cp1emu.c 53.6 KB
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/*
 * cp1emu.c: a MIPS coprocessor 1 (fpu) instruction emulator
 *
 * MIPS floating point support
 * Copyright (C) 1994-2000 Algorithmics Ltd.
 *
 * Kevin D. Kissell, kevink@mips.com and Carsten Langgaard, carstenl@mips.com
 * Copyright (C) 2000  MIPS Technologies, Inc.
 *
 *  This program is free software; you can distribute it and/or modify it
 *  under the terms of the GNU General Public License (Version 2) as
 *  published by the Free Software Foundation.
 *
 *  This program is distributed in the hope 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
 *  for more details.
 *
 *  You should have received a copy of the GNU General Public License along
 *  with this program; if not, write to the Free Software Foundation, Inc.,
 *  59 Temple Place - Suite 330, Boston MA 02111-1307, USA.
 *
 * A complete emulator for MIPS coprocessor 1 instructions.  This is
 * required for #float(switch) or #float(trap), where it catches all
 * COP1 instructions via the "CoProcessor Unusable" exception.
 *
 * More surprisingly it is also required for #float(ieee), to help out
 * the hardware fpu at the boundaries of the IEEE-754 representation
 * (denormalised values, infinities, underflow, etc).  It is made
 * quite nasty because emulation of some non-COP1 instructions is
 * required, e.g. in branch delay slots.
 *
 * Note if you know that you won't have an fpu, then you'll get much
 * better performance by compiling with -msoft-float!
 */
#include <linux/sched.h>
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#include <linux/debugfs.h>
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#include <linux/kconfig.h>
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#include <linux/percpu-defs.h>
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#include <linux/perf_event.h>
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#include <asm/branch.h>
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#include <asm/inst.h>
#include <asm/ptrace.h>
#include <asm/signal.h>
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#include <asm/uaccess.h>

#include <asm/processor.h>
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#include <asm/fpu_emulator.h>
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#include <asm/fpu.h>
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#include "ieee754.h"

/* Function which emulates a floating point instruction. */

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static int fpu_emu(struct pt_regs *, struct mips_fpu_struct *,
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	mips_instruction);

static int fpux_emu(struct pt_regs *,
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	struct mips_fpu_struct *, mips_instruction, void *__user *);
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/* Control registers */

#define FPCREG_RID	0	/* $0  = revision id */
#define FPCREG_CSR	31	/* $31 = csr */

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/* Determine rounding mode from the RM bits of the FCSR */
#define modeindex(v) ((v) & FPU_CSR_RM)

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/* microMIPS bitfields */
#define MM_POOL32A_MINOR_MASK	0x3f
#define MM_POOL32A_MINOR_SHIFT	0x6
#define MM_MIPS32_COND_FC	0x30

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/* Convert Mips rounding mode (0..3) to IEEE library modes. */
static const unsigned char ieee_rm[4] = {
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	[FPU_CSR_RN] = IEEE754_RN,
	[FPU_CSR_RZ] = IEEE754_RZ,
	[FPU_CSR_RU] = IEEE754_RU,
	[FPU_CSR_RD] = IEEE754_RD,
};
/* Convert IEEE library modes to Mips rounding mode (0..3). */
static const unsigned char mips_rm[4] = {
	[IEEE754_RN] = FPU_CSR_RN,
	[IEEE754_RZ] = FPU_CSR_RZ,
	[IEEE754_RD] = FPU_CSR_RD,
	[IEEE754_RU] = FPU_CSR_RU,
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};

/* convert condition code register number to csr bit */
static const unsigned int fpucondbit[8] = {
	FPU_CSR_COND0,
	FPU_CSR_COND1,
	FPU_CSR_COND2,
	FPU_CSR_COND3,
	FPU_CSR_COND4,
	FPU_CSR_COND5,
	FPU_CSR_COND6,
	FPU_CSR_COND7
};

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/* (microMIPS) Convert 16-bit register encoding to 32-bit register encoding. */
static const unsigned int reg16to32map[8] = {16, 17, 2, 3, 4, 5, 6, 7};

/* (microMIPS) Convert certain microMIPS instructions to MIPS32 format. */
static const int sd_format[] = {16, 17, 0, 0, 0, 0, 0, 0};
static const int sdps_format[] = {16, 17, 22, 0, 0, 0, 0, 0};
static const int dwl_format[] = {17, 20, 21, 0, 0, 0, 0, 0};
static const int swl_format[] = {16, 20, 21, 0, 0, 0, 0, 0};

/*
 * This functions translates a 32-bit microMIPS instruction
 * into a 32-bit MIPS32 instruction. Returns 0 on success
 * and SIGILL otherwise.
 */
static int microMIPS32_to_MIPS32(union mips_instruction *insn_ptr)
{
	union mips_instruction insn = *insn_ptr;
	union mips_instruction mips32_insn = insn;
	int func, fmt, op;

	switch (insn.mm_i_format.opcode) {
	case mm_ldc132_op:
		mips32_insn.mm_i_format.opcode = ldc1_op;
		mips32_insn.mm_i_format.rt = insn.mm_i_format.rs;
		mips32_insn.mm_i_format.rs = insn.mm_i_format.rt;
		break;
	case mm_lwc132_op:
		mips32_insn.mm_i_format.opcode = lwc1_op;
		mips32_insn.mm_i_format.rt = insn.mm_i_format.rs;
		mips32_insn.mm_i_format.rs = insn.mm_i_format.rt;
		break;
	case mm_sdc132_op:
		mips32_insn.mm_i_format.opcode = sdc1_op;
		mips32_insn.mm_i_format.rt = insn.mm_i_format.rs;
		mips32_insn.mm_i_format.rs = insn.mm_i_format.rt;
		break;
	case mm_swc132_op:
		mips32_insn.mm_i_format.opcode = swc1_op;
		mips32_insn.mm_i_format.rt = insn.mm_i_format.rs;
		mips32_insn.mm_i_format.rs = insn.mm_i_format.rt;
		break;
	case mm_pool32i_op:
		/* NOTE: offset is << by 1 if in microMIPS mode. */
		if ((insn.mm_i_format.rt == mm_bc1f_op) ||
		    (insn.mm_i_format.rt == mm_bc1t_op)) {
			mips32_insn.fb_format.opcode = cop1_op;
			mips32_insn.fb_format.bc = bc_op;
			mips32_insn.fb_format.flag =
				(insn.mm_i_format.rt == mm_bc1t_op) ? 1 : 0;
		} else
			return SIGILL;
		break;
	case mm_pool32f_op:
		switch (insn.mm_fp0_format.func) {
		case mm_32f_01_op:
		case mm_32f_11_op:
		case mm_32f_02_op:
		case mm_32f_12_op:
		case mm_32f_41_op:
		case mm_32f_51_op:
		case mm_32f_42_op:
		case mm_32f_52_op:
			op = insn.mm_fp0_format.func;
			if (op == mm_32f_01_op)
				func = madd_s_op;
			else if (op == mm_32f_11_op)
				func = madd_d_op;
			else if (op == mm_32f_02_op)
				func = nmadd_s_op;
			else if (op == mm_32f_12_op)
				func = nmadd_d_op;
			else if (op == mm_32f_41_op)
				func = msub_s_op;
			else if (op == mm_32f_51_op)
				func = msub_d_op;
			else if (op == mm_32f_42_op)
				func = nmsub_s_op;
			else
				func = nmsub_d_op;
			mips32_insn.fp6_format.opcode = cop1x_op;
			mips32_insn.fp6_format.fr = insn.mm_fp6_format.fr;
			mips32_insn.fp6_format.ft = insn.mm_fp6_format.ft;
			mips32_insn.fp6_format.fs = insn.mm_fp6_format.fs;
			mips32_insn.fp6_format.fd = insn.mm_fp6_format.fd;
			mips32_insn.fp6_format.func = func;
			break;
		case mm_32f_10_op:
			func = -1;	/* Invalid */
			op = insn.mm_fp5_format.op & 0x7;
			if (op == mm_ldxc1_op)
				func = ldxc1_op;
			else if (op == mm_sdxc1_op)
				func = sdxc1_op;
			else if (op == mm_lwxc1_op)
				func = lwxc1_op;
			else if (op == mm_swxc1_op)
				func = swxc1_op;

			if (func != -1) {
				mips32_insn.r_format.opcode = cop1x_op;
				mips32_insn.r_format.rs =
					insn.mm_fp5_format.base;
				mips32_insn.r_format.rt =
					insn.mm_fp5_format.index;
				mips32_insn.r_format.rd = 0;
				mips32_insn.r_format.re = insn.mm_fp5_format.fd;
				mips32_insn.r_format.func = func;
			} else
				return SIGILL;
			break;
		case mm_32f_40_op:
			op = -1;	/* Invalid */
			if (insn.mm_fp2_format.op == mm_fmovt_op)
				op = 1;
			else if (insn.mm_fp2_format.op == mm_fmovf_op)
				op = 0;
			if (op != -1) {
				mips32_insn.fp0_format.opcode = cop1_op;
				mips32_insn.fp0_format.fmt =
					sdps_format[insn.mm_fp2_format.fmt];
				mips32_insn.fp0_format.ft =
					(insn.mm_fp2_format.cc<<2) + op;
				mips32_insn.fp0_format.fs =
					insn.mm_fp2_format.fs;
				mips32_insn.fp0_format.fd =
					insn.mm_fp2_format.fd;
				mips32_insn.fp0_format.func = fmovc_op;
			} else
				return SIGILL;
			break;
		case mm_32f_60_op:
			func = -1;	/* Invalid */
			if (insn.mm_fp0_format.op == mm_fadd_op)
				func = fadd_op;
			else if (insn.mm_fp0_format.op == mm_fsub_op)
				func = fsub_op;
			else if (insn.mm_fp0_format.op == mm_fmul_op)
				func = fmul_op;
			else if (insn.mm_fp0_format.op == mm_fdiv_op)
				func = fdiv_op;
			if (func != -1) {
				mips32_insn.fp0_format.opcode = cop1_op;
				mips32_insn.fp0_format.fmt =
					sdps_format[insn.mm_fp0_format.fmt];
				mips32_insn.fp0_format.ft =
					insn.mm_fp0_format.ft;
				mips32_insn.fp0_format.fs =
					insn.mm_fp0_format.fs;
				mips32_insn.fp0_format.fd =
					insn.mm_fp0_format.fd;
				mips32_insn.fp0_format.func = func;
			} else
				return SIGILL;
			break;
		case mm_32f_70_op:
			func = -1;	/* Invalid */
			if (insn.mm_fp0_format.op == mm_fmovn_op)
				func = fmovn_op;
			else if (insn.mm_fp0_format.op == mm_fmovz_op)
				func = fmovz_op;
			if (func != -1) {
				mips32_insn.fp0_format.opcode = cop1_op;
				mips32_insn.fp0_format.fmt =
					sdps_format[insn.mm_fp0_format.fmt];
				mips32_insn.fp0_format.ft =
					insn.mm_fp0_format.ft;
				mips32_insn.fp0_format.fs =
					insn.mm_fp0_format.fs;
				mips32_insn.fp0_format.fd =
					insn.mm_fp0_format.fd;
				mips32_insn.fp0_format.func = func;
			} else
				return SIGILL;
			break;
		case mm_32f_73_op:    /* POOL32FXF */
			switch (insn.mm_fp1_format.op) {
			case mm_movf0_op:
			case mm_movf1_op:
			case mm_movt0_op:
			case mm_movt1_op:
				if ((insn.mm_fp1_format.op & 0x7f) ==
				    mm_movf0_op)
					op = 0;
				else
					op = 1;
				mips32_insn.r_format.opcode = spec_op;
				mips32_insn.r_format.rs = insn.mm_fp4_format.fs;
				mips32_insn.r_format.rt =
					(insn.mm_fp4_format.cc << 2) + op;
				mips32_insn.r_format.rd = insn.mm_fp4_format.rt;
				mips32_insn.r_format.re = 0;
				mips32_insn.r_format.func = movc_op;
				break;
			case mm_fcvtd0_op:
			case mm_fcvtd1_op:
			case mm_fcvts0_op:
			case mm_fcvts1_op:
				if ((insn.mm_fp1_format.op & 0x7f) ==
				    mm_fcvtd0_op) {
					func = fcvtd_op;
					fmt = swl_format[insn.mm_fp3_format.fmt];
				} else {
					func = fcvts_op;
					fmt = dwl_format[insn.mm_fp3_format.fmt];
				}
				mips32_insn.fp0_format.opcode = cop1_op;
				mips32_insn.fp0_format.fmt = fmt;
				mips32_insn.fp0_format.ft = 0;
				mips32_insn.fp0_format.fs =
					insn.mm_fp3_format.fs;
				mips32_insn.fp0_format.fd =
					insn.mm_fp3_format.rt;
				mips32_insn.fp0_format.func = func;
				break;
			case mm_fmov0_op:
			case mm_fmov1_op:
			case mm_fabs0_op:
			case mm_fabs1_op:
			case mm_fneg0_op:
			case mm_fneg1_op:
				if ((insn.mm_fp1_format.op & 0x7f) ==
				    mm_fmov0_op)
					func = fmov_op;
				else if ((insn.mm_fp1_format.op & 0x7f) ==
					 mm_fabs0_op)
					func = fabs_op;
				else
					func = fneg_op;
				mips32_insn.fp0_format.opcode = cop1_op;
				mips32_insn.fp0_format.fmt =
					sdps_format[insn.mm_fp3_format.fmt];
				mips32_insn.fp0_format.ft = 0;
				mips32_insn.fp0_format.fs =
					insn.mm_fp3_format.fs;
				mips32_insn.fp0_format.fd =
					insn.mm_fp3_format.rt;
				mips32_insn.fp0_format.func = func;
				break;
			case mm_ffloorl_op:
			case mm_ffloorw_op:
			case mm_fceill_op:
			case mm_fceilw_op:
			case mm_ftruncl_op:
			case mm_ftruncw_op:
			case mm_froundl_op:
			case mm_froundw_op:
			case mm_fcvtl_op:
			case mm_fcvtw_op:
				if (insn.mm_fp1_format.op == mm_ffloorl_op)
					func = ffloorl_op;
				else if (insn.mm_fp1_format.op == mm_ffloorw_op)
					func = ffloor_op;
				else if (insn.mm_fp1_format.op == mm_fceill_op)
					func = fceill_op;
				else if (insn.mm_fp1_format.op == mm_fceilw_op)
					func = fceil_op;
				else if (insn.mm_fp1_format.op == mm_ftruncl_op)
					func = ftruncl_op;
				else if (insn.mm_fp1_format.op == mm_ftruncw_op)
					func = ftrunc_op;
				else if (insn.mm_fp1_format.op == mm_froundl_op)
					func = froundl_op;
				else if (insn.mm_fp1_format.op == mm_froundw_op)
					func = fround_op;
				else if (insn.mm_fp1_format.op == mm_fcvtl_op)
					func = fcvtl_op;
				else
					func = fcvtw_op;
				mips32_insn.fp0_format.opcode = cop1_op;
				mips32_insn.fp0_format.fmt =
					sd_format[insn.mm_fp1_format.fmt];
				mips32_insn.fp0_format.ft = 0;
				mips32_insn.fp0_format.fs =
					insn.mm_fp1_format.fs;
				mips32_insn.fp0_format.fd =
					insn.mm_fp1_format.rt;
				mips32_insn.fp0_format.func = func;
				break;
			case mm_frsqrt_op:
			case mm_fsqrt_op:
			case mm_frecip_op:
				if (insn.mm_fp1_format.op == mm_frsqrt_op)
					func = frsqrt_op;
				else if (insn.mm_fp1_format.op == mm_fsqrt_op)
					func = fsqrt_op;
				else
					func = frecip_op;
				mips32_insn.fp0_format.opcode = cop1_op;
				mips32_insn.fp0_format.fmt =
					sdps_format[insn.mm_fp1_format.fmt];
				mips32_insn.fp0_format.ft = 0;
				mips32_insn.fp0_format.fs =
					insn.mm_fp1_format.fs;
				mips32_insn.fp0_format.fd =
					insn.mm_fp1_format.rt;
				mips32_insn.fp0_format.func = func;
				break;
			case mm_mfc1_op:
			case mm_mtc1_op:
			case mm_cfc1_op:
			case mm_ctc1_op:
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			case mm_mfhc1_op:
			case mm_mthc1_op:
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				if (insn.mm_fp1_format.op == mm_mfc1_op)
					op = mfc_op;
				else if (insn.mm_fp1_format.op == mm_mtc1_op)
					op = mtc_op;
				else if (insn.mm_fp1_format.op == mm_cfc1_op)
					op = cfc_op;
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				else if (insn.mm_fp1_format.op == mm_ctc1_op)
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					op = ctc_op;
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				else if (insn.mm_fp1_format.op == mm_mfhc1_op)
					op = mfhc_op;
				else
					op = mthc_op;
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				mips32_insn.fp1_format.opcode = cop1_op;
				mips32_insn.fp1_format.op = op;
				mips32_insn.fp1_format.rt =
					insn.mm_fp1_format.rt;
				mips32_insn.fp1_format.fs =
					insn.mm_fp1_format.fs;
				mips32_insn.fp1_format.fd = 0;
				mips32_insn.fp1_format.func = 0;
				break;
			default:
				return SIGILL;
			}
			break;
		case mm_32f_74_op:	/* c.cond.fmt */
			mips32_insn.fp0_format.opcode = cop1_op;
			mips32_insn.fp0_format.fmt =
				sdps_format[insn.mm_fp4_format.fmt];
			mips32_insn.fp0_format.ft = insn.mm_fp4_format.rt;
			mips32_insn.fp0_format.fs = insn.mm_fp4_format.fs;
			mips32_insn.fp0_format.fd = insn.mm_fp4_format.cc << 2;
			mips32_insn.fp0_format.func =
				insn.mm_fp4_format.cond | MM_MIPS32_COND_FC;
			break;
		default:
			return SIGILL;
		}
		break;
	default:
		return SIGILL;
	}

	*insn_ptr = mips32_insn;
	return 0;
}

int mm_isBranchInstr(struct pt_regs *regs, struct mm_decoded_insn dec_insn,
		     unsigned long *contpc)
{
	union mips_instruction insn = (union mips_instruction)dec_insn.insn;
	int bc_false = 0;
	unsigned int fcr31;
	unsigned int bit;

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	if (!cpu_has_mmips)
		return 0;

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	switch (insn.mm_i_format.opcode) {
	case mm_pool32a_op:
		if ((insn.mm_i_format.simmediate & MM_POOL32A_MINOR_MASK) ==
		    mm_pool32axf_op) {
			switch (insn.mm_i_format.simmediate >>
				MM_POOL32A_MINOR_SHIFT) {
			case mm_jalr_op:
			case mm_jalrhb_op:
			case mm_jalrs_op:
			case mm_jalrshb_op:
				if (insn.mm_i_format.rt != 0)	/* Not mm_jr */
					regs->regs[insn.mm_i_format.rt] =
						regs->cp0_epc +
						dec_insn.pc_inc +
						dec_insn.next_pc_inc;
				*contpc = regs->regs[insn.mm_i_format.rs];
				return 1;
			}
		}
		break;
	case mm_pool32i_op:
		switch (insn.mm_i_format.rt) {
		case mm_bltzals_op:
		case mm_bltzal_op:
			regs->regs[31] = regs->cp0_epc +
				dec_insn.pc_inc +
				dec_insn.next_pc_inc;
			/* Fall through */
		case mm_bltz_op:
			if ((long)regs->regs[insn.mm_i_format.rs] < 0)
				*contpc = regs->cp0_epc +
					dec_insn.pc_inc +
					(insn.mm_i_format.simmediate << 1);
			else
				*contpc = regs->cp0_epc +
					dec_insn.pc_inc +
					dec_insn.next_pc_inc;
			return 1;
		case mm_bgezals_op:
		case mm_bgezal_op:
			regs->regs[31] = regs->cp0_epc +
					dec_insn.pc_inc +
					dec_insn.next_pc_inc;
			/* Fall through */
		case mm_bgez_op:
			if ((long)regs->regs[insn.mm_i_format.rs] >= 0)
				*contpc = regs->cp0_epc +
					dec_insn.pc_inc +
					(insn.mm_i_format.simmediate << 1);
			else
				*contpc = regs->cp0_epc +
					dec_insn.pc_inc +
					dec_insn.next_pc_inc;
			return 1;
		case mm_blez_op:
			if ((long)regs->regs[insn.mm_i_format.rs] <= 0)
				*contpc = regs->cp0_epc +
					dec_insn.pc_inc +
					(insn.mm_i_format.simmediate << 1);
			else
				*contpc = regs->cp0_epc +
					dec_insn.pc_inc +
					dec_insn.next_pc_inc;
			return 1;
		case mm_bgtz_op:
			if ((long)regs->regs[insn.mm_i_format.rs] <= 0)
				*contpc = regs->cp0_epc +
					dec_insn.pc_inc +
					(insn.mm_i_format.simmediate << 1);
			else
				*contpc = regs->cp0_epc +
					dec_insn.pc_inc +
					dec_insn.next_pc_inc;
			return 1;
		case mm_bc2f_op:
		case mm_bc1f_op:
			bc_false = 1;
			/* Fall through */
		case mm_bc2t_op:
		case mm_bc1t_op:
			preempt_disable();
			if (is_fpu_owner())
				asm volatile("cfc1\t%0,$31" : "=r" (fcr31));
			else
				fcr31 = current->thread.fpu.fcr31;
			preempt_enable();

			if (bc_false)
				fcr31 = ~fcr31;

			bit = (insn.mm_i_format.rs >> 2);
			bit += (bit != 0);
			bit += 23;
			if (fcr31 & (1 << bit))
				*contpc = regs->cp0_epc +
					dec_insn.pc_inc +
					(insn.mm_i_format.simmediate << 1);
			else
				*contpc = regs->cp0_epc +
					dec_insn.pc_inc + dec_insn.next_pc_inc;
			return 1;
		}
		break;
	case mm_pool16c_op:
		switch (insn.mm_i_format.rt) {
		case mm_jalr16_op:
		case mm_jalrs16_op:
			regs->regs[31] = regs->cp0_epc +
				dec_insn.pc_inc + dec_insn.next_pc_inc;
			/* Fall through */
		case mm_jr16_op:
			*contpc = regs->regs[insn.mm_i_format.rs];
			return 1;
		}
		break;
	case mm_beqz16_op:
		if ((long)regs->regs[reg16to32map[insn.mm_b1_format.rs]] == 0)
			*contpc = regs->cp0_epc +
				dec_insn.pc_inc +
				(insn.mm_b1_format.simmediate << 1);
		else
			*contpc = regs->cp0_epc +
				dec_insn.pc_inc + dec_insn.next_pc_inc;
		return 1;
	case mm_bnez16_op:
		if ((long)regs->regs[reg16to32map[insn.mm_b1_format.rs]] != 0)
			*contpc = regs->cp0_epc +
				dec_insn.pc_inc +
				(insn.mm_b1_format.simmediate << 1);
		else
			*contpc = regs->cp0_epc +
				dec_insn.pc_inc + dec_insn.next_pc_inc;
		return 1;
	case mm_b16_op:
		*contpc = regs->cp0_epc + dec_insn.pc_inc +
			 (insn.mm_b0_format.simmediate << 1);
		return 1;
	case mm_beq32_op:
		if (regs->regs[insn.mm_i_format.rs] ==
		    regs->regs[insn.mm_i_format.rt])
			*contpc = regs->cp0_epc +
				dec_insn.pc_inc +
				(insn.mm_i_format.simmediate << 1);
		else
			*contpc = regs->cp0_epc +
				dec_insn.pc_inc +
				dec_insn.next_pc_inc;
		return 1;
	case mm_bne32_op:
		if (regs->regs[insn.mm_i_format.rs] !=
		    regs->regs[insn.mm_i_format.rt])
			*contpc = regs->cp0_epc +
				dec_insn.pc_inc +
				(insn.mm_i_format.simmediate << 1);
		else
			*contpc = regs->cp0_epc +
				dec_insn.pc_inc + dec_insn.next_pc_inc;
		return 1;
	case mm_jalx32_op:
		regs->regs[31] = regs->cp0_epc +
			dec_insn.pc_inc + dec_insn.next_pc_inc;
		*contpc = regs->cp0_epc + dec_insn.pc_inc;
		*contpc >>= 28;
		*contpc <<= 28;
		*contpc |= (insn.j_format.target << 2);
		return 1;
	case mm_jals32_op:
	case mm_jal32_op:
		regs->regs[31] = regs->cp0_epc +
			dec_insn.pc_inc + dec_insn.next_pc_inc;
		/* Fall through */
	case mm_j32_op:
		*contpc = regs->cp0_epc + dec_insn.pc_inc;
		*contpc >>= 27;
		*contpc <<= 27;
		*contpc |= (insn.j_format.target << 1);
		set_isa16_mode(*contpc);
		return 1;
	}
	return 0;
}
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/*
 * Redundant with logic already in kernel/branch.c,
 * embedded in compute_return_epc.  At some point,
 * a single subroutine should be used across both
 * modules.
 */
651 652
static int isBranchInstr(struct pt_regs *regs, struct mm_decoded_insn dec_insn,
			 unsigned long *contpc)
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{
654 655 656 657 658
	union mips_instruction insn = (union mips_instruction)dec_insn.insn;
	unsigned int fcr31;
	unsigned int bit = 0;

	switch (insn.i_format.opcode) {
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	case spec_op:
660
		switch (insn.r_format.func) {
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		case jalr_op:
662 663 664 665
			regs->regs[insn.r_format.rd] =
				regs->cp0_epc + dec_insn.pc_inc +
				dec_insn.next_pc_inc;
			/* Fall through */
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		case jr_op:
667
			*contpc = regs->regs[insn.r_format.rs];
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			return 1;
		}
		break;
	case bcond_op:
672 673 674 675 676 677 678
		switch (insn.i_format.rt) {
		case bltzal_op:
		case bltzall_op:
			regs->regs[31] = regs->cp0_epc +
				dec_insn.pc_inc +
				dec_insn.next_pc_inc;
			/* Fall through */
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		case bltz_op:
		case bltzl_op:
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			if ((long)regs->regs[insn.i_format.rs] < 0)
				*contpc = regs->cp0_epc +
					dec_insn.pc_inc +
					(insn.i_format.simmediate << 2);
			else
				*contpc = regs->cp0_epc +
					dec_insn.pc_inc +
					dec_insn.next_pc_inc;
			return 1;
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		case bgezal_op:
		case bgezall_op:
692 693 694 695 696 697 698 699 700 701 702 703 704 705
			regs->regs[31] = regs->cp0_epc +
				dec_insn.pc_inc +
				dec_insn.next_pc_inc;
			/* Fall through */
		case bgez_op:
		case bgezl_op:
			if ((long)regs->regs[insn.i_format.rs] >= 0)
				*contpc = regs->cp0_epc +
					dec_insn.pc_inc +
					(insn.i_format.simmediate << 2);
			else
				*contpc = regs->cp0_epc +
					dec_insn.pc_inc +
					dec_insn.next_pc_inc;
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			return 1;
		}
		break;
	case jalx_op:
710 711 712 713 714 715 716 717 718 719 720 721 722 723
		set_isa16_mode(bit);
	case jal_op:
		regs->regs[31] = regs->cp0_epc +
			dec_insn.pc_inc +
			dec_insn.next_pc_inc;
		/* Fall through */
	case j_op:
		*contpc = regs->cp0_epc + dec_insn.pc_inc;
		*contpc >>= 28;
		*contpc <<= 28;
		*contpc |= (insn.j_format.target << 2);
		/* Set microMIPS mode bit: XOR for jalx. */
		*contpc ^= bit;
		return 1;
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	case beq_op:
	case beql_op:
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		if (regs->regs[insn.i_format.rs] ==
		    regs->regs[insn.i_format.rt])
			*contpc = regs->cp0_epc +
				dec_insn.pc_inc +
				(insn.i_format.simmediate << 2);
		else
			*contpc = regs->cp0_epc +
				dec_insn.pc_inc +
				dec_insn.next_pc_inc;
		return 1;
	case bne_op:
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	case bnel_op:
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		if (regs->regs[insn.i_format.rs] !=
		    regs->regs[insn.i_format.rt])
			*contpc = regs->cp0_epc +
				dec_insn.pc_inc +
				(insn.i_format.simmediate << 2);
		else
			*contpc = regs->cp0_epc +
				dec_insn.pc_inc +
				dec_insn.next_pc_inc;
		return 1;
	case blez_op:
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	case blezl_op:
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		if ((long)regs->regs[insn.i_format.rs] <= 0)
			*contpc = regs->cp0_epc +
				dec_insn.pc_inc +
				(insn.i_format.simmediate << 2);
		else
			*contpc = regs->cp0_epc +
				dec_insn.pc_inc +
				dec_insn.next_pc_inc;
		return 1;
	case bgtz_op:
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	case bgtzl_op:
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		if ((long)regs->regs[insn.i_format.rs] > 0)
			*contpc = regs->cp0_epc +
				dec_insn.pc_inc +
				(insn.i_format.simmediate << 2);
		else
			*contpc = regs->cp0_epc +
				dec_insn.pc_inc +
				dec_insn.next_pc_inc;
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		return 1;
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#ifdef CONFIG_CPU_CAVIUM_OCTEON
	case lwc2_op: /* This is bbit0 on Octeon */
		if ((regs->regs[insn.i_format.rs] & (1ull<<insn.i_format.rt)) == 0)
			*contpc = regs->cp0_epc + 4 + (insn.i_format.simmediate << 2);
		else
			*contpc = regs->cp0_epc + 8;
		return 1;
	case ldc2_op: /* This is bbit032 on Octeon */
		if ((regs->regs[insn.i_format.rs] & (1ull<<(insn.i_format.rt + 32))) == 0)
			*contpc = regs->cp0_epc + 4 + (insn.i_format.simmediate << 2);
		else
			*contpc = regs->cp0_epc + 8;
		return 1;
	case swc2_op: /* This is bbit1 on Octeon */
		if (regs->regs[insn.i_format.rs] & (1ull<<insn.i_format.rt))
			*contpc = regs->cp0_epc + 4 + (insn.i_format.simmediate << 2);
		else
			*contpc = regs->cp0_epc + 8;
		return 1;
	case sdc2_op: /* This is bbit132 on Octeon */
		if (regs->regs[insn.i_format.rs] & (1ull<<(insn.i_format.rt + 32)))
			*contpc = regs->cp0_epc + 4 + (insn.i_format.simmediate << 2);
		else
			*contpc = regs->cp0_epc + 8;
		return 1;
#endif
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	case cop0_op:
	case cop1_op:
	case cop2_op:
	case cop1x_op:
800 801 802 803 804 805 806 807 808 809 810 811 812 813 814 815 816 817 818 819 820 821 822 823 824 825 826 827 828 829 830 831 832 833 834 835
		if (insn.i_format.rs == bc_op) {
			preempt_disable();
			if (is_fpu_owner())
				asm volatile("cfc1\t%0,$31" : "=r" (fcr31));
			else
				fcr31 = current->thread.fpu.fcr31;
			preempt_enable();

			bit = (insn.i_format.rt >> 2);
			bit += (bit != 0);
			bit += 23;
			switch (insn.i_format.rt & 3) {
			case 0:	/* bc1f */
			case 2:	/* bc1fl */
				if (~fcr31 & (1 << bit))
					*contpc = regs->cp0_epc +
						dec_insn.pc_inc +
						(insn.i_format.simmediate << 2);
				else
					*contpc = regs->cp0_epc +
						dec_insn.pc_inc +
						dec_insn.next_pc_inc;
				return 1;
			case 1:	/* bc1t */
			case 3:	/* bc1tl */
				if (fcr31 & (1 << bit))
					*contpc = regs->cp0_epc +
						dec_insn.pc_inc +
						(insn.i_format.simmediate << 2);
				else
					*contpc = regs->cp0_epc +
						dec_insn.pc_inc +
						dec_insn.next_pc_inc;
				return 1;
			}
		}
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		break;
	}
	return 0;
}

/*
 * In the Linux kernel, we support selection of FPR format on the
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 * basis of the Status.FR bit.	If an FPU is not present, the FR bit
844
 * is hardwired to zero, which would imply a 32-bit FPU even for
845
 * 64-bit CPUs so we rather look at TIF_32BIT_FPREGS.
846 847 848
 * FPU emu is slow and bulky and optimizing this function offers fairly
 * sizeable benefits so we try to be clever and make this function return
 * a constant whenever possible, that is on 64-bit kernels without O32
849
 * compatibility enabled and on 32-bit without 64-bit FPU support.
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 */
851 852
static inline int cop1_64bit(struct pt_regs *xcp)
{
853 854 855 856 857 858
	if (config_enabled(CONFIG_64BIT) && !config_enabled(CONFIG_MIPS32_O32))
		return 1;
	else if (config_enabled(CONFIG_32BIT) &&
		 !config_enabled(CONFIG_MIPS_O32_FP64_SUPPORT))
		return 0;

859
	return !test_thread_flag(TIF_32BIT_FPREGS);
860 861
}

862 863
#define SIFROMREG(si, x)						\
do {									\
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	if (cop1_64bit(xcp))						\
		(si) = get_fpr32(&ctx->fpr[x], 0);			\
	else								\
		(si) = get_fpr32(&ctx->fpr[(x) & ~1], (x) & 1);		\
} while (0)
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870 871
#define SITOREG(si, x)							\
do {									\
872 873
	if (cop1_64bit(xcp)) {						\
		unsigned i;						\
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		set_fpr32(&ctx->fpr[x], 0, si);				\
875 876 877
		for (i = 1; i < ARRAY_SIZE(ctx->fpr[x].val32); i++)	\
			set_fpr32(&ctx->fpr[x], i, 0);			\
	} else {							\
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		set_fpr32(&ctx->fpr[(x) & ~1], (x) & 1, si);		\
879
	}								\
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} while (0)
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#define SIFROMHREG(si, x)	((si) = get_fpr32(&ctx->fpr[x], 1))
883

884 885
#define SITOHREG(si, x)							\
do {									\
886 887 888 889 890
	unsigned i;							\
	set_fpr32(&ctx->fpr[x], 1, si);					\
	for (i = 2; i < ARRAY_SIZE(ctx->fpr[x].val32); i++)		\
		set_fpr32(&ctx->fpr[x], i, 0);				\
} while (0)
891

892
#define DIFROMREG(di, x)						\
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	((di) = get_fpr64(&ctx->fpr[(x) & ~(cop1_64bit(xcp) == 0)], 0))

895 896
#define DITOREG(di, x)							\
do {									\
897 898 899 900 901 902
	unsigned fpr, i;						\
	fpr = (x) & ~(cop1_64bit(xcp) == 0);				\
	set_fpr64(&ctx->fpr[fpr], 0, di);				\
	for (i = 1; i < ARRAY_SIZE(ctx->fpr[x].val64); i++)		\
		set_fpr64(&ctx->fpr[fpr], i, 0);			\
} while (0)
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904 905 906 907
#define SPFROMREG(sp, x) SIFROMREG((sp).bits, x)
#define SPTOREG(sp, x)	SITOREG((sp).bits, x)
#define DPFROMREG(dp, x)	DIFROMREG((dp).bits, x)
#define DPTOREG(dp, x)	DITOREG((dp).bits, x)
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/*
 * Emulate the single floating point instruction pointed at by EPC.
 * Two instructions if the instruction is in a branch delay slot.
 */

914
static int cop1Emulate(struct pt_regs *xcp, struct mips_fpu_struct *ctx,
915
		struct mm_decoded_insn dec_insn, void *__user *fault_addr)
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{
	mips_instruction ir;
918
	unsigned long contpc = xcp->cp0_epc + dec_insn.pc_inc;
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	unsigned int cond;
920
	int pc_inc;
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	/* XXX NEC Vr54xx bug workaround */
923
	if (delay_slot(xcp)) {
924 925
		if (dec_insn.micro_mips_mode) {
			if (!mm_isBranchInstr(xcp, dec_insn, &contpc))
926
				clear_delay_slot(xcp);
927 928
		} else {
			if (!isBranchInstr(xcp, dec_insn, &contpc))
929
				clear_delay_slot(xcp);
930 931
		}
	}
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933
	if (delay_slot(xcp)) {
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		/*
		 * The instruction to be emulated is in a branch delay slot
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		 * which means that we have to	emulate the branch instruction
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		 * BEFORE we do the cop1 instruction.
		 *
		 * This branch could be a COP1 branch, but in that case we
		 * would have had a trap for that instruction, and would not
		 * come through this route.
		 *
		 * Linux MIPS branch emulator operates on context, updating the
		 * cp0_epc.
		 */
946 947 948 949 950 951
		ir = dec_insn.next_insn;  /* process delay slot instr */
		pc_inc = dec_insn.next_pc_inc;
	} else {
		ir = dec_insn.insn;       /* process current instr */
		pc_inc = dec_insn.pc_inc;
	}
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953 954 955 956 957 958 959 960 961 962 963 964 965 966 967 968 969 970 971
	/*
	 * Since microMIPS FPU instructios are a subset of MIPS32 FPU
	 * instructions, we want to convert microMIPS FPU instructions
	 * into MIPS32 instructions so that we could reuse all of the
	 * FPU emulation code.
	 *
	 * NOTE: We cannot do this for branch instructions since they
	 *       are not a subset. Example: Cannot emulate a 16-bit
	 *       aligned target address with a MIPS32 instruction.
	 */
	if (dec_insn.micro_mips_mode) {
		/*
		 * If next instruction is a 16-bit instruction, then it
		 * it cannot be a FPU instruction. This could happen
		 * since we can be called for non-FPU instructions.
		 */
		if ((pc_inc == 2) ||
			(microMIPS32_to_MIPS32((union mips_instruction *)&ir)
			 == SIGILL))
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			return SIGILL;
	}

      emul:
976
	perf_sw_event(PERF_COUNT_SW_EMULATION_FAULTS, 1, xcp, 0);
977
	MIPS_FPU_EMU_INC_STATS(emulated);
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	switch (MIPSInst_OPCODE(ir)) {
	case ldc1_op:{
980
		u64 __user *va = (u64 __user *) (xcp->regs[MIPSInst_RS(ir)] +
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			MIPSInst_SIMM(ir));
		u64 val;

984
		MIPS_FPU_EMU_INC_STATS(loads);
985 986

		if (!access_ok(VERIFY_READ, va, sizeof(u64))) {
987
			MIPS_FPU_EMU_INC_STATS(errors);
988
			*fault_addr = va;
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			return SIGBUS;
		}
991 992 993 994 995
		if (__get_user(val, va)) {
			MIPS_FPU_EMU_INC_STATS(errors);
			*fault_addr = va;
			return SIGSEGV;
		}
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		DITOREG(val, MIPSInst_RT(ir));
		break;
	}

	case sdc1_op:{
1001
		u64 __user *va = (u64 __user *) (xcp->regs[MIPSInst_RS(ir)] +
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			MIPSInst_SIMM(ir));
		u64 val;

1005
		MIPS_FPU_EMU_INC_STATS(stores);
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		DIFROMREG(val, MIPSInst_RT(ir));
1007
		if (!access_ok(VERIFY_WRITE, va, sizeof(u64))) {
1008
			MIPS_FPU_EMU_INC_STATS(errors);
1009
			*fault_addr = va;
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			return SIGBUS;
		}
1012 1013 1014 1015 1016
		if (__put_user(val, va)) {
			MIPS_FPU_EMU_INC_STATS(errors);
			*fault_addr = va;
			return SIGSEGV;
		}
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		break;
	}

	case lwc1_op:{
1021
		u32 __user *va = (u32 __user *) (xcp->regs[MIPSInst_RS(ir)] +
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			MIPSInst_SIMM(ir));
		u32 val;

1025
		MIPS_FPU_EMU_INC_STATS(loads);
1026
		if (!access_ok(VERIFY_READ, va, sizeof(u32))) {
1027
			MIPS_FPU_EMU_INC_STATS(errors);
1028
			*fault_addr = va;
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			return SIGBUS;
		}
1031 1032 1033 1034 1035
		if (__get_user(val, va)) {
			MIPS_FPU_EMU_INC_STATS(errors);
			*fault_addr = va;
			return SIGSEGV;
		}
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		SITOREG(val, MIPSInst_RT(ir));
		break;
	}

	case swc1_op:{
1041
		u32 __user *va = (u32 __user *) (xcp->regs[MIPSInst_RS(ir)] +
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			MIPSInst_SIMM(ir));
		u32 val;

1045
		MIPS_FPU_EMU_INC_STATS(stores);
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		SIFROMREG(val, MIPSInst_RT(ir));
1047
		if (!access_ok(VERIFY_WRITE, va, sizeof(u32))) {
1048
			MIPS_FPU_EMU_INC_STATS(errors);
1049
			*fault_addr = va;
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			return SIGBUS;
		}
1052 1053 1054 1055 1056
		if (__put_user(val, va)) {
			MIPS_FPU_EMU_INC_STATS(errors);
			*fault_addr = va;
			return SIGSEGV;
		}
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		break;
	}

	case cop1_op:
		switch (MIPSInst_RS(ir)) {

		case dmfc_op:
1064 1065 1066
			if (!cpu_has_mips_3_4_5 && !cpu_has_mips64)
				return SIGILL;

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			/* copregister fs -> gpr[rt] */
			if (MIPSInst_RT(ir) != 0) {
				DIFROMREG(xcp->regs[MIPSInst_RT(ir)],
					MIPSInst_RD(ir));
			}
			break;

		case dmtc_op:
1075 1076 1077
			if (!cpu_has_mips_3_4_5 && !cpu_has_mips64)
				return SIGILL;

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			/* copregister fs <- rt */
			DITOREG(xcp->regs[MIPSInst_RT(ir)], MIPSInst_RD(ir));
			break;

1082 1083 1084 1085 1086 1087 1088 1089 1090 1091 1092 1093 1094 1095 1096 1097 1098 1099 1100
		case mfhc_op:
			if (!cpu_has_mips_r2)
				goto sigill;

			/* copregister rd -> gpr[rt] */
			if (MIPSInst_RT(ir) != 0) {
				SIFROMHREG(xcp->regs[MIPSInst_RT(ir)],
					MIPSInst_RD(ir));
			}
			break;

		case mthc_op:
			if (!cpu_has_mips_r2)
				goto sigill;

			/* copregister rd <- gpr[rt] */
			SITOHREG(xcp->regs[MIPSInst_RT(ir)], MIPSInst_RD(ir));
			break;

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		case mfc_op:
			/* copregister rd -> gpr[rt] */
			if (MIPSInst_RT(ir) != 0) {
				SIFROMREG(xcp->regs[MIPSInst_RT(ir)],
					MIPSInst_RD(ir));
			}
			break;

		case mtc_op:
			/* copregister rd <- rt */
			SITOREG(xcp->regs[MIPSInst_RT(ir)], MIPSInst_RD(ir));
			break;

		case cfc_op:{
			/* cop control register rd -> gpr[rt] */
			u32 value;

			if (MIPSInst_RD(ir) == FPCREG_CSR) {
				value = ctx->fcr31;
1120 1121
				value = (value & ~FPU_CSR_RM) |
					mips_rm[modeindex(value)];
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#ifdef CSRTRACE
				printk("%p gpr[%d]<-csr=%08x\n",
1124
					(void *) (xcp->cp0_epc),
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					MIPSInst_RT(ir), value);
#endif
			}
			else if (MIPSInst_RD(ir) == FPCREG_RID)
				value = 0;
			else
				value = 0;
			if (MIPSInst_RT(ir))
				xcp->regs[MIPSInst_RT(ir)] = value;
			break;
		}

		case ctc_op:{
			/* copregister rd <- rt */
			u32 value;

			if (MIPSInst_RT(ir) == 0)
				value = 0;
			else
				value = xcp->regs[MIPSInst_RT(ir)];

			/* we only have one writable control reg
			 */
			if (MIPSInst_RD(ir) == FPCREG_CSR) {
#ifdef CSRTRACE
				printk("%p gpr[%d]->csr=%08x\n",
1151
					(void *) (xcp->cp0_epc),
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					MIPSInst_RT(ir), value);
#endif
1154 1155 1156 1157 1158 1159 1160 1161

				/*
				 * Don't write reserved bits,
				 * and convert to ieee library modes
				 */
				ctx->fcr31 = (value &
						~(FPU_CSR_RSVD | FPU_CSR_RM)) |
						ieee_rm[modeindex(value)];
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			}
			if ((ctx->fcr31 >> 5) & ctx->fcr31 & FPU_CSR_ALL_E) {
				return SIGFPE;
			}
			break;
		}

		case bc_op:{
1170
			unsigned int cbit;
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			int likely = 0;

1173
			if (delay_slot(xcp))
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				return SIGILL;

1176 1177 1178 1179 1180 1181
			if (cpu_has_mips_4_5_r)
				cbit = fpucondbit[MIPSInst_RT(ir) >> 2];
			else
				cbit = FPU_CSR_COND;
			cond = ctx->fcr31 & cbit;

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			switch (MIPSInst_RT(ir) & 3) {
			case bcfl_op:
				likely = 1;
			case bcf_op:
				cond = !cond;
				break;
			case bctl_op:
				likely = 1;
			case bct_op:
				break;
			default:
				/* thats an illegal instruction */
				return SIGILL;
			}

1197
			set_delay_slot(xcp);
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			if (cond) {
				/* branch taken: emulate dslot
				 * instruction
				 */
1202 1203 1204 1205 1206 1207 1208 1209 1210 1211 1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230
				xcp->cp0_epc += dec_insn.pc_inc;

				contpc = MIPSInst_SIMM(ir);
				ir = dec_insn.next_insn;
				if (dec_insn.micro_mips_mode) {
					contpc = (xcp->cp0_epc + (contpc << 1));

					/* If 16-bit instruction, not FPU. */
					if ((dec_insn.next_pc_inc == 2) ||
						(microMIPS32_to_MIPS32((union mips_instruction *)&ir) == SIGILL)) {

						/*
						 * Since this instruction will
						 * be put on the stack with
						 * 32-bit words, get around
						 * this problem by putting a
						 * NOP16 as the second one.
						 */
						if (dec_insn.next_pc_inc == 2)
							ir = (ir & (~0xffff)) | MM_NOP16;

						/*
						 * Single step the non-CP1
						 * instruction in the dslot.
						 */
						return mips_dsemul(xcp, ir, contpc);
					}
				} else
					contpc = (xcp->cp0_epc + (contpc << 2));
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				switch (MIPSInst_OPCODE(ir)) {
				case lwc1_op:
1234
					goto emul;
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				case swc1_op:
1236
					goto emul;
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				case ldc1_op:
				case sdc1_op:
1239 1240 1241 1242 1243 1244
					if (cpu_has_mips_2_3_4_5 ||
					    cpu_has_mips64)
						goto emul;

					return SIGILL;
					goto emul;
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				case cop1_op:
					goto emul;
1247 1248 1249 1250 1251 1252
				case cop1x_op:
					if (cpu_has_mips_4_5 || cpu_has_mips64)
						/* its one of ours */
						goto emul;

					return SIGILL;
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				case spec_op:
1254 1255 1256
					if (!cpu_has_mips_4_5_r)
						return SIGILL;

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					if (MIPSInst_FUNC(ir) == movc_op)
						goto emul;
					break;
				}

				/*
				 * Single step the non-cp1
				 * instruction in the dslot
				 */
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				return mips_dsemul(xcp, ir, contpc);
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			}
			else {
				/* branch not taken */
				if (likely) {
					/*
					 * branch likely nullifies
					 * dslot if not taken
					 */
1275 1276
					xcp->cp0_epc += dec_insn.pc_inc;
					contpc += dec_insn.pc_inc;
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					/*
					 * else continue & execute
					 * dslot as normal insn
					 */
				}
			}
			break;
		}

		default:
			if (!(MIPSInst_RS(ir) & 0x10))
				return SIGILL;
			{
				int sig;

				/* a real fpu computation instruction */
				if ((sig = fpu_emu(xcp, ctx, ir)))
					return sig;
			}
		}
		break;

	case cop1x_op:{
1300 1301 1302 1303 1304 1305
		int sig;

		if (!cpu_has_mips_4_5 && !cpu_has_mips64)
			return SIGILL;

		sig = fpux_emu(xcp, ctx, ir, fault_addr);
1306
		if (sig)
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			return sig;
		break;
	}

	case spec_op:
1312 1313 1314
		if (!cpu_has_mips_4_5_r)
			return SIGILL;

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		if (MIPSInst_FUNC(ir) != movc_op)
			return SIGILL;
		cond = fpucondbit[MIPSInst_RT(ir) >> 2];
		if (((ctx->fcr31 & cond) != 0) == ((MIPSInst_RT(ir) & 1) != 0))
			xcp->regs[MIPSInst_RD(ir)] =
				xcp->regs[MIPSInst_RS(ir)];
		break;
	default:
1323
sigill:
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		return SIGILL;
	}

	/* we did it !! */
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	xcp->cp0_epc = contpc;
1329
	clear_delay_slot(xcp);
1330

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	return 0;
}

/*
 * Conversion table from MIPS compare ops 48-63
 * cond = ieee754dp_cmp(x,y,IEEE754_UN,sig);
 */
static const unsigned char cmptab[8] = {
	0,			/* cmp_0 (sig) cmp_sf */
	IEEE754_CUN,		/* cmp_un (sig) cmp_ngle */
	IEEE754_CEQ,		/* cmp_eq (sig) cmp_seq */
	IEEE754_CEQ | IEEE754_CUN,	/* cmp_ueq (sig) cmp_ngl  */
	IEEE754_CLT,		/* cmp_olt (sig) cmp_lt */
	IEEE754_CLT | IEEE754_CUN,	/* cmp_ult (sig) cmp_nge */
	IEEE754_CLT | IEEE754_CEQ,	/* cmp_ole (sig) cmp_le */
	IEEE754_CLT | IEEE754_CEQ | IEEE754_CUN,	/* cmp_ule (sig) cmp_ngt */
};


/*
 * Additional MIPS4 instructions
 */

1354 1355 1356 1357 1358 1359 1360 1361 1362 1363 1364 1365 1366 1367
#define DEF3OP(name, p, f1, f2, f3)					\
static union ieee754##p fpemu_##p##_##name(union ieee754##p r,		\
	union ieee754##p s, union ieee754##p t)				\
{									\
	struct _ieee754_csr ieee754_csr_save;				\
	s = f1(s, t);							\
	ieee754_csr_save = ieee754_csr;					\
	s = f2(s, r);							\
	ieee754_csr_save.cx |= ieee754_csr.cx;				\
	ieee754_csr_save.sx |= ieee754_csr.sx;				\
	s = f3(s);							\
	ieee754_csr.cx |= ieee754_csr_save.cx;				\
	ieee754_csr.sx |= ieee754_csr_save.sx;				\
	return s;							\
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}

1370
static union ieee754dp fpemu_dp_recip(union ieee754dp d)
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{
	return ieee754dp_div(ieee754dp_one(0), d);
}

1375
static union ieee754dp fpemu_dp_rsqrt(union ieee754dp d)
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{
	return ieee754dp_div(ieee754dp_one(0), ieee754dp_sqrt(d));
}

1380
static union ieee754sp fpemu_sp_recip(union ieee754sp s)
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{
	return ieee754sp_div(ieee754sp_one(0), s);
}

1385
static union ieee754sp fpemu_sp_rsqrt(union ieee754sp s)
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{
	return ieee754sp_div(ieee754sp_one(0), ieee754sp_sqrt(s));
}

1390 1391
DEF3OP(madd, sp, ieee754sp_mul, ieee754sp_add, );
DEF3OP(msub, sp, ieee754sp_mul, ieee754sp_sub, );
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DEF3OP(nmadd, sp, ieee754sp_mul, ieee754sp_add, ieee754sp_neg);
DEF3OP(nmsub, sp, ieee754sp_mul, ieee754sp_sub, ieee754sp_neg);
1394 1395
DEF3OP(madd, dp, ieee754dp_mul, ieee754dp_add, );
DEF3OP(msub, dp, ieee754dp_mul, ieee754dp_sub, );
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DEF3OP(nmadd, dp, ieee754dp_mul, ieee754dp_add, ieee754dp_neg);
DEF3OP(nmsub, dp, ieee754dp_mul, ieee754dp_sub, ieee754dp_neg);

1399
static int fpux_emu(struct pt_regs *xcp, struct mips_fpu_struct *ctx,
1400
	mips_instruction ir, void *__user *fault_addr)
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{
	unsigned rcsr = 0;	/* resulting csr */

1404
	MIPS_FPU_EMU_INC_STATS(cp1xops);
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1405 1406 1407 1408

	switch (MIPSInst_FMA_FFMT(ir)) {
	case s_fmt:{		/* 0 */

1409 1410
		union ieee754sp(*handler) (union ieee754sp, union ieee754sp, union ieee754sp);
		union ieee754sp fd, fr, fs, ft;
1411
		u32 __user *va;
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		u32 val;

		switch (MIPSInst_FUNC(ir)) {
		case lwxc1_op:
1416
			va = (void __user *) (xcp->regs[MIPSInst_FR(ir)] +
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				xcp->regs[MIPSInst_FT(ir)]);

1419
			MIPS_FPU_EMU_INC_STATS(loads);
1420
			if (!access_ok(VERIFY_READ, va, sizeof(u32))) {
1421
				MIPS_FPU_EMU_INC_STATS(errors);
1422
				*fault_addr = va;
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				return SIGBUS;
			}
1425 1426 1427 1428 1429
			if (__get_user(val, va)) {
				MIPS_FPU_EMU_INC_STATS(errors);
				*fault_addr = va;
				return SIGSEGV;
			}
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			SITOREG(val, MIPSInst_FD(ir));
			break;

		case swxc1_op:
1434
			va = (void __user *) (xcp->regs[MIPSInst_FR(ir)] +
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				xcp->regs[MIPSInst_FT(ir)]);

1437
			MIPS_FPU_EMU_INC_STATS(stores);
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			SIFROMREG(val, MIPSInst_FS(ir));
1440
			if (!access_ok(VERIFY_WRITE, va, sizeof(u32))) {
1441
				MIPS_FPU_EMU_INC_STATS(errors);
1442
				*fault_addr = va;
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				return SIGBUS;
			}
1445 1446 1447 1448 1449
			if (put_user(val, va)) {
				MIPS_FPU_EMU_INC_STATS(errors);
				*fault_addr = va;
				return SIGSEGV;
			}
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1450 1451 1452 1453 1454 1455 1456 1457 1458 1459 1460 1461 1462 1463 1464 1465 1466 1467 1468 1469 1470 1471 1472 1473 1474 1475 1476 1477 1478 1479 1480 1481 1482 1483 1484 1485 1486 1487 1488 1489 1490 1491 1492 1493 1494 1495 1496 1497
			break;

		case madd_s_op:
			handler = fpemu_sp_madd;
			goto scoptop;
		case msub_s_op:
			handler = fpemu_sp_msub;
			goto scoptop;
		case nmadd_s_op:
			handler = fpemu_sp_nmadd;
			goto scoptop;
		case nmsub_s_op:
			handler = fpemu_sp_nmsub;
			goto scoptop;

		      scoptop:
			SPFROMREG(fr, MIPSInst_FR(ir));
			SPFROMREG(fs, MIPSInst_FS(ir));
			SPFROMREG(ft, MIPSInst_FT(ir));
			fd = (*handler) (fr, fs, ft);
			SPTOREG(fd, MIPSInst_FD(ir));

		      copcsr:
			if (ieee754_cxtest(IEEE754_INEXACT))
				rcsr |= FPU_CSR_INE_X | FPU_CSR_INE_S;
			if (ieee754_cxtest(IEEE754_UNDERFLOW))
				rcsr |= FPU_CSR_UDF_X | FPU_CSR_UDF_S;
			if (ieee754_cxtest(IEEE754_OVERFLOW))
				rcsr |= FPU_CSR_OVF_X | FPU_CSR_OVF_S;
			if (ieee754_cxtest(IEEE754_INVALID_OPERATION))
				rcsr |= FPU_CSR_INV_X | FPU_CSR_INV_S;

			ctx->fcr31 = (ctx->fcr31 & ~FPU_CSR_ALL_X) | rcsr;
			if ((ctx->fcr31 >> 5) & ctx->fcr31 & FPU_CSR_ALL_E) {
				/*printk ("SIGFPE: fpu csr = %08x\n",
				   ctx->fcr31); */
				return SIGFPE;
			}

			break;

		default:
			return SIGILL;
		}
		break;
	}

	case d_fmt:{		/* 1 */
1498 1499
		union ieee754dp(*handler) (union ieee754dp, union ieee754dp, union ieee754dp);
		union ieee754dp fd, fr, fs, ft;
1500
		u64 __user *va;
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1501 1502 1503 1504
		u64 val;

		switch (MIPSInst_FUNC(ir)) {
		case ldxc1_op:
1505
			va = (void __user *) (xcp->regs[MIPSInst_FR(ir)] +
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				xcp->regs[MIPSInst_FT(ir)]);

1508
			MIPS_FPU_EMU_INC_STATS(loads);
1509
			if (!access_ok(VERIFY_READ, va, sizeof(u64))) {
1510
				MIPS_FPU_EMU_INC_STATS(errors);
1511
				*fault_addr = va;
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1512 1513
				return SIGBUS;
			}
1514 1515 1516 1517 1518
			if (__get_user(val, va)) {
				MIPS_FPU_EMU_INC_STATS(errors);
				*fault_addr = va;
				return SIGSEGV;
			}
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			DITOREG(val, MIPSInst_FD(ir));
			break;

		case sdxc1_op:
1523
			va = (void __user *) (xcp->regs[MIPSInst_FR(ir)] +
L
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1524 1525
				xcp->regs[MIPSInst_FT(ir)]);

1526
			MIPS_FPU_EMU_INC_STATS(stores);
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1527
			DIFROMREG(val, MIPSInst_FS(ir));
1528
			if (!access_ok(VERIFY_WRITE, va, sizeof(u64))) {
1529
				MIPS_FPU_EMU_INC_STATS(errors);
1530
				*fault_addr = va;
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Linus Torvalds 已提交
1531 1532
				return SIGBUS;
			}
1533 1534 1535 1536 1537
			if (__put_user(val, va)) {
				MIPS_FPU_EMU_INC_STATS(errors);
				*fault_addr = va;
				return SIGSEGV;
			}
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1538 1539 1540 1541 1542 1543 1544 1545 1546 1547 1548 1549 1550 1551 1552 1553 1554 1555 1556 1557 1558 1559 1560 1561 1562 1563 1564 1565 1566
			break;

		case madd_d_op:
			handler = fpemu_dp_madd;
			goto dcoptop;
		case msub_d_op:
			handler = fpemu_dp_msub;
			goto dcoptop;
		case nmadd_d_op:
			handler = fpemu_dp_nmadd;
			goto dcoptop;
		case nmsub_d_op:
			handler = fpemu_dp_nmsub;
			goto dcoptop;

		      dcoptop:
			DPFROMREG(fr, MIPSInst_FR(ir));
			DPFROMREG(fs, MIPSInst_FS(ir));
			DPFROMREG(ft, MIPSInst_FT(ir));
			fd = (*handler) (fr, fs, ft);
			DPTOREG(fd, MIPSInst_FD(ir));
			goto copcsr;

		default:
			return SIGILL;
		}
		break;
	}

1567 1568
	case 0x3:
		if (MIPSInst_FUNC(ir) != pfetch_op)
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1569
			return SIGILL;
1570

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		/* ignore prefx operation */
		break;

	default:
		return SIGILL;
	}

	return 0;
}



/*
 * Emulate a single COP1 arithmetic instruction.
 */
1586
static int fpu_emu(struct pt_regs *xcp, struct mips_fpu_struct *ctx,
L
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1587 1588 1589 1590 1591 1592
	mips_instruction ir)
{
	int rfmt;		/* resulting format */
	unsigned rcsr = 0;	/* resulting csr */
	unsigned cond;
	union {
1593 1594
		union ieee754dp d;
		union ieee754sp s;
L
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		int w;
		s64 l;
	} rv;			/* resulting value */

1599
	MIPS_FPU_EMU_INC_STATS(cp1ops);
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	switch (rfmt = (MIPSInst_FFMT(ir) & 0xf)) {
	case s_fmt:{		/* 0 */
		union {
1603 1604
			union ieee754sp(*b) (union ieee754sp, union ieee754sp);
			union ieee754sp(*u) (union ieee754sp);
L
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1605 1606 1607 1608 1609 1610 1611 1612 1613 1614 1615 1616 1617 1618 1619 1620 1621 1622 1623
		} handler;

		switch (MIPSInst_FUNC(ir)) {
			/* binary ops */
		case fadd_op:
			handler.b = ieee754sp_add;
			goto scopbop;
		case fsub_op:
			handler.b = ieee754sp_sub;
			goto scopbop;
		case fmul_op:
			handler.b = ieee754sp_mul;
			goto scopbop;
		case fdiv_op:
			handler.b = ieee754sp_div;
			goto scopbop;

			/* unary  ops */
		case fsqrt_op:
1624 1625 1626
			if (!cpu_has_mips_4_5_r)
				return SIGILL;

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			handler.u = ieee754sp_sqrt;
			goto scopuop;
1629 1630 1631 1632 1633
		/*
		 * Note that on some MIPS IV implementations such as the
		 * R5000 and R8000 the FSQRT and FRECIP instructions do not
		 * achieve full IEEE-754 accuracy - however this emulator does.
		 */
L
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1634
		case frsqrt_op:
1635 1636 1637
			if (!cpu_has_mips_4_5_r2)
				return SIGILL;

L
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1638 1639 1640
			handler.u = fpemu_sp_rsqrt;
			goto scopuop;
		case frecip_op:
1641 1642 1643
			if (!cpu_has_mips_4_5_r2)
				return SIGILL;

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			handler.u = fpemu_sp_recip;
			goto scopuop;
1646

L
Linus Torvalds 已提交
1647
		case fmovc_op:
1648 1649 1650
			if (!cpu_has_mips_4_5_r)
				return SIGILL;

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1651 1652 1653 1654 1655 1656 1657
			cond = fpucondbit[MIPSInst_FT(ir) >> 2];
			if (((ctx->fcr31 & cond) != 0) !=
				((MIPSInst_FT(ir) & 1) != 0))
				return 0;
			SPFROMREG(rv.s, MIPSInst_FS(ir));
			break;
		case fmovz_op:
1658 1659 1660
			if (!cpu_has_mips_4_5_r)
				return SIGILL;

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1661 1662 1663 1664 1665
			if (xcp->regs[MIPSInst_FT(ir)] != 0)
				return 0;
			SPFROMREG(rv.s, MIPSInst_FS(ir));
			break;
		case fmovn_op:
1666 1667 1668
			if (!cpu_has_mips_4_5_r)
				return SIGILL;

L
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1669 1670 1671 1672 1673 1674 1675 1676 1677 1678 1679 1680 1681 1682 1683 1684 1685 1686
			if (xcp->regs[MIPSInst_FT(ir)] == 0)
				return 0;
			SPFROMREG(rv.s, MIPSInst_FS(ir));
			break;
		case fabs_op:
			handler.u = ieee754sp_abs;
			goto scopuop;
		case fneg_op:
			handler.u = ieee754sp_neg;
			goto scopuop;
		case fmov_op:
			/* an easy one */
			SPFROMREG(rv.s, MIPSInst_FS(ir));
			goto copcsr;

			/* binary op on handler */
		      scopbop:
			{
1687
				union ieee754sp fs, ft;
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1688 1689 1690 1691 1692 1693 1694 1695 1696

				SPFROMREG(fs, MIPSInst_FS(ir));
				SPFROMREG(ft, MIPSInst_FT(ir));

				rv.s = (*handler.b) (fs, ft);
				goto copcsr;
			}
		      scopuop:
			{
1697
				union ieee754sp fs;
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1698 1699 1700 1701 1702 1703 1704 1705 1706 1707 1708 1709 1710 1711 1712 1713 1714 1715 1716 1717 1718 1719

				SPFROMREG(fs, MIPSInst_FS(ir));
				rv.s = (*handler.u) (fs);
				goto copcsr;
			}
		      copcsr:
			if (ieee754_cxtest(IEEE754_INEXACT))
				rcsr |= FPU_CSR_INE_X | FPU_CSR_INE_S;
			if (ieee754_cxtest(IEEE754_UNDERFLOW))
				rcsr |= FPU_CSR_UDF_X | FPU_CSR_UDF_S;
			if (ieee754_cxtest(IEEE754_OVERFLOW))
				rcsr |= FPU_CSR_OVF_X | FPU_CSR_OVF_S;
			if (ieee754_cxtest(IEEE754_ZERO_DIVIDE))
				rcsr |= FPU_CSR_DIV_X | FPU_CSR_DIV_S;
			if (ieee754_cxtest(IEEE754_INVALID_OPERATION))
				rcsr |= FPU_CSR_INV_X | FPU_CSR_INV_S;
			break;

			/* unary conv ops */
		case fcvts_op:
			return SIGILL;	/* not defined */
		case fcvtd_op:{
1720
			union ieee754sp fs;
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Linus Torvalds 已提交
1721 1722 1723 1724 1725 1726 1727

			SPFROMREG(fs, MIPSInst_FS(ir));
			rv.d = ieee754dp_fsp(fs);
			rfmt = d_fmt;
			goto copcsr;
		}
		case fcvtw_op:{
1728
			union ieee754sp fs;
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Linus Torvalds 已提交
1729 1730 1731 1732 1733 1734 1735 1736 1737 1738 1739 1740

			SPFROMREG(fs, MIPSInst_FS(ir));
			rv.w = ieee754sp_tint(fs);
			rfmt = w_fmt;
			goto copcsr;
		}

		case fround_op:
		case ftrunc_op:
		case fceil_op:
		case ffloor_op:{
			unsigned int oldrm = ieee754_csr.rm;
1741
			union ieee754sp fs;
L
Linus Torvalds 已提交
1742

1743 1744 1745
			if (!cpu_has_mips_2_3_4_5 && !cpu_has_mips64)
				return SIGILL;

L
Linus Torvalds 已提交
1746
			SPFROMREG(fs, MIPSInst_FS(ir));
1747
			ieee754_csr.rm = ieee_rm[modeindex(MIPSInst_FUNC(ir))];
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Linus Torvalds 已提交
1748 1749 1750 1751 1752 1753 1754
			rv.w = ieee754sp_tint(fs);
			ieee754_csr.rm = oldrm;
			rfmt = w_fmt;
			goto copcsr;
		}

		case fcvtl_op:{
1755
			union ieee754sp fs;
L
Linus Torvalds 已提交
1756

1757 1758 1759
			if (!cpu_has_mips_3_4_5 && !cpu_has_mips64)
				return SIGILL;

L
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1760 1761 1762 1763 1764 1765 1766 1767 1768 1769 1770
			SPFROMREG(fs, MIPSInst_FS(ir));
			rv.l = ieee754sp_tlong(fs);
			rfmt = l_fmt;
			goto copcsr;
		}

		case froundl_op:
		case ftruncl_op:
		case fceill_op:
		case ffloorl_op:{
			unsigned int oldrm = ieee754_csr.rm;
1771
			union ieee754sp fs;
L
Linus Torvalds 已提交
1772

1773 1774 1775
			if (!cpu_has_mips_3_4_5 && !cpu_has_mips64)
				return SIGILL;

L
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1776
			SPFROMREG(fs, MIPSInst_FS(ir));
1777
			ieee754_csr.rm = ieee_rm[modeindex(MIPSInst_FUNC(ir))];
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Linus Torvalds 已提交
1778 1779 1780 1781 1782 1783 1784 1785 1786
			rv.l = ieee754sp_tlong(fs);
			ieee754_csr.rm = oldrm;
			rfmt = l_fmt;
			goto copcsr;
		}

		default:
			if (MIPSInst_FUNC(ir) >= fcmp_op) {
				unsigned cmpop = MIPSInst_FUNC(ir) - fcmp_op;
1787
				union ieee754sp fs, ft;
L
Linus Torvalds 已提交
1788 1789 1790 1791 1792 1793 1794 1795 1796 1797 1798 1799 1800 1801 1802 1803 1804 1805 1806 1807 1808 1809 1810

				SPFROMREG(fs, MIPSInst_FS(ir));
				SPFROMREG(ft, MIPSInst_FT(ir));
				rv.w = ieee754sp_cmp(fs, ft,
					cmptab[cmpop & 0x7], cmpop & 0x8);
				rfmt = -1;
				if ((cmpop & 0x8) && ieee754_cxtest
					(IEEE754_INVALID_OPERATION))
					rcsr = FPU_CSR_INV_X | FPU_CSR_INV_S;
				else
					goto copcsr;

			}
			else {
				return SIGILL;
			}
			break;
		}
		break;
	}

	case d_fmt:{
		union {
1811 1812
			union ieee754dp(*b) (union ieee754dp, union ieee754dp);
			union ieee754dp(*u) (union ieee754dp);
L
Linus Torvalds 已提交
1813 1814 1815 1816 1817 1818 1819 1820 1821 1822 1823 1824 1825 1826 1827 1828 1829 1830 1831
		} handler;

		switch (MIPSInst_FUNC(ir)) {
			/* binary ops */
		case fadd_op:
			handler.b = ieee754dp_add;
			goto dcopbop;
		case fsub_op:
			handler.b = ieee754dp_sub;
			goto dcopbop;
		case fmul_op:
			handler.b = ieee754dp_mul;
			goto dcopbop;
		case fdiv_op:
			handler.b = ieee754dp_div;
			goto dcopbop;

			/* unary  ops */
		case fsqrt_op:
1832 1833 1834
			if (!cpu_has_mips_2_3_4_5_r)
				return SIGILL;

L
Linus Torvalds 已提交
1835 1836
			handler.u = ieee754dp_sqrt;
			goto dcopuop;
1837 1838 1839 1840 1841
		/*
		 * Note that on some MIPS IV implementations such as the
		 * R5000 and R8000 the FSQRT and FRECIP instructions do not
		 * achieve full IEEE-754 accuracy - however this emulator does.
		 */
L
Linus Torvalds 已提交
1842
		case frsqrt_op:
1843 1844 1845
			if (!cpu_has_mips_4_5_r2)
				return SIGILL;

L
Linus Torvalds 已提交
1846 1847 1848
			handler.u = fpemu_dp_rsqrt;
			goto dcopuop;
		case frecip_op:
1849 1850 1851
			if (!cpu_has_mips_4_5_r2)
				return SIGILL;

L
Linus Torvalds 已提交
1852 1853 1854
			handler.u = fpemu_dp_recip;
			goto dcopuop;
		case fmovc_op:
1855 1856 1857
			if (!cpu_has_mips_4_5_r)
				return SIGILL;

L
Linus Torvalds 已提交
1858 1859 1860 1861 1862 1863 1864
			cond = fpucondbit[MIPSInst_FT(ir) >> 2];
			if (((ctx->fcr31 & cond) != 0) !=
				((MIPSInst_FT(ir) & 1) != 0))
				return 0;
			DPFROMREG(rv.d, MIPSInst_FS(ir));
			break;
		case fmovz_op:
1865 1866 1867
			if (!cpu_has_mips_4_5_r)
				return SIGILL;

L
Linus Torvalds 已提交
1868 1869 1870 1871 1872
			if (xcp->regs[MIPSInst_FT(ir)] != 0)
				return 0;
			DPFROMREG(rv.d, MIPSInst_FS(ir));
			break;
		case fmovn_op:
1873 1874 1875
			if (!cpu_has_mips_4_5_r)
				return SIGILL;

L
Linus Torvalds 已提交
1876 1877 1878 1879 1880 1881 1882 1883 1884 1885 1886 1887 1888 1889 1890 1891 1892 1893 1894
			if (xcp->regs[MIPSInst_FT(ir)] == 0)
				return 0;
			DPFROMREG(rv.d, MIPSInst_FS(ir));
			break;
		case fabs_op:
			handler.u = ieee754dp_abs;
			goto dcopuop;

		case fneg_op:
			handler.u = ieee754dp_neg;
			goto dcopuop;

		case fmov_op:
			/* an easy one */
			DPFROMREG(rv.d, MIPSInst_FS(ir));
			goto copcsr;

			/* binary op on handler */
		      dcopbop:{
1895
				union ieee754dp fs, ft;
L
Linus Torvalds 已提交
1896 1897 1898 1899 1900 1901 1902 1903

				DPFROMREG(fs, MIPSInst_FS(ir));
				DPFROMREG(ft, MIPSInst_FT(ir));

				rv.d = (*handler.b) (fs, ft);
				goto copcsr;
			}
		      dcopuop:{
1904
				union ieee754dp fs;
L
Linus Torvalds 已提交
1905 1906 1907 1908 1909 1910 1911 1912

				DPFROMREG(fs, MIPSInst_FS(ir));
				rv.d = (*handler.u) (fs);
				goto copcsr;
			}

			/* unary conv ops */
		case fcvts_op:{
1913
			union ieee754dp fs;
L
Linus Torvalds 已提交
1914 1915 1916 1917 1918 1919 1920 1921 1922 1923

			DPFROMREG(fs, MIPSInst_FS(ir));
			rv.s = ieee754sp_fdp(fs);
			rfmt = s_fmt;
			goto copcsr;
		}
		case fcvtd_op:
			return SIGILL;	/* not defined */

		case fcvtw_op:{
1924
			union ieee754dp fs;
L
Linus Torvalds 已提交
1925 1926 1927 1928 1929 1930 1931 1932 1933 1934 1935 1936

			DPFROMREG(fs, MIPSInst_FS(ir));
			rv.w = ieee754dp_tint(fs);	/* wrong */
			rfmt = w_fmt;
			goto copcsr;
		}

		case fround_op:
		case ftrunc_op:
		case fceil_op:
		case ffloor_op:{
			unsigned int oldrm = ieee754_csr.rm;
1937
			union ieee754dp fs;
L
Linus Torvalds 已提交
1938

1939 1940 1941
			if (!cpu_has_mips_2_3_4_5_r)
				return SIGILL;

L
Linus Torvalds 已提交
1942
			DPFROMREG(fs, MIPSInst_FS(ir));
1943
			ieee754_csr.rm = ieee_rm[modeindex(MIPSInst_FUNC(ir))];
L
Linus Torvalds 已提交
1944 1945 1946 1947 1948 1949 1950
			rv.w = ieee754dp_tint(fs);
			ieee754_csr.rm = oldrm;
			rfmt = w_fmt;
			goto copcsr;
		}

		case fcvtl_op:{
1951
			union ieee754dp fs;
L
Linus Torvalds 已提交
1952

1953 1954 1955
			if (!cpu_has_mips_3_4_5 && !cpu_has_mips64)
				return SIGILL;

L
Linus Torvalds 已提交
1956 1957 1958 1959 1960 1961 1962 1963 1964 1965 1966
			DPFROMREG(fs, MIPSInst_FS(ir));
			rv.l = ieee754dp_tlong(fs);
			rfmt = l_fmt;
			goto copcsr;
		}

		case froundl_op:
		case ftruncl_op:
		case fceill_op:
		case ffloorl_op:{
			unsigned int oldrm = ieee754_csr.rm;
1967
			union ieee754dp fs;
L
Linus Torvalds 已提交
1968

1969 1970 1971
			if (!cpu_has_mips_3_4_5 && !cpu_has_mips64)
				return SIGILL;

L
Linus Torvalds 已提交
1972
			DPFROMREG(fs, MIPSInst_FS(ir));
1973
			ieee754_csr.rm = ieee_rm[modeindex(MIPSInst_FUNC(ir))];
L
Linus Torvalds 已提交
1974 1975 1976 1977 1978 1979 1980 1981 1982
			rv.l = ieee754dp_tlong(fs);
			ieee754_csr.rm = oldrm;
			rfmt = l_fmt;
			goto copcsr;
		}

		default:
			if (MIPSInst_FUNC(ir) >= fcmp_op) {
				unsigned cmpop = MIPSInst_FUNC(ir) - fcmp_op;
1983
				union ieee754dp fs, ft;
L
Linus Torvalds 已提交
1984 1985 1986 1987 1988 1989 1990 1991 1992 1993 1994 1995 1996 1997 1998 1999 2000 2001 2002 2003 2004 2005 2006 2007

				DPFROMREG(fs, MIPSInst_FS(ir));
				DPFROMREG(ft, MIPSInst_FT(ir));
				rv.w = ieee754dp_cmp(fs, ft,
					cmptab[cmpop & 0x7], cmpop & 0x8);
				rfmt = -1;
				if ((cmpop & 0x8)
					&&
					ieee754_cxtest
					(IEEE754_INVALID_OPERATION))
					rcsr = FPU_CSR_INV_X | FPU_CSR_INV_S;
				else
					goto copcsr;

			}
			else {
				return SIGILL;
			}
			break;
		}
		break;
	}

	case w_fmt:{
2008
		union ieee754sp fs;
L
Linus Torvalds 已提交
2009 2010 2011 2012 2013 2014 2015 2016 2017 2018 2019 2020 2021 2022 2023 2024 2025 2026 2027 2028 2029

		switch (MIPSInst_FUNC(ir)) {
		case fcvts_op:
			/* convert word to single precision real */
			SPFROMREG(fs, MIPSInst_FS(ir));
			rv.s = ieee754sp_fint(fs.bits);
			rfmt = s_fmt;
			goto copcsr;
		case fcvtd_op:
			/* convert word to double precision real */
			SPFROMREG(fs, MIPSInst_FS(ir));
			rv.d = ieee754dp_fint(fs.bits);
			rfmt = d_fmt;
			goto copcsr;
		default:
			return SIGILL;
		}
		break;
	}

	case l_fmt:{
P
Paul Burton 已提交
2030
		u64 bits;
2031 2032 2033 2034

		if (!cpu_has_mips_3_4_5 && !cpu_has_mips64)
			return SIGILL;

P
Paul Burton 已提交
2035 2036
		DIFROMREG(bits, MIPSInst_FS(ir));

L
Linus Torvalds 已提交
2037 2038 2039
		switch (MIPSInst_FUNC(ir)) {
		case fcvts_op:
			/* convert long to single precision real */
P
Paul Burton 已提交
2040
			rv.s = ieee754sp_flong(bits);
L
Linus Torvalds 已提交
2041 2042 2043 2044
			rfmt = s_fmt;
			goto copcsr;
		case fcvtd_op:
			/* convert long to double precision real */
P
Paul Burton 已提交
2045
			rv.d = ieee754dp_flong(bits);
L
Linus Torvalds 已提交
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
			rfmt = d_fmt;
			goto copcsr;
		default:
			return SIGILL;
		}
		break;
	}

	default:
		return SIGILL;
	}

	/*
	 * Update the fpu CSR register for this operation.
	 * If an exception is required, generate a tidy SIGFPE exception,
	 * without updating the result register.
	 * Note: cause exception bits do not accumulate, they are rewritten
	 * for each op; only the flag/sticky bits accumulate.
	 */
	ctx->fcr31 = (ctx->fcr31 & ~FPU_CSR_ALL_X) | rcsr;
	if ((ctx->fcr31 >> 5) & ctx->fcr31 & FPU_CSR_ALL_E) {
		/*printk ("SIGFPE: fpu csr = %08x\n",ctx->fcr31); */
		return SIGFPE;
	}

	/*
	 * Now we can safely write the result back to the register file.
	 */
	switch (rfmt) {
2075 2076 2077 2078 2079 2080 2081
		unsigned int cbit;
	case -1:

		if (cpu_has_mips_4_5_r)
			cbit = fpucondbit[MIPSInst_RT(ir) >> 2];
		else
			cbit = FPU_CSR_COND;
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		if (rv.w)
2083
			ctx->fcr31 |= cbit;
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		else
2085
			ctx->fcr31 &= ~cbit;
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		break;
2087

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	case d_fmt:
		DPTOREG(rv.d, MIPSInst_FD(ir));
		break;
	case s_fmt:
		SPTOREG(rv.s, MIPSInst_FD(ir));
		break;
	case w_fmt:
		SITOREG(rv.w, MIPSInst_FD(ir));
		break;
	case l_fmt:
2098 2099 2100
		if (!cpu_has_mips_3_4_5 && !cpu_has_mips64)
			return SIGILL;

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		DITOREG(rv.l, MIPSInst_FD(ir));
		break;
	default:
		return SIGILL;
	}

	return 0;
}

2110
int fpu_emulator_cop1Handler(struct pt_regs *xcp, struct mips_fpu_struct *ctx,
2111
	int has_fpu, void *__user *fault_addr)
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{
2113
	unsigned long oldepc, prevepc;
2114 2115 2116
	struct mm_decoded_insn dec_insn;
	u16 instr[4];
	u16 *instr_ptr;
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	int sig = 0;

	oldepc = xcp->cp0_epc;
	do {
		prevepc = xcp->cp0_epc;

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 2165 2166 2167 2168 2169 2170 2171 2172 2173 2174 2175 2176
		if (get_isa16_mode(prevepc) && cpu_has_mmips) {
			/*
			 * Get next 2 microMIPS instructions and convert them
			 * into 32-bit instructions.
			 */
			if ((get_user(instr[0], (u16 __user *)msk_isa16_mode(xcp->cp0_epc))) ||
			    (get_user(instr[1], (u16 __user *)msk_isa16_mode(xcp->cp0_epc + 2))) ||
			    (get_user(instr[2], (u16 __user *)msk_isa16_mode(xcp->cp0_epc + 4))) ||
			    (get_user(instr[3], (u16 __user *)msk_isa16_mode(xcp->cp0_epc + 6)))) {
				MIPS_FPU_EMU_INC_STATS(errors);
				return SIGBUS;
			}
			instr_ptr = instr;

			/* Get first instruction. */
			if (mm_insn_16bit(*instr_ptr)) {
				/* Duplicate the half-word. */
				dec_insn.insn = (*instr_ptr << 16) |
					(*instr_ptr);
				/* 16-bit instruction. */
				dec_insn.pc_inc = 2;
				instr_ptr += 1;
			} else {
				dec_insn.insn = (*instr_ptr << 16) |
					*(instr_ptr+1);
				/* 32-bit instruction. */
				dec_insn.pc_inc = 4;
				instr_ptr += 2;
			}
			/* Get second instruction. */
			if (mm_insn_16bit(*instr_ptr)) {
				/* Duplicate the half-word. */
				dec_insn.next_insn = (*instr_ptr << 16) |
					(*instr_ptr);
				/* 16-bit instruction. */
				dec_insn.next_pc_inc = 2;
			} else {
				dec_insn.next_insn = (*instr_ptr << 16) |
					*(instr_ptr+1);
				/* 32-bit instruction. */
				dec_insn.next_pc_inc = 4;
			}
			dec_insn.micro_mips_mode = 1;
		} else {
			if ((get_user(dec_insn.insn,
			    (mips_instruction __user *) xcp->cp0_epc)) ||
			    (get_user(dec_insn.next_insn,
			    (mips_instruction __user *)(xcp->cp0_epc+4)))) {
				MIPS_FPU_EMU_INC_STATS(errors);
				return SIGBUS;
			}
			dec_insn.pc_inc = 4;
			dec_insn.next_pc_inc = 4;
			dec_insn.micro_mips_mode = 0;
2177
		}
2178 2179 2180 2181 2182

		if ((dec_insn.insn == 0) ||
		   ((dec_insn.pc_inc == 2) &&
		   ((dec_insn.insn & 0xffff) == MM_NOP16)))
			xcp->cp0_epc += dec_insn.pc_inc;	/* Skip NOPs */
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		else {
2184 2185
			/*
			 * The 'ieee754_csr' is an alias of
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			 * ctx->fcr31.	No need to copy ctx->fcr31 to
			 * ieee754_csr.	 But ieee754_csr.rm is ieee
2188 2189 2190 2191
			 * library modes. (not mips rounding mode)
			 */
			/* convert to ieee library modes */
			ieee754_csr.rm = ieee_rm[ieee754_csr.rm];
2192
			sig = cop1Emulate(xcp, ctx, dec_insn, fault_addr);
2193 2194
			/* revert to mips rounding mode */
			ieee754_csr.rm = mips_rm[ieee754_csr.rm];
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		}

2197
		if (has_fpu)
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			break;
		if (sig)
			break;

		cond_resched();
	} while (xcp->cp0_epc > prevepc);

	/* SIGILL indicates a non-fpu instruction */
	if (sig == SIGILL && xcp->cp0_epc != oldepc)
		/* but if epc has advanced, then ignore it */
		sig = 0;

	return sig;
}