeapWordSize);
    cmpptr(t1, tsize);
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    jcc(Assembler::equal, ok);
    stop("assert(t1 != tlab size)");
    should_not_reach_here();

    bind(ok);
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    pop(tsize);
  }
#endif
  movptr(Address(thread_reg, in_bytes(JavaThread::tlab_start_offset())), top);
  movptr(Address(thread_reg, in_bytes(JavaThread::tlab_top_offset())), top);
  addptr(top, t1);
  subptr(top, (int32_t)ThreadLocalAllocBuffer::alignment_reserve_in_bytes());
  movptr(Address(thread_reg, in_bytes(JavaThread::tlab_end_offset())), top);
  verify_tlab();
  jmp(retry);
}

static const double     pi_4 =  0.7853981633974483;

void MacroAssembler::trigfunc(char trig, int num_fpu_regs_in_use) {
  // A hand-coded argument reduction for values in fabs(pi/4, pi/2)
  // was attempted in this code; unfortunately it appears that the
  // switch to 80-bit precision and back causes this to be
  // unprofitable compared with simply performing a runtime call if
  // the argument is out of the (-pi/4, pi/4) range.

  Register tmp = noreg;
  if (!VM_Version::supports_cmov()) {
    // fcmp needs a temporary so preserve rbx,
    tmp = rbx;
    push(tmp);
  }

  Label slow_case, done;

7214 7215 7216 7217 7218 7219 7220 7221
  ExternalAddress pi4_adr = (address)&pi_4;
  if (reachable(pi4_adr)) {
    // x ?<= pi/4
    fld_d(pi4_adr);
    fld_s(1);                // Stack:  X  PI/4  X
    fabs();                  // Stack: |X| PI/4  X
    fcmp(tmp);
    jcc(Assembler::above, slow_case);
7222

7223 7224 7225 7226 7227 7228 7229 7230 7231 7232 7233 7234 7235 7236 7237 7238
    // fastest case: -pi/4 <= x <= pi/4
    switch(trig) {
    case 's':
      fsin();
      break;
    case 'c':
      fcos();
      break;
    case 't':
      ftan();
      break;
    default:
      assert(false, "bad intrinsic");
      break;
    }
    jmp(done);
7239 7240 7241 7242 7243 7244 7245 7246 7247 7248 7249 7250 7251 7252 7253 7254 7255 7256 7257 7258 7259 7260 7261 7262 7263 7264 7265 7266 7267 7268 7269 7270 7271 7272 7273 7274 7275 7276 7277 7278 7279 7280 7281 7282 7283 7284 7285 7286 7287 7288 7289 7290 7291 7292 7293 7294 7295 7296 7297 7298 7299 7300 7301 7302 7303 7304 7305 7306 7307 7308 7309 7310 7311 7312 7313 7314 7315 7316 7317 7318 7319
  }

  // slow case: runtime call
  bind(slow_case);
  // Preserve registers across runtime call
  pusha();
  int incoming_argument_and_return_value_offset = -1;
  if (num_fpu_regs_in_use > 1) {
    // Must preserve all other FPU regs (could alternatively convert
    // SharedRuntime::dsin and dcos into assembly routines known not to trash
    // FPU state, but can not trust C compiler)
    NEEDS_CLEANUP;
    // NOTE that in this case we also push the incoming argument to
    // the stack and restore it later; we also use this stack slot to
    // hold the return value from dsin or dcos.
    for (int i = 0; i < num_fpu_regs_in_use; i++) {
      subptr(rsp, sizeof(jdouble));
      fstp_d(Address(rsp, 0));
    }
    incoming_argument_and_return_value_offset = sizeof(jdouble)*(num_fpu_regs_in_use-1);
    fld_d(Address(rsp, incoming_argument_and_return_value_offset));
  }
  subptr(rsp, sizeof(jdouble));
  fstp_d(Address(rsp, 0));
#ifdef _LP64
  movdbl(xmm0, Address(rsp, 0));
#endif // _LP64

  // NOTE: we must not use call_VM_leaf here because that requires a
  // complete interpreter frame in debug mode -- same bug as 4387334
  // MacroAssembler::call_VM_leaf_base is perfectly safe and will
  // do proper 64bit abi

  NEEDS_CLEANUP;
  // Need to add stack banging before this runtime call if it needs to
  // be taken; however, there is no generic stack banging routine at
  // the MacroAssembler level
  switch(trig) {
  case 's':
    {
      MacroAssembler::call_VM_leaf_base(CAST_FROM_FN_PTR(address, SharedRuntime::dsin), 0);
    }
    break;
  case 'c':
    {
      MacroAssembler::call_VM_leaf_base(CAST_FROM_FN_PTR(address, SharedRuntime::dcos), 0);
    }
    break;
  case 't':
    {
      MacroAssembler::call_VM_leaf_base(CAST_FROM_FN_PTR(address, SharedRuntime::dtan), 0);
    }
    break;
  default:
    assert(false, "bad intrinsic");
    break;
  }
#ifdef _LP64
    movsd(Address(rsp, 0), xmm0);
    fld_d(Address(rsp, 0));
#endif // _LP64
  addptr(rsp, sizeof(jdouble));
  if (num_fpu_regs_in_use > 1) {
    // Must save return value to stack and then restore entire FPU stack
    fstp_d(Address(rsp, incoming_argument_and_return_value_offset));
    for (int i = 0; i < num_fpu_regs_in_use; i++) {
      fld_d(Address(rsp, 0));
      addptr(rsp, sizeof(jdouble));
    }
  }
  popa();

  // Come here with result in F-TOS
  bind(done);

  if (tmp != noreg) {
    pop(tmp);
  }
}


7320 7321 7322 7323 7324 7325 7326
// Look up the method for a megamorphic invokeinterface call.
// The target method is determined by <intf_klass, itable_index>.
// The receiver klass is in recv_klass.
// On success, the result will be in method_result, and execution falls through.
// On failure, execution transfers to the given label.
void MacroAssembler::lookup_interface_method(Register recv_klass,
                                             Register intf_klass,
7327
                                             RegisterOrConstant itable_index,
7328 7329 7330 7331 7332 7333 7334 7335 7336 7337 7338 7339 7340 7341 7342 7343 7344 7345 7346 7347 7348 7349 7350 7351 7352 7353 7354 7355 7356 7357 7358 7359 7360 7361 7362 7363 7364 7365 7366 7367 7368 7369 7370 7371 7372 7373 7374 7375 7376 7377 7378 7379 7380 7381 7382 7383 7384 7385 7386 7387 7388 7389 7390 7391 7392 7393 7394
                                             Register method_result,
                                             Register scan_temp,
                                             Label& L_no_such_interface) {
  assert_different_registers(recv_klass, intf_klass, method_result, scan_temp);
  assert(itable_index.is_constant() || itable_index.as_register() == method_result,
         "caller must use same register for non-constant itable index as for method");

  // Compute start of first itableOffsetEntry (which is at the end of the vtable)
  int vtable_base = instanceKlass::vtable_start_offset() * wordSize;
  int itentry_off = itableMethodEntry::method_offset_in_bytes();
  int scan_step   = itableOffsetEntry::size() * wordSize;
  int vte_size    = vtableEntry::size() * wordSize;
  Address::ScaleFactor times_vte_scale = Address::times_ptr;
  assert(vte_size == wordSize, "else adjust times_vte_scale");

  movl(scan_temp, Address(recv_klass, instanceKlass::vtable_length_offset() * wordSize));

  // %%% Could store the aligned, prescaled offset in the klassoop.
  lea(scan_temp, Address(recv_klass, scan_temp, times_vte_scale, vtable_base));
  if (HeapWordsPerLong > 1) {
    // Round up to align_object_offset boundary
    // see code for instanceKlass::start_of_itable!
    round_to(scan_temp, BytesPerLong);
  }

  // Adjust recv_klass by scaled itable_index, so we can free itable_index.
  assert(itableMethodEntry::size() * wordSize == wordSize, "adjust the scaling in the code below");
  lea(recv_klass, Address(recv_klass, itable_index, Address::times_ptr, itentry_off));

  // for (scan = klass->itable(); scan->interface() != NULL; scan += scan_step) {
  //   if (scan->interface() == intf) {
  //     result = (klass + scan->offset() + itable_index);
  //   }
  // }
  Label search, found_method;

  for (int peel = 1; peel >= 0; peel--) {
    movptr(method_result, Address(scan_temp, itableOffsetEntry::interface_offset_in_bytes()));
    cmpptr(intf_klass, method_result);

    if (peel) {
      jccb(Assembler::equal, found_method);
    } else {
      jccb(Assembler::notEqual, search);
      // (invert the test to fall through to found_method...)
    }

    if (!peel)  break;

    bind(search);

    // Check that the previous entry is non-null.  A null entry means that
    // the receiver class doesn't implement the interface, and wasn't the
    // same as when the caller was compiled.
    testptr(method_result, method_result);
    jcc(Assembler::zero, L_no_such_interface);
    addptr(scan_temp, scan_step);
  }

  bind(found_method);

  // Got a hit.
  movl(scan_temp, Address(scan_temp, itableOffsetEntry::offset_offset_in_bytes()));
  movptr(method_result, Address(recv_klass, scan_temp, Address::times_1));
}


7395 7396 7397 7398 7399 7400 7401 7402 7403 7404 7405 7406 7407 7408 7409 7410 7411
void MacroAssembler::check_klass_subtype(Register sub_klass,
                           Register super_klass,
                           Register temp_reg,
                           Label& L_success) {
  Label L_failure;
  check_klass_subtype_fast_path(sub_klass, super_klass, temp_reg,        &L_success, &L_failure, NULL);
  check_klass_subtype_slow_path(sub_klass, super_klass, temp_reg, noreg, &L_success, NULL);
  bind(L_failure);
}


void MacroAssembler::check_klass_subtype_fast_path(Register sub_klass,
                                                   Register super_klass,
                                                   Register temp_reg,
                                                   Label* L_success,
                                                   Label* L_failure,
                                                   Label* L_slow_path,
7412
                                        RegisterOrConstant super_check_offset) {
7413 7414 7415 7416 7417 7418 7419 7420 7421 7422 7423 7424 7425 7426 7427 7428 7429 7430 7431 7432 7433 7434 7435 7436 7437 7438 7439 7440 7441 7442 7443 7444 7445 7446 7447 7448 7449 7450 7451 7452 7453 7454 7455 7456 7457 7458 7459 7460
  assert_different_registers(sub_klass, super_klass, temp_reg);
  bool must_load_sco = (super_check_offset.constant_or_zero() == -1);
  if (super_check_offset.is_register()) {
    assert_different_registers(sub_klass, super_klass,
                               super_check_offset.as_register());
  } else if (must_load_sco) {
    assert(temp_reg != noreg, "supply either a temp or a register offset");
  }

  Label L_fallthrough;
  int label_nulls = 0;
  if (L_success == NULL)   { L_success   = &L_fallthrough; label_nulls++; }
  if (L_failure == NULL)   { L_failure   = &L_fallthrough; label_nulls++; }
  if (L_slow_path == NULL) { L_slow_path = &L_fallthrough; label_nulls++; }
  assert(label_nulls <= 1, "at most one NULL in the batch");

  int sc_offset = (klassOopDesc::header_size() * HeapWordSize +
                   Klass::secondary_super_cache_offset_in_bytes());
  int sco_offset = (klassOopDesc::header_size() * HeapWordSize +
                    Klass::super_check_offset_offset_in_bytes());
  Address super_check_offset_addr(super_klass, sco_offset);

  // Hacked jcc, which "knows" that L_fallthrough, at least, is in
  // range of a jccb.  If this routine grows larger, reconsider at
  // least some of these.
#define local_jcc(assembler_cond, label)                                \
  if (&(label) == &L_fallthrough)  jccb(assembler_cond, label);         \
  else                             jcc( assembler_cond, label) /*omit semi*/

  // Hacked jmp, which may only be used just before L_fallthrough.
#define final_jmp(label)                                                \
  if (&(label) == &L_fallthrough) { /*do nothing*/ }                    \
  else                            jmp(label)                /*omit semi*/

  // If the pointers are equal, we are done (e.g., String[] elements).
  // This self-check enables sharing of secondary supertype arrays among
  // non-primary types such as array-of-interface.  Otherwise, each such
  // type would need its own customized SSA.
  // We move this check to the front of the fast path because many
  // type checks are in fact trivially successful in this manner,
  // so we get a nicely predicted branch right at the start of the check.
  cmpptr(sub_klass, super_klass);
  local_jcc(Assembler::equal, *L_success);

  // Check the supertype display:
  if (must_load_sco) {
    // Positive movl does right thing on LP64.
    movl(temp_reg, super_check_offset_addr);
7461
    super_check_offset = RegisterOrConstant(temp_reg);
7462 7463 7464 7465 7466 7467 7468 7469 7470 7471 7472 7473 7474 7475 7476 7477 7478 7479 7480 7481 7482 7483 7484 7485 7486 7487 7488 7489 7490 7491 7492 7493 7494 7495 7496 7497 7498 7499 7500 7501 7502 7503 7504 7505 7506 7507 7508 7509 7510 7511 7512 7513 7514 7515 7516 7517 7518 7519 7520 7521 7522 7523 7524 7525 7526 7527 7528 7529 7530 7531 7532 7533 7534 7535 7536 7537 7538 7539 7540 7541 7542 7543 7544 7545 7546 7547 7548 7549 7550 7551 7552 7553 7554 7555 7556 7557 7558 7559 7560 7561 7562 7563 7564 7565 7566 7567 7568 7569 7570
  }
  Address super_check_addr(sub_klass, super_check_offset, Address::times_1, 0);
  cmpptr(super_klass, super_check_addr); // load displayed supertype

  // This check has worked decisively for primary supers.
  // Secondary supers are sought in the super_cache ('super_cache_addr').
  // (Secondary supers are interfaces and very deeply nested subtypes.)
  // This works in the same check above because of a tricky aliasing
  // between the super_cache and the primary super display elements.
  // (The 'super_check_addr' can address either, as the case requires.)
  // Note that the cache is updated below if it does not help us find
  // what we need immediately.
  // So if it was a primary super, we can just fail immediately.
  // Otherwise, it's the slow path for us (no success at this point).

  if (super_check_offset.is_register()) {
    local_jcc(Assembler::equal, *L_success);
    cmpl(super_check_offset.as_register(), sc_offset);
    if (L_failure == &L_fallthrough) {
      local_jcc(Assembler::equal, *L_slow_path);
    } else {
      local_jcc(Assembler::notEqual, *L_failure);
      final_jmp(*L_slow_path);
    }
  } else if (super_check_offset.as_constant() == sc_offset) {
    // Need a slow path; fast failure is impossible.
    if (L_slow_path == &L_fallthrough) {
      local_jcc(Assembler::equal, *L_success);
    } else {
      local_jcc(Assembler::notEqual, *L_slow_path);
      final_jmp(*L_success);
    }
  } else {
    // No slow path; it's a fast decision.
    if (L_failure == &L_fallthrough) {
      local_jcc(Assembler::equal, *L_success);
    } else {
      local_jcc(Assembler::notEqual, *L_failure);
      final_jmp(*L_success);
    }
  }

  bind(L_fallthrough);

#undef local_jcc
#undef final_jmp
}


void MacroAssembler::check_klass_subtype_slow_path(Register sub_klass,
                                                   Register super_klass,
                                                   Register temp_reg,
                                                   Register temp2_reg,
                                                   Label* L_success,
                                                   Label* L_failure,
                                                   bool set_cond_codes) {
  assert_different_registers(sub_klass, super_klass, temp_reg);
  if (temp2_reg != noreg)
    assert_different_registers(sub_klass, super_klass, temp_reg, temp2_reg);
#define IS_A_TEMP(reg) ((reg) == temp_reg || (reg) == temp2_reg)

  Label L_fallthrough;
  int label_nulls = 0;
  if (L_success == NULL)   { L_success   = &L_fallthrough; label_nulls++; }
  if (L_failure == NULL)   { L_failure   = &L_fallthrough; label_nulls++; }
  assert(label_nulls <= 1, "at most one NULL in the batch");

  // a couple of useful fields in sub_klass:
  int ss_offset = (klassOopDesc::header_size() * HeapWordSize +
                   Klass::secondary_supers_offset_in_bytes());
  int sc_offset = (klassOopDesc::header_size() * HeapWordSize +
                   Klass::secondary_super_cache_offset_in_bytes());
  Address secondary_supers_addr(sub_klass, ss_offset);
  Address super_cache_addr(     sub_klass, sc_offset);

  // Do a linear scan of the secondary super-klass chain.
  // This code is rarely used, so simplicity is a virtue here.
  // The repne_scan instruction uses fixed registers, which we must spill.
  // Don't worry too much about pre-existing connections with the input regs.

  assert(sub_klass != rax, "killed reg"); // killed by mov(rax, super)
  assert(sub_klass != rcx, "killed reg"); // killed by lea(rcx, &pst_counter)

  // Get super_klass value into rax (even if it was in rdi or rcx).
  bool pushed_rax = false, pushed_rcx = false, pushed_rdi = false;
  if (super_klass != rax || UseCompressedOops) {
    if (!IS_A_TEMP(rax)) { push(rax); pushed_rax = true; }
    mov(rax, super_klass);
  }
  if (!IS_A_TEMP(rcx)) { push(rcx); pushed_rcx = true; }
  if (!IS_A_TEMP(rdi)) { push(rdi); pushed_rdi = true; }

#ifndef PRODUCT
  int* pst_counter = &SharedRuntime::_partial_subtype_ctr;
  ExternalAddress pst_counter_addr((address) pst_counter);
  NOT_LP64(  incrementl(pst_counter_addr) );
  LP64_ONLY( lea(rcx, pst_counter_addr) );
  LP64_ONLY( incrementl(Address(rcx, 0)) );
#endif //PRODUCT

  // We will consult the secondary-super array.
  movptr(rdi, secondary_supers_addr);
  // Load the array length.  (Positive movl does right thing on LP64.)
  movl(rcx, Address(rdi, arrayOopDesc::length_offset_in_bytes()));
  // Skip to start of data.
  addptr(rdi, arrayOopDesc::base_offset_in_bytes(T_OBJECT));

  // Scan RCX words at [RDI] for an occurrence of RAX.
  // Set NZ/Z based on last compare.
7571 7572 7573
  // Z flag value will not be set by 'repne' if RCX == 0 since 'repne' does
  // not change flags (only scas instruction which is repeated sets flags).
  // Set Z = 0 (not equal) before 'repne' to indicate that class was not found.
7574 7575 7576 7577 7578
#ifdef _LP64
  // This part is tricky, as values in supers array could be 32 or 64 bit wide
  // and we store values in objArrays always encoded, thus we need to encode
  // the value of rax before repne.  Note that rax is dead after the repne.
  if (UseCompressedOops) {
7579
    encode_heap_oop_not_null(rax); // Changes flags.
7580 7581 7582 7583
    // The superclass is never null; it would be a basic system error if a null
    // pointer were to sneak in here.  Note that we have already loaded the
    // Klass::super_check_offset from the super_klass in the fast path,
    // so if there is a null in that register, we are already in the afterlife.
7584
    testl(rax,rax); // Set Z = 0
7585 7586 7587
    repne_scanl();
  } else
#endif // _LP64
7588 7589
  {
    testptr(rax,rax); // Set Z = 0
7590
    repne_scan();
7591
  }
7592 7593 7594 7595 7596 7597 7598 7599 7600 7601 7602 7603 7604 7605 7606 7607 7608 7609 7610 7611 7612 7613 7614 7615 7616 7617 7618 7619
  // Unspill the temp. registers:
  if (pushed_rdi)  pop(rdi);
  if (pushed_rcx)  pop(rcx);
  if (pushed_rax)  pop(rax);

  if (set_cond_codes) {
    // Special hack for the AD files:  rdi is guaranteed non-zero.
    assert(!pushed_rdi, "rdi must be left non-NULL");
    // Also, the condition codes are properly set Z/NZ on succeed/failure.
  }

  if (L_failure == &L_fallthrough)
        jccb(Assembler::notEqual, *L_failure);
  else  jcc(Assembler::notEqual, *L_failure);

  // Success.  Cache the super we found and proceed in triumph.
  movptr(super_cache_addr, super_klass);

  if (L_success != &L_fallthrough) {
    jmp(*L_success);
  }

#undef IS_A_TEMP

  bind(L_fallthrough);
}


7620 7621 7622 7623 7624 7625 7626 7627 7628 7629 7630 7631 7632 7633 7634 7635 7636 7637 7638 7639 7640 7641 7642 7643 7644 7645 7646 7647 7648 7649 7650 7651
void MacroAssembler::ucomisd(XMMRegister dst, AddressLiteral src) {
  ucomisd(dst, as_Address(src));
}

void MacroAssembler::ucomiss(XMMRegister dst, AddressLiteral src) {
  ucomiss(dst, as_Address(src));
}

void MacroAssembler::xorpd(XMMRegister dst, AddressLiteral src) {
  if (reachable(src)) {
    xorpd(dst, as_Address(src));
  } else {
    lea(rscratch1, src);
    xorpd(dst, Address(rscratch1, 0));
  }
}

void MacroAssembler::xorps(XMMRegister dst, AddressLiteral src) {
  if (reachable(src)) {
    xorps(dst, as_Address(src));
  } else {
    lea(rscratch1, src);
    xorps(dst, Address(rscratch1, 0));
  }
}

void MacroAssembler::verify_oop(Register reg, const char* s) {
  if (!VerifyOops) return;

  // Pass register number to verify_oop_subroutine
  char* b = new char[strlen(s) + 50];
  sprintf(b, "verify_oop: %s: %s", reg->name(), s);
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#ifdef _LP64
  push(rscratch1);                    // save r10, trashed by movptr()
#endif
7655 7656 7657 7658 7659 7660 7661 7662 7663 7664
  push(rax);                          // save rax,
  push(reg);                          // pass register argument
  ExternalAddress buffer((address) b);
  // avoid using pushptr, as it modifies scratch registers
  // and our contract is not to modify anything
  movptr(rax, buffer.addr());
  push(rax);
  // call indirectly to solve generation ordering problem
  movptr(rax, ExternalAddress(StubRoutines::verify_oop_subroutine_entry_address()));
  call(rax);
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  // Caller pops the arguments (oop, message) and restores rax, r10
7666 7667 7668
}


7669 7670 7671
RegisterOrConstant MacroAssembler::delayed_value_impl(intptr_t* delayed_value_addr,
                                                      Register tmp,
                                                      int offset) {
7672 7673
  intptr_t value = *delayed_value_addr;
  if (value != 0)
7674
    return RegisterOrConstant(value + offset);
7675 7676 7677 7678 7679 7680

  // load indirectly to solve generation ordering problem
  movptr(tmp, ExternalAddress((address) delayed_value_addr));

#ifdef ASSERT
  Label L;
7681
  testptr(tmp, tmp);
7682 7683 7684 7685 7686 7687 7688 7689
  jccb(Assembler::notZero, L);
  hlt();
  bind(L);
#endif

  if (offset != 0)
    addptr(tmp, offset);

7690
  return RegisterOrConstant(tmp);
7691 7692 7693
}


7694 7695 7696 7697 7698 7699 7700 7701 7702 7703 7704 7705 7706 7707 7708 7709 7710 7711 7712 7713
// registers on entry:
//  - rax ('check' register): required MethodType
//  - rcx: method handle
//  - rdx, rsi, or ?: killable temp
void MacroAssembler::check_method_handle_type(Register mtype_reg, Register mh_reg,
                                              Register temp_reg,
                                              Label& wrong_method_type) {
  if (UseCompressedOops)  unimplemented();  // field accesses must decode
  // compare method type against that of the receiver
  cmpptr(mtype_reg, Address(mh_reg, delayed_value(java_dyn_MethodHandle::type_offset_in_bytes, temp_reg)));
  jcc(Assembler::notEqual, wrong_method_type);
}


// A method handle has a "vmslots" field which gives the size of its
// argument list in JVM stack slots.  This field is either located directly
// in every method handle, or else is indirectly accessed through the
// method handle's MethodType.  This macro hides the distinction.
void MacroAssembler::load_method_handle_vmslots(Register vmslots_reg, Register mh_reg,
                                                Register temp_reg) {
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  assert_different_registers(vmslots_reg, mh_reg, temp_reg);
7715 7716 7717 7718 7719 7720 7721 7722 7723 7724 7725 7726 7727 7728 7729 7730 7731 7732 7733 7734 7735 7736 7737 7738 7739 7740 7741 7742 7743 7744 7745 7746 7747 7748 7749 7750 7751 7752
  if (UseCompressedOops)  unimplemented();  // field accesses must decode
  // load mh.type.form.vmslots
  if (java_dyn_MethodHandle::vmslots_offset_in_bytes() != 0) {
    // hoist vmslots into every mh to avoid dependent load chain
    movl(vmslots_reg, Address(mh_reg, delayed_value(java_dyn_MethodHandle::vmslots_offset_in_bytes, temp_reg)));
  } else {
    Register temp2_reg = vmslots_reg;
    movptr(temp2_reg, Address(mh_reg,    delayed_value(java_dyn_MethodHandle::type_offset_in_bytes, temp_reg)));
    movptr(temp2_reg, Address(temp2_reg, delayed_value(java_dyn_MethodType::form_offset_in_bytes, temp_reg)));
    movl(vmslots_reg, Address(temp2_reg, delayed_value(java_dyn_MethodTypeForm::vmslots_offset_in_bytes, temp_reg)));
  }
}


// registers on entry:
//  - rcx: method handle
//  - rdx: killable temp (interpreted only)
//  - rax: killable temp (compiled only)
void MacroAssembler::jump_to_method_handle_entry(Register mh_reg, Register temp_reg) {
  assert(mh_reg == rcx, "caller must put MH object in rcx");
  assert_different_registers(mh_reg, temp_reg);

  if (UseCompressedOops)  unimplemented();  // field accesses must decode

  // pick out the interpreted side of the handler
  movptr(temp_reg, Address(mh_reg, delayed_value(java_dyn_MethodHandle::vmentry_offset_in_bytes, temp_reg)));

  // off we go...
  jmp(Address(temp_reg, MethodHandleEntry::from_interpreted_entry_offset_in_bytes()));

  // for the various stubs which take control at this point,
  // see MethodHandles::generate_method_handle_stub
}


Address MacroAssembler::argument_address(RegisterOrConstant arg_slot,
                                         int extra_slot_offset) {
  // cf. TemplateTable::prepare_invoke(), if (load_receiver).
7753
  int stackElementSize = Interpreter::stackElementSize;
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  int offset = Interpreter::expr_offset_in_bytes(extra_slot_offset+0);
#ifdef ASSERT
  int offset1 = Interpreter::expr_offset_in_bytes(extra_slot_offset+1);
  assert(offset1 - offset == stackElementSize, "correct arithmetic");
#endif
  Register             scale_reg    = noreg;
  Address::ScaleFactor scale_factor = Address::no_scale;
  if (arg_slot.is_constant()) {
    offset += arg_slot.as_constant() * stackElementSize;
  } else {
    scale_reg    = arg_slot.as_register();
    scale_factor = Address::times(stackElementSize);
  }
  offset += wordSize;           // return PC is on stack
  return Address(rsp, scale_reg, scale_factor, offset);
}


7772 7773 7774 7775 7776 7777 7778 7779
void MacroAssembler::verify_oop_addr(Address addr, const char* s) {
  if (!VerifyOops) return;

  // Address adjust(addr.base(), addr.index(), addr.scale(), addr.disp() + BytesPerWord);
  // Pass register number to verify_oop_subroutine
  char* b = new char[strlen(s) + 50];
  sprintf(b, "verify_oop_addr: %s", s);

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#ifdef _LP64
  push(rscratch1);                    // save r10, trashed by movptr()
#endif
7783 7784 7785 7786 7787 7788 7789 7790 7791 7792 7793 7794 7795 7796 7797 7798 7799 7800 7801 7802 7803 7804
  push(rax);                          // save rax,
  // addr may contain rsp so we will have to adjust it based on the push
  // we just did
  // NOTE: 64bit seemed to have had a bug in that it did movq(addr, rax); which
  // stores rax into addr which is backwards of what was intended.
  if (addr.uses(rsp)) {
    lea(rax, addr);
    pushptr(Address(rax, BytesPerWord));
  } else {
    pushptr(addr);
  }

  ExternalAddress buffer((address) b);
  // pass msg argument
  // avoid using pushptr, as it modifies scratch registers
  // and our contract is not to modify anything
  movptr(rax, buffer.addr());
  push(rax);

  // call indirectly to solve generation ordering problem
  movptr(rax, ExternalAddress(StubRoutines::verify_oop_subroutine_entry_address()));
  call(rax);
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  // Caller pops the arguments (addr, message) and restores rax, r10.
7806 7807 7808 7809 7810 7811 7812 7813 7814 7815 7816 7817 7818 7819 7820 7821 7822 7823 7824 7825 7826 7827 7828 7829 7830 7831 7832 7833 7834
}

void MacroAssembler::verify_tlab() {
#ifdef ASSERT
  if (UseTLAB && VerifyOops) {
    Label next, ok;
    Register t1 = rsi;
    Register thread_reg = NOT_LP64(rbx) LP64_ONLY(r15_thread);

    push(t1);
    NOT_LP64(push(thread_reg));
    NOT_LP64(get_thread(thread_reg));

    movptr(t1, Address(thread_reg, in_bytes(JavaThread::tlab_top_offset())));
    cmpptr(t1, Address(thread_reg, in_bytes(JavaThread::tlab_start_offset())));
    jcc(Assembler::aboveEqual, next);
    stop("assert(top >= start)");
    should_not_reach_here();

    bind(next);
    movptr(t1, Address(thread_reg, in_bytes(JavaThread::tlab_end_offset())));
    cmpptr(t1, Address(thread_reg, in_bytes(JavaThread::tlab_top_offset())));
    jcc(Assembler::aboveEqual, ok);
    stop("assert(top <= end)");
    should_not_reach_here();

    bind(ok);
    NOT_LP64(pop(thread_reg));
    pop(t1);
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  }
#endif
}

7839 7840 7841 7842 7843 7844 7845 7846 7847 7848 7849 7850 7851 7852 7853 7854 7855 7856 7857 7858 7859 7860 7861 7862 7863 7864 7865 7866 7867 7868 7869 7870 7871 7872 7873 7874 7875 7876 7877 7878 7879 7880 7881 7882
class ControlWord {
 public:
  int32_t _value;

  int  rounding_control() const        { return  (_value >> 10) & 3      ; }
  int  precision_control() const       { return  (_value >>  8) & 3      ; }
  bool precision() const               { return ((_value >>  5) & 1) != 0; }
  bool underflow() const               { return ((_value >>  4) & 1) != 0; }
  bool overflow() const                { return ((_value >>  3) & 1) != 0; }
  bool zero_divide() const             { return ((_value >>  2) & 1) != 0; }
  bool denormalized() const            { return ((_value >>  1) & 1) != 0; }
  bool invalid() const                 { return ((_value >>  0) & 1) != 0; }

  void print() const {
    // rounding control
    const char* rc;
    switch (rounding_control()) {
      case 0: rc = "round near"; break;
      case 1: rc = "round down"; break;
      case 2: rc = "round up  "; break;
      case 3: rc = "chop      "; break;
    };
    // precision control
    const char* pc;
    switch (precision_control()) {
      case 0: pc = "24 bits "; break;
      case 1: pc = "reserved"; break;
      case 2: pc = "53 bits "; break;
      case 3: pc = "64 bits "; break;
    };
    // flags
    char f[9];
    f[0] = ' ';
    f[1] = ' ';
    f[2] = (precision   ()) ? 'P' : 'p';
    f[3] = (underflow   ()) ? 'U' : 'u';
    f[4] = (overflow    ()) ? 'O' : 'o';
    f[5] = (zero_divide ()) ? 'Z' : 'z';
    f[6] = (denormalized()) ? 'D' : 'd';
    f[7] = (invalid     ()) ? 'I' : 'i';
    f[8] = '\x0';
    // output
    printf("%04x  masks = %s, %s, %s", _value & 0xFFFF, f, rc, pc);
  }
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7884
};
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7886 7887 7888 7889 7890 7891 7892 7893 7894 7895 7896 7897 7898 7899 7900 7901 7902 7903 7904 7905 7906 7907 7908 7909 7910 7911 7912 7913 7914 7915 7916 7917 7918 7919 7920 7921 7922 7923 7924 7925
class StatusWord {
 public:
  int32_t _value;

  bool busy() const                    { return ((_value >> 15) & 1) != 0; }
  bool C3() const                      { return ((_value >> 14) & 1) != 0; }
  bool C2() const                      { return ((_value >> 10) & 1) != 0; }
  bool C1() const                      { return ((_value >>  9) & 1) != 0; }
  bool C0() const                      { return ((_value >>  8) & 1) != 0; }
  int  top() const                     { return  (_value >> 11) & 7      ; }
  bool error_status() const            { return ((_value >>  7) & 1) != 0; }
  bool stack_fault() const             { return ((_value >>  6) & 1) != 0; }
  bool precision() const               { return ((_value >>  5) & 1) != 0; }
  bool underflow() const               { return ((_value >>  4) & 1) != 0; }
  bool overflow() const                { return ((_value >>  3) & 1) != 0; }
  bool zero_divide() const             { return ((_value >>  2) & 1) != 0; }
  bool denormalized() const            { return ((_value >>  1) & 1) != 0; }
  bool invalid() const                 { return ((_value >>  0) & 1) != 0; }

  void print() const {
    // condition codes
    char c[5];
    c[0] = (C3()) ? '3' : '-';
    c[1] = (C2()) ? '2' : '-';
    c[2] = (C1()) ? '1' : '-';
    c[3] = (C0()) ? '0' : '-';
    c[4] = '\x0';
    // flags
    char f[9];
    f[0] = (error_status()) ? 'E' : '-';
    f[1] = (stack_fault ()) ? 'S' : '-';
    f[2] = (precision   ()) ? 'P' : '-';
    f[3] = (underflow   ()) ? 'U' : '-';
    f[4] = (overflow    ()) ? 'O' : '-';
    f[5] = (zero_divide ()) ? 'Z' : '-';
    f[6] = (denormalized()) ? 'D' : '-';
    f[7] = (invalid     ()) ? 'I' : '-';
    f[8] = '\x0';
    // output
    printf("%04x  flags = %s, cc =  %s, top = %d", _value & 0xFFFF, f, c, top());
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  }

7928
};
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7930 7931 7932
class TagWord {
 public:
  int32_t _value;
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7934
  int tag_at(int i) const              { return (_value >> (i*2)) & 3; }
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7936 7937
  void print() const {
    printf("%04x", _value & 0xFFFF);
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  }
7939 7940 7941 7942 7943 7944 7945 7946 7947 7948 7949

};

class FPU_Register {
 public:
  int32_t _m0;
  int32_t _m1;
  int16_t _ex;

  bool is_indefinite() const           {
    return _ex == -1 && _m1 == (int32_t)0xC0000000 && _m0 == 0;
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  }

7952 7953 7954 7955 7956 7957 7958 7959 7960 7961 7962 7963 7964 7965 7966 7967 7968 7969 7970 7971 7972 7973 7974 7975 7976 7977 7978 7979 7980 7981 7982 7983 7984 7985 7986
  void print() const {
    char  sign = (_ex < 0) ? '-' : '+';
    const char* kind = (_ex == 0x7FFF || _ex == (int16_t)-1) ? "NaN" : "   ";
    printf("%c%04hx.%08x%08x  %s", sign, _ex, _m1, _m0, kind);
  };

};

class FPU_State {
 public:
  enum {
    register_size       = 10,
    number_of_registers =  8,
    register_mask       =  7
  };

  ControlWord  _control_word;
  StatusWord   _status_word;
  TagWord      _tag_word;
  int32_t      _error_offset;
  int32_t      _error_selector;
  int32_t      _data_offset;
  int32_t      _data_selector;
  int8_t       _register[register_size * number_of_registers];

  int tag_for_st(int i) const          { return _tag_word.tag_at((_status_word.top() + i) & register_mask); }
  FPU_Register* st(int i) const        { return (FPU_Register*)&_register[register_size * i]; }

  const char* tag_as_string(int tag) const {
    switch (tag) {
      case 0: return "valid";
      case 1: return "zero";
      case 2: return "special";
      case 3: return "empty";
    }
7987
    ShouldNotReachHere();
7988 7989 7990 7991 7992 7993 7994 7995 7996 7997 7998 7999 8000 8001 8002 8003 8004 8005
    return NULL;
  }

  void print() const {
    // print computation registers
    { int t = _status_word.top();
      for (int i = 0; i < number_of_registers; i++) {
        int j = (i - t) & register_mask;
        printf("%c r%d = ST%d = ", (j == 0 ? '*' : ' '), i, j);
        st(j)->print();
        printf(" %s\n", tag_as_string(_tag_word.tag_at(i)));
      }
    }
    printf("\n");
    // print control registers
    printf("ctrl = "); _control_word.print(); printf("\n");
    printf("stat = "); _status_word .print(); printf("\n");
    printf("tags = "); _tag_word    .print(); printf("\n");
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  }
8007 8008 8009 8010 8011 8012 8013 8014 8015 8016 8017 8018 8019 8020 8021 8022 8023 8024 8025 8026 8027 8028 8029 8030 8031 8032 8033 8034

};

class Flag_Register {
 public:
  int32_t _value;

  bool overflow() const                { return ((_value >> 11) & 1) != 0; }
  bool direction() const               { return ((_value >> 10) & 1) != 0; }
  bool sign() const                    { return ((_value >>  7) & 1) != 0; }
  bool zero() const                    { return ((_value >>  6) & 1) != 0; }
  bool auxiliary_carry() const         { return ((_value >>  4) & 1) != 0; }
  bool parity() const                  { return ((_value >>  2) & 1) != 0; }
  bool carry() const                   { return ((_value >>  0) & 1) != 0; }

  void print() const {
    // flags
    char f[8];
    f[0] = (overflow       ()) ? 'O' : '-';
    f[1] = (direction      ()) ? 'D' : '-';
    f[2] = (sign           ()) ? 'S' : '-';
    f[3] = (zero           ()) ? 'Z' : '-';
    f[4] = (auxiliary_carry()) ? 'A' : '-';
    f[5] = (parity         ()) ? 'P' : '-';
    f[6] = (carry          ()) ? 'C' : '-';
    f[7] = '\x0';
    // output
    printf("%08x  flags = %s", _value, f);
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  }
8036 8037 8038 8039 8040 8041 8042 8043 8044

};

class IU_Register {
 public:
  int32_t _value;

  void print() const {
    printf("%08x  %11d", _value, _value);
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  }

8047 8048 8049 8050 8051 8052 8053 8054 8055 8056 8057 8058 8059 8060 8061 8062 8063 8064 8065 8066 8067 8068 8069 8070 8071 8072 8073
};

class IU_State {
 public:
  Flag_Register _eflags;
  IU_Register   _rdi;
  IU_Register   _rsi;
  IU_Register   _rbp;
  IU_Register   _rsp;
  IU_Register   _rbx;
  IU_Register   _rdx;
  IU_Register   _rcx;
  IU_Register   _rax;

  void print() const {
    // computation registers
    printf("rax,  = "); _rax.print(); printf("\n");
    printf("rbx,  = "); _rbx.print(); printf("\n");
    printf("rcx  = "); _rcx.print(); printf("\n");
    printf("rdx  = "); _rdx.print(); printf("\n");
    printf("rdi  = "); _rdi.print(); printf("\n");
    printf("rsi  = "); _rsi.print(); printf("\n");
    printf("rbp,  = "); _rbp.print(); printf("\n");
    printf("rsp  = "); _rsp.print(); printf("\n");
    printf("\n");
    // control registers
    printf("flgs = "); _eflags.print(); printf("\n");
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  }
8075 8076 8077 8078 8079 8080 8081 8082 8083 8084 8085 8086 8087 8088
};


class CPU_State {
 public:
  FPU_State _fpu_state;
  IU_State  _iu_state;

  void print() const {
    printf("--------------------------------------------------\n");
    _iu_state .print();
    printf("\n");
    _fpu_state.print();
    printf("--------------------------------------------------\n");
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  }

8091
};
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8094 8095 8096
static void _print_CPU_state(CPU_State* state) {
  state->print();
};
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8099 8100 8101 8102 8103 8104
void MacroAssembler::print_CPU_state() {
  push_CPU_state();
  push(rsp);                // pass CPU state
  call(RuntimeAddress(CAST_FROM_FN_PTR(address, _print_CPU_state)));
  addptr(rsp, wordSize);       // discard argument
  pop_CPU_state();
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}


8108 8109 8110 8111 8112 8113 8114 8115 8116 8117 8118 8119 8120 8121 8122 8123 8124 8125 8126 8127 8128 8129 8130 8131 8132 8133 8134 8135 8136 8137 8138 8139 8140 8141 8142 8143 8144 8145 8146 8147 8148 8149 8150 8151 8152 8153 8154 8155 8156 8157 8158 8159 8160 8161 8162 8163 8164 8165 8166 8167 8168 8169 8170 8171 8172 8173 8174 8175 8176 8177 8178 8179 8180 8181 8182 8183 8184
static bool _verify_FPU(int stack_depth, char* s, CPU_State* state) {
  static int counter = 0;
  FPU_State* fs = &state->_fpu_state;
  counter++;
  // For leaf calls, only verify that the top few elements remain empty.
  // We only need 1 empty at the top for C2 code.
  if( stack_depth < 0 ) {
    if( fs->tag_for_st(7) != 3 ) {
      printf("FPR7 not empty\n");
      state->print();
      assert(false, "error");
      return false;
    }
    return true;                // All other stack states do not matter
  }

  assert((fs->_control_word._value & 0xffff) == StubRoutines::_fpu_cntrl_wrd_std,
         "bad FPU control word");

  // compute stack depth
  int i = 0;
  while (i < FPU_State::number_of_registers && fs->tag_for_st(i)  < 3) i++;
  int d = i;
  while (i < FPU_State::number_of_registers && fs->tag_for_st(i) == 3) i++;
  // verify findings
  if (i != FPU_State::number_of_registers) {
    // stack not contiguous
    printf("%s: stack not contiguous at ST%d\n", s, i);
    state->print();
    assert(false, "error");
    return false;
  }
  // check if computed stack depth corresponds to expected stack depth
  if (stack_depth < 0) {
    // expected stack depth is -stack_depth or less
    if (d > -stack_depth) {
      // too many elements on the stack
      printf("%s: <= %d stack elements expected but found %d\n", s, -stack_depth, d);
      state->print();
      assert(false, "error");
      return false;
    }
  } else {
    // expected stack depth is stack_depth
    if (d != stack_depth) {
      // wrong stack depth
      printf("%s: %d stack elements expected but found %d\n", s, stack_depth, d);
      state->print();
      assert(false, "error");
      return false;
    }
  }
  // everything is cool
  return true;
}


void MacroAssembler::verify_FPU(int stack_depth, const char* s) {
  if (!VerifyFPU) return;
  push_CPU_state();
  push(rsp);                // pass CPU state
  ExternalAddress msg((address) s);
  // pass message string s
  pushptr(msg.addr());
  push(stack_depth);        // pass stack depth
  call(RuntimeAddress(CAST_FROM_FN_PTR(address, _verify_FPU)));
  addptr(rsp, 3 * wordSize);   // discard arguments
  // check for error
  { Label L;
    testl(rax, rax);
    jcc(Assembler::notZero, L);
    int3();                  // break if error condition
    bind(L);
  }
  pop_CPU_state();
}

8185
void MacroAssembler::load_klass(Register dst, Register src) {
8186
#ifdef _LP64
8187 8188 8189
  if (UseCompressedOops) {
    movl(dst, Address(src, oopDesc::klass_offset_in_bytes()));
    decode_heap_oop_not_null(dst);
8190 8191 8192
  } else
#endif
    movptr(dst, Address(src, oopDesc::klass_offset_in_bytes()));
8193 8194
}

8195
void MacroAssembler::load_prototype_header(Register dst, Register src) {
8196
#ifdef _LP64
8197
  if (UseCompressedOops) {
8198
    assert (Universe::heap() != NULL, "java heap should be initialized");
8199
    movl(dst, Address(src, oopDesc::klass_offset_in_bytes()));
8200
    if (Universe::narrow_oop_shift() != 0) {
8201 8202 8203 8204 8205 8206 8207 8208
      assert(LogMinObjAlignmentInBytes == Universe::narrow_oop_shift(), "decode alg wrong");
      if (LogMinObjAlignmentInBytes == Address::times_8) {
        movq(dst, Address(r12_heapbase, dst, Address::times_8, Klass::prototype_header_offset_in_bytes() + klassOopDesc::klass_part_offset_in_bytes()));
      } else {
        // OK to use shift since we don't need to preserve flags.
        shlq(dst, LogMinObjAlignmentInBytes);
        movq(dst, Address(r12_heapbase, dst, Address::times_1, Klass::prototype_header_offset_in_bytes() + klassOopDesc::klass_part_offset_in_bytes()));
      }
8209 8210 8211
    } else {
      movq(dst, Address(dst, Klass::prototype_header_offset_in_bytes() + klassOopDesc::klass_part_offset_in_bytes()));
    }
8212 8213
  } else
#endif
8214 8215 8216 8217
  {
    movptr(dst, Address(src, oopDesc::klass_offset_in_bytes()));
    movptr(dst, Address(dst, Klass::prototype_header_offset_in_bytes() + klassOopDesc::klass_part_offset_in_bytes()));
  }
8218 8219
}

8220
void MacroAssembler::store_klass(Register dst, Register src) {
8221
#ifdef _LP64
8222 8223
  if (UseCompressedOops) {
    encode_heap_oop_not_null(src);
8224
    movl(Address(dst, oopDesc::klass_offset_in_bytes()), src);
8225 8226 8227
  } else
#endif
    movptr(Address(dst, oopDesc::klass_offset_in_bytes()), src);
8228 8229
}

8230
#ifdef _LP64
8231 8232 8233 8234
void MacroAssembler::store_klass_gap(Register dst, Register src) {
  if (UseCompressedOops) {
    // Store to klass gap in destination
    movl(Address(dst, oopDesc::klass_gap_offset_in_bytes()), src);
8235 8236 8237 8238 8239 8240 8241 8242 8243 8244 8245 8246 8247 8248 8249 8250 8251 8252 8253 8254 8255 8256
  }
}

void MacroAssembler::load_heap_oop(Register dst, Address src) {
  if (UseCompressedOops) {
    movl(dst, src);
    decode_heap_oop(dst);
  } else {
    movq(dst, src);
  }
}

void MacroAssembler::store_heap_oop(Address dst, Register src) {
  if (UseCompressedOops) {
    assert(!dst.uses(src), "not enough registers");
    encode_heap_oop(src);
    movl(dst, src);
  } else {
    movq(dst, src);
  }
}

8257 8258 8259 8260 8261 8262 8263 8264 8265
// Used for storing NULLs.
void MacroAssembler::store_heap_oop_null(Address dst) {
  if (UseCompressedOops) {
    movl(dst, (int32_t)NULL_WORD);
  } else {
    movslq(dst, (int32_t)NULL_WORD);
  }
}

8266 8267
#ifdef ASSERT
void MacroAssembler::verify_heapbase(const char* msg) {
8268
  assert (UseCompressedOops, "should be compressed");
8269
  assert (Universe::heap() != NULL, "java heap should be initialized");
8270 8271
  if (CheckCompressedOops) {
    Label ok;
8272
    push(rscratch1); // cmpptr trashes rscratch1
8273
    cmpptr(r12_heapbase, ExternalAddress((address)Universe::narrow_oop_base_addr()));
8274
    jcc(Assembler::equal, ok);
8275
    stop(msg);
8276
    bind(ok);
8277
    pop(rscratch1);
8278
  }
8279 8280 8281 8282 8283 8284 8285
}
#endif

// Algorithm must match oop.inline.hpp encode_heap_oop.
void MacroAssembler::encode_heap_oop(Register r) {
#ifdef ASSERT
  verify_heapbase("MacroAssembler::encode_heap_oop: heap base corrupted?");
8286
#endif
8287
  verify_oop(r, "broken oop in encode_heap_oop");
8288 8289 8290 8291 8292 8293 8294
  if (Universe::narrow_oop_base() == NULL) {
    if (Universe::narrow_oop_shift() != 0) {
      assert (LogMinObjAlignmentInBytes == Universe::narrow_oop_shift(), "decode alg wrong");
      shrq(r, LogMinObjAlignmentInBytes);
    }
    return;
  }
8295 8296 8297 8298 8299 8300 8301 8302
  testq(r, r);
  cmovq(Assembler::equal, r, r12_heapbase);
  subq(r, r12_heapbase);
  shrq(r, LogMinObjAlignmentInBytes);
}

void MacroAssembler::encode_heap_oop_not_null(Register r) {
#ifdef ASSERT
8303
  verify_heapbase("MacroAssembler::encode_heap_oop_not_null: heap base corrupted?");
8304 8305 8306 8307 8308 8309 8310
  if (CheckCompressedOops) {
    Label ok;
    testq(r, r);
    jcc(Assembler::notEqual, ok);
    stop("null oop passed to encode_heap_oop_not_null");
    bind(ok);
  }
8311
#endif
8312
  verify_oop(r, "broken oop in encode_heap_oop_not_null");
8313 8314 8315 8316 8317 8318 8319
  if (Universe::narrow_oop_base() != NULL) {
    subq(r, r12_heapbase);
  }
  if (Universe::narrow_oop_shift() != 0) {
    assert (LogMinObjAlignmentInBytes == Universe::narrow_oop_shift(), "decode alg wrong");
    shrq(r, LogMinObjAlignmentInBytes);
  }
8320 8321
}

8322 8323
void MacroAssembler::encode_heap_oop_not_null(Register dst, Register src) {
#ifdef ASSERT
8324
  verify_heapbase("MacroAssembler::encode_heap_oop_not_null2: heap base corrupted?");
8325 8326 8327 8328 8329 8330 8331
  if (CheckCompressedOops) {
    Label ok;
    testq(src, src);
    jcc(Assembler::notEqual, ok);
    stop("null oop passed to encode_heap_oop_not_null2");
    bind(ok);
  }
8332 8333 8334 8335 8336
#endif
  verify_oop(src, "broken oop in encode_heap_oop_not_null2");
  if (dst != src) {
    movq(dst, src);
  }
8337 8338 8339 8340 8341 8342 8343
  if (Universe::narrow_oop_base() != NULL) {
    subq(dst, r12_heapbase);
  }
  if (Universe::narrow_oop_shift() != 0) {
    assert (LogMinObjAlignmentInBytes == Universe::narrow_oop_shift(), "decode alg wrong");
    shrq(dst, LogMinObjAlignmentInBytes);
  }
8344 8345
}

8346
void  MacroAssembler::decode_heap_oop(Register r) {
8347 8348 8349
#ifdef ASSERT
  verify_heapbase("MacroAssembler::decode_heap_oop: heap base corrupted?");
#endif
8350 8351 8352 8353 8354
  if (Universe::narrow_oop_base() == NULL) {
    if (Universe::narrow_oop_shift() != 0) {
      assert (LogMinObjAlignmentInBytes == Universe::narrow_oop_shift(), "decode alg wrong");
      shlq(r, LogMinObjAlignmentInBytes);
    }
8355 8356 8357 8358 8359 8360
  } else {
    Label done;
    shlq(r, LogMinObjAlignmentInBytes);
    jccb(Assembler::equal, done);
    addq(r, r12_heapbase);
    bind(done);
8361
  }
8362
  verify_oop(r, "broken oop in decode_heap_oop");
8363 8364 8365
}

void  MacroAssembler::decode_heap_oop_not_null(Register r) {
8366
  // Note: it will change flags
8367
  assert (UseCompressedOops, "should only be used for compressed headers");
8368
  assert (Universe::heap() != NULL, "java heap should be initialized");
8369 8370
  // Cannot assert, unverified entry point counts instructions (see .ad file)
  // vtableStubs also counts instructions in pd_code_size_limit.
8371
  // Also do not verify_oop as this is called by verify_oop.
8372
  if (Universe::narrow_oop_shift() != 0) {
8373 8374 8375 8376 8377
    assert(LogMinObjAlignmentInBytes == Universe::narrow_oop_shift(), "decode alg wrong");
    shlq(r, LogMinObjAlignmentInBytes);
    if (Universe::narrow_oop_base() != NULL) {
      addq(r, r12_heapbase);
    }
8378 8379
  } else {
    assert (Universe::narrow_oop_base() == NULL, "sanity");
8380
  }
8381 8382
}

8383
void  MacroAssembler::decode_heap_oop_not_null(Register dst, Register src) {
8384
  // Note: it will change flags
8385
  assert (UseCompressedOops, "should only be used for compressed headers");
8386
  assert (Universe::heap() != NULL, "java heap should be initialized");
8387 8388
  // Cannot assert, unverified entry point counts instructions (see .ad file)
  // vtableStubs also counts instructions in pd_code_size_limit.
8389
  // Also do not verify_oop as this is called by verify_oop.
8390
  if (Universe::narrow_oop_shift() != 0) {
8391 8392 8393 8394 8395 8396 8397 8398 8399 8400 8401 8402
    assert(LogMinObjAlignmentInBytes == Universe::narrow_oop_shift(), "decode alg wrong");
    if (LogMinObjAlignmentInBytes == Address::times_8) {
      leaq(dst, Address(r12_heapbase, src, Address::times_8, 0));
    } else {
      if (dst != src) {
        movq(dst, src);
      }
      shlq(dst, LogMinObjAlignmentInBytes);
      if (Universe::narrow_oop_base() != NULL) {
        addq(dst, r12_heapbase);
      }
    }
8403
  } else {
8404
    assert (Universe::narrow_oop_base() == NULL, "sanity");
8405 8406 8407
    if (dst != src) {
      movq(dst, src);
    }
8408
  }
8409 8410
}

8411
void  MacroAssembler::set_narrow_oop(Register dst, jobject obj) {
8412 8413 8414 8415 8416 8417 8418 8419 8420 8421 8422 8423 8424 8425 8426 8427 8428 8429 8430 8431 8432 8433 8434 8435 8436 8437 8438 8439 8440 8441
  assert (UseCompressedOops, "should only be used for compressed headers");
  assert (Universe::heap() != NULL, "java heap should be initialized");
  assert (oop_recorder() != NULL, "this assembler needs an OopRecorder");
  int oop_index = oop_recorder()->find_index(obj);
  RelocationHolder rspec = oop_Relocation::spec(oop_index);
  mov_narrow_oop(dst, oop_index, rspec);
}

void  MacroAssembler::set_narrow_oop(Address dst, jobject obj) {
  assert (UseCompressedOops, "should only be used for compressed headers");
  assert (Universe::heap() != NULL, "java heap should be initialized");
  assert (oop_recorder() != NULL, "this assembler needs an OopRecorder");
  int oop_index = oop_recorder()->find_index(obj);
  RelocationHolder rspec = oop_Relocation::spec(oop_index);
  mov_narrow_oop(dst, oop_index, rspec);
}

void  MacroAssembler::cmp_narrow_oop(Register dst, jobject obj) {
  assert (UseCompressedOops, "should only be used for compressed headers");
  assert (Universe::heap() != NULL, "java heap should be initialized");
  assert (oop_recorder() != NULL, "this assembler needs an OopRecorder");
  int oop_index = oop_recorder()->find_index(obj);
  RelocationHolder rspec = oop_Relocation::spec(oop_index);
  Assembler::cmp_narrow_oop(dst, oop_index, rspec);
}

void  MacroAssembler::cmp_narrow_oop(Address dst, jobject obj) {
  assert (UseCompressedOops, "should only be used for compressed headers");
  assert (Universe::heap() != NULL, "java heap should be initialized");
  assert (oop_recorder() != NULL, "this assembler needs an OopRecorder");
8442 8443
  int oop_index = oop_recorder()->find_index(obj);
  RelocationHolder rspec = oop_Relocation::spec(oop_index);
8444
  Assembler::cmp_narrow_oop(dst, oop_index, rspec);
8445 8446
}

8447 8448
void MacroAssembler::reinit_heapbase() {
  if (UseCompressedOops) {
8449
    movptr(r12_heapbase, ExternalAddress((address)Universe::narrow_oop_base_addr()));
8450 8451 8452
  }
}
#endif // _LP64
8453

8454 8455 8456 8457 8458 8459 8460 8461 8462 8463 8464 8465 8466 8467 8468 8469 8470 8471 8472 8473 8474 8475 8476 8477 8478 8479 8480 8481
// IndexOf substring.
void MacroAssembler::string_indexof(Register str1, Register str2,
                                    Register cnt1, Register cnt2, Register result,
                                    XMMRegister vec, Register tmp) {
  assert(UseSSE42Intrinsics, "SSE4.2 is required");

  Label RELOAD_SUBSTR, PREP_FOR_SCAN, SCAN_TO_SUBSTR,
        SCAN_SUBSTR, RET_NOT_FOUND, CLEANUP;

  push(str1); // string addr
  push(str2); // substr addr
  push(cnt2); // substr count
  jmpb(PREP_FOR_SCAN);

  // Substr count saved at sp
  // Substr saved at sp+1*wordSize
  // String saved at sp+2*wordSize

  // Reload substr for rescan
  bind(RELOAD_SUBSTR);
  movl(cnt2, Address(rsp, 0));
  movptr(str2, Address(rsp, wordSize));
  // We came here after the beginninig of the substring was
  // matched but the rest of it was not so we need to search
  // again. Start from the next element after the previous match.
  subptr(str1, result); // Restore counter
  shrl(str1, 1);
  addl(cnt1, str1);
8482
  decrementl(cnt1);
8483 8484 8485 8486 8487 8488 8489 8490 8491 8492 8493 8494 8495 8496 8497 8498 8499 8500 8501 8502 8503 8504 8505 8506 8507 8508 8509 8510 8511 8512 8513 8514 8515 8516 8517 8518 8519 8520 8521 8522 8523 8524 8525 8526 8527 8528 8529 8530 8531 8532 8533 8534 8535 8536 8537 8538 8539 8540 8541 8542 8543 8544 8545 8546 8547 8548 8549 8550 8551 8552 8553 8554 8555 8556 8557 8558 8559 8560 8561 8562 8563 8564 8565 8566 8567 8568 8569 8570 8571 8572 8573 8574 8575 8576 8577 8578 8579 8580 8581 8582 8583 8584 8585 8586 8587 8588 8589 8590 8591 8592 8593 8594 8595 8596 8597 8598 8599 8600 8601 8602 8603 8604 8605 8606 8607 8608 8609 8610 8611 8612 8613 8614 8615 8616 8617 8618 8619 8620 8621 8622 8623 8624 8625 8626 8627 8628 8629 8630 8631 8632 8633 8634 8635 8636 8637 8638 8639 8640 8641 8642 8643 8644 8645 8646 8647 8648 8649 8650 8651 8652 8653 8654 8655 8656 8657 8658 8659 8660 8661 8662 8663 8664 8665 8666 8667 8668 8669 8670 8671 8672 8673 8674 8675 8676 8677 8678 8679 8680 8681 8682 8683 8684
  lea(str1, Address(result, 2)); // Reload string

  // Load substr
  bind(PREP_FOR_SCAN);
  movdqu(vec, Address(str2, 0));
  addl(cnt1, 8);  // prime the loop
  subptr(str1, 16);

  // Scan string for substr in 16-byte vectors
  bind(SCAN_TO_SUBSTR);
  subl(cnt1, 8);
  addptr(str1, 16);

  // pcmpestri
  //   inputs:
  //     xmm - substring
  //     rax - substring length (elements count)
  //     mem - scaned string
  //     rdx - string length (elements count)
  //     0xd - mode: 1100 (substring search) + 01 (unsigned shorts)
  //   outputs:
  //     rcx - matched index in string
  assert(cnt1 == rdx && cnt2 == rax && tmp == rcx, "pcmpestri");

  pcmpestri(vec, Address(str1, 0), 0x0d);
  jcc(Assembler::above, SCAN_TO_SUBSTR);      // CF == 0 && ZF == 0
  jccb(Assembler::aboveEqual, RET_NOT_FOUND); // CF == 0

  // Fallthrough: found a potential substr

  // Make sure string is still long enough
  subl(cnt1, tmp);
  cmpl(cnt1, cnt2);
  jccb(Assembler::negative, RET_NOT_FOUND);
  // Compute start addr of substr
  lea(str1, Address(str1, tmp, Address::times_2));
  movptr(result, str1); // save

  // Compare potential substr
  addl(cnt1, 8);     // prime the loop
  addl(cnt2, 8);
  subptr(str1, 16);
  subptr(str2, 16);

  // Scan 16-byte vectors of string and substr
  bind(SCAN_SUBSTR);
  subl(cnt1, 8);
  subl(cnt2, 8);
  addptr(str1, 16);
  addptr(str2, 16);
  movdqu(vec, Address(str2, 0));
  pcmpestri(vec, Address(str1, 0), 0x0d);
  jcc(Assembler::noOverflow, RELOAD_SUBSTR); // OF == 0
  jcc(Assembler::positive, SCAN_SUBSTR);     // SF == 0

  // Compute substr offset
  subptr(result, Address(rsp, 2*wordSize));
  shrl(result, 1); // index
  jmpb(CLEANUP);

  bind(RET_NOT_FOUND);
  movl(result, -1);

  bind(CLEANUP);
  addptr(rsp, 3*wordSize);
}

// Compare strings.
void MacroAssembler::string_compare(Register str1, Register str2,
                                    Register cnt1, Register cnt2, Register result,
                                    XMMRegister vec1, XMMRegister vec2) {
  Label LENGTH_DIFF_LABEL, POP_LABEL, DONE_LABEL, WHILE_HEAD_LABEL;

  // Compute the minimum of the string lengths and the
  // difference of the string lengths (stack).
  // Do the conditional move stuff
  movl(result, cnt1);
  subl(cnt1, cnt2);
  push(cnt1);
  if (VM_Version::supports_cmov()) {
    cmovl(Assembler::lessEqual, cnt2, result);
  } else {
    Label GT_LABEL;
    jccb(Assembler::greater, GT_LABEL);
    movl(cnt2, result);
    bind(GT_LABEL);
  }

  // Is the minimum length zero?
  testl(cnt2, cnt2);
  jcc(Assembler::zero, LENGTH_DIFF_LABEL);

  // Load first characters
  load_unsigned_short(result, Address(str1, 0));
  load_unsigned_short(cnt1, Address(str2, 0));

  // Compare first characters
  subl(result, cnt1);
  jcc(Assembler::notZero,  POP_LABEL);
  decrementl(cnt2);
  jcc(Assembler::zero, LENGTH_DIFF_LABEL);

  {
    // Check after comparing first character to see if strings are equivalent
    Label LSkip2;
    // Check if the strings start at same location
    cmpptr(str1, str2);
    jccb(Assembler::notEqual, LSkip2);

    // Check if the length difference is zero (from stack)
    cmpl(Address(rsp, 0), 0x0);
    jcc(Assembler::equal,  LENGTH_DIFF_LABEL);

    // Strings might not be equivalent
    bind(LSkip2);
  }

  // Advance to next character
  addptr(str1, 2);
  addptr(str2, 2);

  if (UseSSE42Intrinsics) {
    // With SSE4.2, use double quad vector compare
    Label COMPARE_VECTORS, VECTOR_NOT_EQUAL, COMPARE_TAIL;
    // Setup to compare 16-byte vectors
    movl(cnt1, cnt2);
    andl(cnt2, 0xfffffff8); // cnt2 holds the vector count
    andl(cnt1, 0x00000007); // cnt1 holds the tail count
    testl(cnt2, cnt2);
    jccb(Assembler::zero, COMPARE_TAIL);

    lea(str2, Address(str2, cnt2, Address::times_2));
    lea(str1, Address(str1, cnt2, Address::times_2));
    negptr(cnt2);

    bind(COMPARE_VECTORS);
    movdqu(vec1, Address(str1, cnt2, Address::times_2));
    movdqu(vec2, Address(str2, cnt2, Address::times_2));
    pxor(vec1, vec2);
    ptest(vec1, vec1);
    jccb(Assembler::notZero, VECTOR_NOT_EQUAL);
    addptr(cnt2, 8);
    jcc(Assembler::notZero, COMPARE_VECTORS);
    jmpb(COMPARE_TAIL);

    // Mismatched characters in the vectors
    bind(VECTOR_NOT_EQUAL);
    lea(str1, Address(str1, cnt2, Address::times_2));
    lea(str2, Address(str2, cnt2, Address::times_2));
    movl(cnt1, 8);

    // Compare tail (< 8 chars), or rescan last vectors to
    // find 1st mismatched characters
    bind(COMPARE_TAIL);
    testl(cnt1, cnt1);
    jccb(Assembler::zero, LENGTH_DIFF_LABEL);
    movl(cnt2, cnt1);
    // Fallthru to tail compare
  }

  // Shift str2 and str1 to the end of the arrays, negate min
  lea(str1, Address(str1, cnt2, Address::times_2, 0));
  lea(str2, Address(str2, cnt2, Address::times_2, 0));
  negptr(cnt2);

    // Compare the rest of the characters
  bind(WHILE_HEAD_LABEL);
  load_unsigned_short(result, Address(str1, cnt2, Address::times_2, 0));
  load_unsigned_short(cnt1, Address(str2, cnt2, Address::times_2, 0));
  subl(result, cnt1);
  jccb(Assembler::notZero, POP_LABEL);
  increment(cnt2);
  jcc(Assembler::notZero, WHILE_HEAD_LABEL);

  // Strings are equal up to min length.  Return the length difference.
  bind(LENGTH_DIFF_LABEL);
  pop(result);
  jmpb(DONE_LABEL);

  // Discard the stored length difference
  bind(POP_LABEL);
  addptr(rsp, wordSize);

  // That's it
  bind(DONE_LABEL);
}

// Compare char[] arrays aligned to 4 bytes or substrings.
void MacroAssembler::char_arrays_equals(bool is_array_equ, Register ary1, Register ary2,
                                        Register limit, Register result, Register chr,
                                        XMMRegister vec1, XMMRegister vec2) {
  Label TRUE_LABEL, FALSE_LABEL, DONE, COMPARE_VECTORS, COMPARE_CHAR;

  int length_offset  = arrayOopDesc::length_offset_in_bytes();
  int base_offset    = arrayOopDesc::base_offset_in_bytes(T_CHAR);

  // Check the input args
  cmpptr(ary1, ary2);
  jcc(Assembler::equal, TRUE_LABEL);

  if (is_array_equ) {
    // Need additional checks for arrays_equals.
8685 8686 8687 8688
    testptr(ary1, ary1);
    jcc(Assembler::zero, FALSE_LABEL);
    testptr(ary2, ary2);
    jcc(Assembler::zero, FALSE_LABEL);
8689 8690 8691 8692 8693 8694 8695 8696 8697 8698 8699 8700 8701 8702 8703 8704 8705 8706 8707 8708 8709 8710 8711 8712 8713 8714 8715 8716 8717 8718 8719 8720 8721 8722 8723 8724 8725 8726 8727 8728 8729 8730 8731 8732 8733 8734 8735 8736 8737 8738 8739 8740 8741 8742 8743 8744 8745 8746 8747 8748 8749 8750 8751 8752 8753 8754 8755 8756 8757 8758 8759 8760 8761 8762 8763 8764 8765 8766 8767 8768 8769

    // Check the lengths
    movl(limit, Address(ary1, length_offset));
    cmpl(limit, Address(ary2, length_offset));
    jcc(Assembler::notEqual, FALSE_LABEL);
  }

  // count == 0
  testl(limit, limit);
  jcc(Assembler::zero, TRUE_LABEL);

  if (is_array_equ) {
    // Load array address
    lea(ary1, Address(ary1, base_offset));
    lea(ary2, Address(ary2, base_offset));
  }

  shll(limit, 1);      // byte count != 0
  movl(result, limit); // copy

  if (UseSSE42Intrinsics) {
    // With SSE4.2, use double quad vector compare
    Label COMPARE_WIDE_VECTORS, COMPARE_TAIL;
    // Compare 16-byte vectors
    andl(result, 0x0000000e);  //   tail count (in bytes)
    andl(limit, 0xfffffff0);   // vector count (in bytes)
    jccb(Assembler::zero, COMPARE_TAIL);

    lea(ary1, Address(ary1, limit, Address::times_1));
    lea(ary2, Address(ary2, limit, Address::times_1));
    negptr(limit);

    bind(COMPARE_WIDE_VECTORS);
    movdqu(vec1, Address(ary1, limit, Address::times_1));
    movdqu(vec2, Address(ary2, limit, Address::times_1));
    pxor(vec1, vec2);
    ptest(vec1, vec1);
    jccb(Assembler::notZero, FALSE_LABEL);
    addptr(limit, 16);
    jcc(Assembler::notZero, COMPARE_WIDE_VECTORS);

    bind(COMPARE_TAIL); // limit is zero
    movl(limit, result);
    // Fallthru to tail compare
  }

  // Compare 4-byte vectors
  andl(limit, 0xfffffffc); // vector count (in bytes)
  jccb(Assembler::zero, COMPARE_CHAR);

  lea(ary1, Address(ary1, limit, Address::times_1));
  lea(ary2, Address(ary2, limit, Address::times_1));
  negptr(limit);

  bind(COMPARE_VECTORS);
  movl(chr, Address(ary1, limit, Address::times_1));
  cmpl(chr, Address(ary2, limit, Address::times_1));
  jccb(Assembler::notEqual, FALSE_LABEL);
  addptr(limit, 4);
  jcc(Assembler::notZero, COMPARE_VECTORS);

  // Compare trailing char (final 2 bytes), if any
  bind(COMPARE_CHAR);
  testl(result, 0x2);   // tail  char
  jccb(Assembler::zero, TRUE_LABEL);
  load_unsigned_short(chr, Address(ary1, 0));
  load_unsigned_short(limit, Address(ary2, 0));
  cmpl(chr, limit);
  jccb(Assembler::notEqual, FALSE_LABEL);

  bind(TRUE_LABEL);
  movl(result, 1);   // return true
  jmpb(DONE);

  bind(FALSE_LABEL);
  xorl(result, result); // return false

  // That's it
  bind(DONE);
}

N
never 已提交
8770 8771 8772 8773 8774 8775 8776 8777 8778 8779 8780 8781 8782 8783 8784 8785 8786 8787 8788 8789 8790 8791 8792 8793 8794 8795 8796 8797 8798 8799 8800 8801 8802 8803 8804 8805 8806 8807 8808 8809 8810 8811 8812 8813 8814 8815 8816 8817 8818 8819 8820 8821 8822 8823 8824 8825 8826 8827 8828 8829 8830 8831 8832 8833 8834 8835 8836 8837 8838 8839 8840 8841 8842 8843 8844 8845 8846 8847 8848 8849 8850 8851 8852 8853 8854 8855 8856 8857 8858 8859 8860 8861 8862 8863 8864 8865 8866 8867 8868 8869 8870 8871 8872 8873 8874 8875 8876 8877 8878 8879 8880 8881 8882 8883 8884 8885 8886 8887 8888 8889 8890 8891 8892 8893 8894 8895 8896 8897 8898 8899 8900 8901 8902 8903 8904 8905 8906 8907 8908 8909 8910 8911 8912 8913 8914 8915 8916 8917 8918 8919 8920 8921 8922 8923 8924 8925 8926 8927 8928 8929 8930 8931 8932 8933 8934 8935 8936 8937 8938 8939 8940 8941 8942 8943 8944 8945 8946 8947 8948 8949
#ifdef PRODUCT
#define BLOCK_COMMENT(str) /* nothing */
#else
#define BLOCK_COMMENT(str) block_comment(str)
#endif

#define BIND(label) bind(label); BLOCK_COMMENT(#label ":")
void MacroAssembler::generate_fill(BasicType t, bool aligned,
                                   Register to, Register value, Register count,
                                   Register rtmp, XMMRegister xtmp) {
  assert_different_registers(to, value, count, rtmp);
  Label L_exit, L_skip_align1, L_skip_align2, L_fill_byte;
  Label L_fill_2_bytes, L_fill_4_bytes;

  int shift = -1;
  switch (t) {
    case T_BYTE:
      shift = 2;
      break;
    case T_SHORT:
      shift = 1;
      break;
    case T_INT:
      shift = 0;
      break;
    default: ShouldNotReachHere();
  }

  if (t == T_BYTE) {
    andl(value, 0xff);
    movl(rtmp, value);
    shll(rtmp, 8);
    orl(value, rtmp);
  }
  if (t == T_SHORT) {
    andl(value, 0xffff);
  }
  if (t == T_BYTE || t == T_SHORT) {
    movl(rtmp, value);
    shll(rtmp, 16);
    orl(value, rtmp);
  }

  cmpl(count, 2<<shift); // Short arrays (< 8 bytes) fill by element
  jcc(Assembler::below, L_fill_4_bytes); // use unsigned cmp
  if (!UseUnalignedLoadStores && !aligned && (t == T_BYTE || t == T_SHORT)) {
    // align source address at 4 bytes address boundary
    if (t == T_BYTE) {
      // One byte misalignment happens only for byte arrays
      testptr(to, 1);
      jccb(Assembler::zero, L_skip_align1);
      movb(Address(to, 0), value);
      increment(to);
      decrement(count);
      BIND(L_skip_align1);
    }
    // Two bytes misalignment happens only for byte and short (char) arrays
    testptr(to, 2);
    jccb(Assembler::zero, L_skip_align2);
    movw(Address(to, 0), value);
    addptr(to, 2);
    subl(count, 1<<(shift-1));
    BIND(L_skip_align2);
  }
  if (UseSSE < 2) {
    Label L_fill_32_bytes_loop, L_check_fill_8_bytes, L_fill_8_bytes_loop, L_fill_8_bytes;
    // Fill 32-byte chunks
    subl(count, 8 << shift);
    jcc(Assembler::less, L_check_fill_8_bytes);
    align(16);

    BIND(L_fill_32_bytes_loop);

    for (int i = 0; i < 32; i += 4) {
      movl(Address(to, i), value);
    }

    addptr(to, 32);
    subl(count, 8 << shift);
    jcc(Assembler::greaterEqual, L_fill_32_bytes_loop);
    BIND(L_check_fill_8_bytes);
    addl(count, 8 << shift);
    jccb(Assembler::zero, L_exit);
    jmpb(L_fill_8_bytes);

    //
    // length is too short, just fill qwords
    //
    BIND(L_fill_8_bytes_loop);
    movl(Address(to, 0), value);
    movl(Address(to, 4), value);
    addptr(to, 8);
    BIND(L_fill_8_bytes);
    subl(count, 1 << (shift + 1));
    jcc(Assembler::greaterEqual, L_fill_8_bytes_loop);
    // fall through to fill 4 bytes
  } else {
    Label L_fill_32_bytes;
    if (!UseUnalignedLoadStores) {
      // align to 8 bytes, we know we are 4 byte aligned to start
      testptr(to, 4);
      jccb(Assembler::zero, L_fill_32_bytes);
      movl(Address(to, 0), value);
      addptr(to, 4);
      subl(count, 1<<shift);
    }
    BIND(L_fill_32_bytes);
    {
      assert( UseSSE >= 2, "supported cpu only" );
      Label L_fill_32_bytes_loop, L_check_fill_8_bytes, L_fill_8_bytes_loop, L_fill_8_bytes;
      // Fill 32-byte chunks
      movdl(xtmp, value);
      pshufd(xtmp, xtmp, 0);

      subl(count, 8 << shift);
      jcc(Assembler::less, L_check_fill_8_bytes);
      align(16);

      BIND(L_fill_32_bytes_loop);

      if (UseUnalignedLoadStores) {
        movdqu(Address(to, 0), xtmp);
        movdqu(Address(to, 16), xtmp);
      } else {
        movq(Address(to, 0), xtmp);
        movq(Address(to, 8), xtmp);
        movq(Address(to, 16), xtmp);
        movq(Address(to, 24), xtmp);
      }

      addptr(to, 32);
      subl(count, 8 << shift);
      jcc(Assembler::greaterEqual, L_fill_32_bytes_loop);
      BIND(L_check_fill_8_bytes);
      addl(count, 8 << shift);
      jccb(Assembler::zero, L_exit);
      jmpb(L_fill_8_bytes);

      //
      // length is too short, just fill qwords
      //
      BIND(L_fill_8_bytes_loop);
      movq(Address(to, 0), xtmp);
      addptr(to, 8);
      BIND(L_fill_8_bytes);
      subl(count, 1 << (shift + 1));
      jcc(Assembler::greaterEqual, L_fill_8_bytes_loop);
    }
  }
  // fill trailing 4 bytes
  BIND(L_fill_4_bytes);
  testl(count, 1<<shift);
  jccb(Assembler::zero, L_fill_2_bytes);
  movl(Address(to, 0), value);
  if (t == T_BYTE || t == T_SHORT) {
    addptr(to, 4);
    BIND(L_fill_2_bytes);
    // fill trailing 2 bytes
    testl(count, 1<<(shift-1));
    jccb(Assembler::zero, L_fill_byte);
    movw(Address(to, 0), value);
    if (t == T_BYTE) {
      addptr(to, 2);
      BIND(L_fill_byte);
      // fill trailing byte
      testl(count, 1);
      jccb(Assembler::zero, L_exit);
      movb(Address(to, 0), value);
    } else {
      BIND(L_fill_byte);
    }
  } else {
    BIND(L_fill_2_bytes);
  }
  BIND(L_exit);
}
#undef BIND
#undef BLOCK_COMMENT


D
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Assembler::Condition MacroAssembler::negate_condition(Assembler::Condition cond) {
  switch (cond) {
    // Note some conditions are synonyms for others
    case Assembler::zero:         return Assembler::notZero;
    case Assembler::notZero:      return Assembler::zero;
    case Assembler::less:         return Assembler::greaterEqual;
    case Assembler::lessEqual:    return Assembler::greater;
    case Assembler::greater:      return Assembler::lessEqual;
    case Assembler::greaterEqual: return Assembler::less;
    case Assembler::below:        return Assembler::aboveEqual;
    case Assembler::belowEqual:   return Assembler::above;
    case Assembler::above:        return Assembler::belowEqual;
    case Assembler::aboveEqual:   return Assembler::below;
    case Assembler::overflow:     return Assembler::noOverflow;
    case Assembler::noOverflow:   return Assembler::overflow;
    case Assembler::negative:     return Assembler::positive;
    case Assembler::positive:     return Assembler::negative;
    case Assembler::parity:       return Assembler::noParity;
    case Assembler::noParity:     return Assembler::parity;
  }
  ShouldNotReachHere(); return Assembler::overflow;
}

SkipIfEqual::SkipIfEqual(
    MacroAssembler* masm, const bool* flag_addr, bool value) {
  _masm = masm;
  _masm->cmp8(ExternalAddress((address)flag_addr), value);
  _masm->jcc(Assembler::equal, _label);
}

SkipIfEqual::~SkipIfEqual() {
  _masm->bind(_label);
}