jit.c 57.9 KB
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/*
J
Jiong Wang 已提交
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 * Copyright (C) 2016-2017 Netronome Systems, Inc.
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 *
 * This software is dual licensed under the GNU General License Version 2,
 * June 1991 as shown in the file COPYING in the top-level directory of this
 * source tree or the BSD 2-Clause License provided below.  You have the
 * option to license this software under the complete terms of either license.
 *
 * The BSD 2-Clause License:
 *
 *     Redistribution and use in source and binary forms, with or
 *     without modification, are permitted provided that the following
 *     conditions are met:
 *
 *      1. Redistributions of source code must retain the above
 *         copyright notice, this list of conditions and the following
 *         disclaimer.
 *
 *      2. Redistributions in binary form must reproduce the above
 *         copyright notice, this list of conditions and the following
 *         disclaimer in the documentation and/or other materials
 *         provided with the distribution.
 *
 * THE SOFTWARE IS PROVIDED "AS IS", WITHOUT WARRANTY OF ANY KIND,
 * EXPRESS OR IMPLIED, INCLUDING BUT NOT LIMITED TO THE WARRANTIES OF
 * MERCHANTABILITY, FITNESS FOR A PARTICULAR PURPOSE AND
 * NONINFRINGEMENT. IN NO EVENT SHALL THE AUTHORS OR COPYRIGHT HOLDERS
 * BE LIABLE FOR ANY CLAIM, DAMAGES OR OTHER LIABILITY, WHETHER IN AN
 * ACTION OF CONTRACT, TORT OR OTHERWISE, ARISING FROM, OUT OF OR IN
 * CONNECTION WITH THE SOFTWARE OR THE USE OR OTHER DEALINGS IN THE
 * SOFTWARE.
 */

#define pr_fmt(fmt)	"NFP net bpf: " fmt

#include <linux/kernel.h>
#include <linux/bpf.h>
#include <linux/filter.h>
#include <linux/pkt_cls.h>
#include <linux/unistd.h>

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#include "main.h"
#include "../nfp_asm.h"
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/* --- NFP prog --- */
/* Foreach "multiple" entries macros provide pos and next<n> pointers.
 * It's safe to modify the next pointers (but not pos).
 */
#define nfp_for_each_insn_walk2(nfp_prog, pos, next)			\
	for (pos = list_first_entry(&(nfp_prog)->insns, typeof(*pos), l), \
	     next = list_next_entry(pos, l);			\
	     &(nfp_prog)->insns != &pos->l &&			\
	     &(nfp_prog)->insns != &next->l;			\
	     pos = nfp_meta_next(pos),				\
	     next = nfp_meta_next(pos))

#define nfp_for_each_insn_walk3(nfp_prog, pos, next, next2)		\
	for (pos = list_first_entry(&(nfp_prog)->insns, typeof(*pos), l), \
	     next = list_next_entry(pos, l),			\
	     next2 = list_next_entry(next, l);			\
	     &(nfp_prog)->insns != &pos->l &&			\
	     &(nfp_prog)->insns != &next->l &&			\
	     &(nfp_prog)->insns != &next2->l;			\
	     pos = nfp_meta_next(pos),				\
	     next = nfp_meta_next(pos),				\
	     next2 = nfp_meta_next(next))

static bool
nfp_meta_has_prev(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return meta->l.prev != &nfp_prog->insns;
}

static void nfp_prog_push(struct nfp_prog *nfp_prog, u64 insn)
{
	if (nfp_prog->__prog_alloc_len == nfp_prog->prog_len) {
		nfp_prog->error = -ENOSPC;
		return;
	}

	nfp_prog->prog[nfp_prog->prog_len] = insn;
	nfp_prog->prog_len++;
}

static unsigned int nfp_prog_current_offset(struct nfp_prog *nfp_prog)
{
	return nfp_prog->start_off + nfp_prog->prog_len;
}

static unsigned int
nfp_prog_offset_to_index(struct nfp_prog *nfp_prog, unsigned int offset)
{
	return offset - nfp_prog->start_off;
}

/* --- Emitters --- */
static void
__emit_cmd(struct nfp_prog *nfp_prog, enum cmd_tgt_map op,
	   u8 mode, u8 xfer, u8 areg, u8 breg, u8 size, bool sync)
{
	enum cmd_ctx_swap ctx;
	u64 insn;

	if (sync)
		ctx = CMD_CTX_SWAP;
	else
		ctx = CMD_CTX_NO_SWAP;

	insn =	FIELD_PREP(OP_CMD_A_SRC, areg) |
		FIELD_PREP(OP_CMD_CTX, ctx) |
		FIELD_PREP(OP_CMD_B_SRC, breg) |
		FIELD_PREP(OP_CMD_TOKEN, cmd_tgt_act[op].token) |
		FIELD_PREP(OP_CMD_XFER, xfer) |
		FIELD_PREP(OP_CMD_CNT, size) |
		FIELD_PREP(OP_CMD_SIG, sync) |
		FIELD_PREP(OP_CMD_TGT_CMD, cmd_tgt_act[op].tgt_cmd) |
		FIELD_PREP(OP_CMD_MODE, mode);

	nfp_prog_push(nfp_prog, insn);
}

static void
emit_cmd(struct nfp_prog *nfp_prog, enum cmd_tgt_map op,
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	 u8 mode, u8 xfer, swreg lreg, swreg rreg, u8 size, bool sync)
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{
	struct nfp_insn_re_regs reg;
	int err;

	err = swreg_to_restricted(reg_none(), lreg, rreg, &reg, false);
	if (err) {
		nfp_prog->error = err;
		return;
	}
	if (reg.swap) {
		pr_err("cmd can't swap arguments\n");
		nfp_prog->error = -EFAULT;
		return;
	}
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	if (reg.dst_lmextn || reg.src_lmextn) {
		pr_err("cmd can't use LMextn\n");
		nfp_prog->error = -EFAULT;
		return;
	}
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	__emit_cmd(nfp_prog, op, mode, xfer, reg.areg, reg.breg, size, sync);
}

static void
__emit_br(struct nfp_prog *nfp_prog, enum br_mask mask, enum br_ev_pip ev_pip,
	  enum br_ctx_signal_state css, u16 addr, u8 defer)
{
	u16 addr_lo, addr_hi;
	u64 insn;

	addr_lo = addr & (OP_BR_ADDR_LO >> __bf_shf(OP_BR_ADDR_LO));
	addr_hi = addr != addr_lo;

	insn = OP_BR_BASE |
		FIELD_PREP(OP_BR_MASK, mask) |
		FIELD_PREP(OP_BR_EV_PIP, ev_pip) |
		FIELD_PREP(OP_BR_CSS, css) |
		FIELD_PREP(OP_BR_DEFBR, defer) |
		FIELD_PREP(OP_BR_ADDR_LO, addr_lo) |
		FIELD_PREP(OP_BR_ADDR_HI, addr_hi);

	nfp_prog_push(nfp_prog, insn);
}

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static void emit_br_def(struct nfp_prog *nfp_prog, u16 addr, u8 defer)
{
	if (defer > 2) {
		pr_err("BUG: branch defer out of bounds %d\n", defer);
		nfp_prog->error = -EFAULT;
		return;
	}
	__emit_br(nfp_prog, BR_UNC, BR_EV_PIP_UNCOND, BR_CSS_NONE, addr, defer);
}

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static void
emit_br(struct nfp_prog *nfp_prog, enum br_mask mask, u16 addr, u8 defer)
{
	__emit_br(nfp_prog, mask,
		  mask != BR_UNC ? BR_EV_PIP_COND : BR_EV_PIP_UNCOND,
		  BR_CSS_NONE, addr, defer);
}

static void
__emit_immed(struct nfp_prog *nfp_prog, u16 areg, u16 breg, u16 imm_hi,
	     enum immed_width width, bool invert,
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	     enum immed_shift shift, bool wr_both,
	     bool dst_lmextn, bool src_lmextn)
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{
	u64 insn;

	insn = OP_IMMED_BASE |
		FIELD_PREP(OP_IMMED_A_SRC, areg) |
		FIELD_PREP(OP_IMMED_B_SRC, breg) |
		FIELD_PREP(OP_IMMED_IMM, imm_hi) |
		FIELD_PREP(OP_IMMED_WIDTH, width) |
		FIELD_PREP(OP_IMMED_INV, invert) |
		FIELD_PREP(OP_IMMED_SHIFT, shift) |
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		FIELD_PREP(OP_IMMED_WR_AB, wr_both) |
		FIELD_PREP(OP_IMMED_SRC_LMEXTN, src_lmextn) |
		FIELD_PREP(OP_IMMED_DST_LMEXTN, dst_lmextn);
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	nfp_prog_push(nfp_prog, insn);
}

static void
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emit_immed(struct nfp_prog *nfp_prog, swreg dst, u16 imm,
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	   enum immed_width width, bool invert, enum immed_shift shift)
{
	struct nfp_insn_ur_regs reg;
	int err;

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	if (swreg_type(dst) == NN_REG_IMM) {
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		nfp_prog->error = -EFAULT;
		return;
	}

	err = swreg_to_unrestricted(dst, dst, reg_imm(imm & 0xff), &reg);
	if (err) {
		nfp_prog->error = err;
		return;
	}

	__emit_immed(nfp_prog, reg.areg, reg.breg, imm >> 8, width,
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		     invert, shift, reg.wr_both,
		     reg.dst_lmextn, reg.src_lmextn);
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}

static void
__emit_shf(struct nfp_prog *nfp_prog, u16 dst, enum alu_dst_ab dst_ab,
	   enum shf_sc sc, u8 shift,
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	   u16 areg, enum shf_op op, u16 breg, bool i8, bool sw, bool wr_both,
	   bool dst_lmextn, bool src_lmextn)
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{
	u64 insn;

	if (!FIELD_FIT(OP_SHF_SHIFT, shift)) {
		nfp_prog->error = -EFAULT;
		return;
	}

	if (sc == SHF_SC_L_SHF)
		shift = 32 - shift;

	insn = OP_SHF_BASE |
		FIELD_PREP(OP_SHF_A_SRC, areg) |
		FIELD_PREP(OP_SHF_SC, sc) |
		FIELD_PREP(OP_SHF_B_SRC, breg) |
		FIELD_PREP(OP_SHF_I8, i8) |
		FIELD_PREP(OP_SHF_SW, sw) |
		FIELD_PREP(OP_SHF_DST, dst) |
		FIELD_PREP(OP_SHF_SHIFT, shift) |
		FIELD_PREP(OP_SHF_OP, op) |
		FIELD_PREP(OP_SHF_DST_AB, dst_ab) |
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		FIELD_PREP(OP_SHF_WR_AB, wr_both) |
		FIELD_PREP(OP_SHF_SRC_LMEXTN, src_lmextn) |
		FIELD_PREP(OP_SHF_DST_LMEXTN, dst_lmextn);
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	nfp_prog_push(nfp_prog, insn);
}

static void
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emit_shf(struct nfp_prog *nfp_prog, swreg dst,
	 swreg lreg, enum shf_op op, swreg rreg, enum shf_sc sc, u8 shift)
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{
	struct nfp_insn_re_regs reg;
	int err;

	err = swreg_to_restricted(dst, lreg, rreg, &reg, true);
	if (err) {
		nfp_prog->error = err;
		return;
	}

	__emit_shf(nfp_prog, reg.dst, reg.dst_ab, sc, shift,
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		   reg.areg, op, reg.breg, reg.i8, reg.swap, reg.wr_both,
		   reg.dst_lmextn, reg.src_lmextn);
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}

static void
__emit_alu(struct nfp_prog *nfp_prog, u16 dst, enum alu_dst_ab dst_ab,
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	   u16 areg, enum alu_op op, u16 breg, bool swap, bool wr_both,
	   bool dst_lmextn, bool src_lmextn)
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{
	u64 insn;

	insn = OP_ALU_BASE |
		FIELD_PREP(OP_ALU_A_SRC, areg) |
		FIELD_PREP(OP_ALU_B_SRC, breg) |
		FIELD_PREP(OP_ALU_DST, dst) |
		FIELD_PREP(OP_ALU_SW, swap) |
		FIELD_PREP(OP_ALU_OP, op) |
		FIELD_PREP(OP_ALU_DST_AB, dst_ab) |
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		FIELD_PREP(OP_ALU_WR_AB, wr_both) |
		FIELD_PREP(OP_ALU_SRC_LMEXTN, src_lmextn) |
		FIELD_PREP(OP_ALU_DST_LMEXTN, dst_lmextn);
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	nfp_prog_push(nfp_prog, insn);
}

static void
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emit_alu(struct nfp_prog *nfp_prog, swreg dst,
	 swreg lreg, enum alu_op op, swreg rreg)
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{
	struct nfp_insn_ur_regs reg;
	int err;

	err = swreg_to_unrestricted(dst, lreg, rreg, &reg);
	if (err) {
		nfp_prog->error = err;
		return;
	}

	__emit_alu(nfp_prog, reg.dst, reg.dst_ab,
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		   reg.areg, op, reg.breg, reg.swap, reg.wr_both,
		   reg.dst_lmextn, reg.src_lmextn);
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}

static void
__emit_ld_field(struct nfp_prog *nfp_prog, enum shf_sc sc,
		u8 areg, u8 bmask, u8 breg, u8 shift, bool imm8,
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		bool zero, bool swap, bool wr_both,
		bool dst_lmextn, bool src_lmextn)
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{
	u64 insn;

	insn = OP_LDF_BASE |
		FIELD_PREP(OP_LDF_A_SRC, areg) |
		FIELD_PREP(OP_LDF_SC, sc) |
		FIELD_PREP(OP_LDF_B_SRC, breg) |
		FIELD_PREP(OP_LDF_I8, imm8) |
		FIELD_PREP(OP_LDF_SW, swap) |
		FIELD_PREP(OP_LDF_ZF, zero) |
		FIELD_PREP(OP_LDF_BMASK, bmask) |
		FIELD_PREP(OP_LDF_SHF, shift) |
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		FIELD_PREP(OP_LDF_WR_AB, wr_both) |
		FIELD_PREP(OP_LDF_SRC_LMEXTN, src_lmextn) |
		FIELD_PREP(OP_LDF_DST_LMEXTN, dst_lmextn);
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	nfp_prog_push(nfp_prog, insn);
}

static void
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emit_ld_field_any(struct nfp_prog *nfp_prog, swreg dst, u8 bmask, swreg src,
		  enum shf_sc sc, u8 shift, bool zero)
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{
	struct nfp_insn_re_regs reg;
	int err;

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	/* Note: ld_field is special as it uses one of the src regs as dst */
	err = swreg_to_restricted(dst, dst, src, &reg, true);
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	if (err) {
		nfp_prog->error = err;
		return;
	}

	__emit_ld_field(nfp_prog, sc, reg.areg, bmask, reg.breg, shift,
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			reg.i8, zero, reg.swap, reg.wr_both,
			reg.dst_lmextn, reg.src_lmextn);
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}

static void
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emit_ld_field(struct nfp_prog *nfp_prog, swreg dst, u8 bmask, swreg src,
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	      enum shf_sc sc, u8 shift)
{
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	emit_ld_field_any(nfp_prog, dst, bmask, src, sc, shift, false);
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}

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static void
__emit_lcsr(struct nfp_prog *nfp_prog, u16 areg, u16 breg, bool wr, u16 addr,
	    bool dst_lmextn, bool src_lmextn)
{
	u64 insn;

	insn = OP_LCSR_BASE |
		FIELD_PREP(OP_LCSR_A_SRC, areg) |
		FIELD_PREP(OP_LCSR_B_SRC, breg) |
		FIELD_PREP(OP_LCSR_WRITE, wr) |
		FIELD_PREP(OP_LCSR_ADDR, addr) |
		FIELD_PREP(OP_LCSR_SRC_LMEXTN, src_lmextn) |
		FIELD_PREP(OP_LCSR_DST_LMEXTN, dst_lmextn);

	nfp_prog_push(nfp_prog, insn);
}

static void emit_csr_wr(struct nfp_prog *nfp_prog, swreg src, u16 addr)
{
	struct nfp_insn_ur_regs reg;
	int err;

	/* This instruction takes immeds instead of reg_none() for the ignored
	 * operand, but we can't encode 2 immeds in one instr with our normal
	 * swreg infra so if param is an immed, we encode as reg_none() and
	 * copy the immed to both operands.
	 */
	if (swreg_type(src) == NN_REG_IMM) {
		err = swreg_to_unrestricted(reg_none(), src, reg_none(), &reg);
		reg.breg = reg.areg;
	} else {
		err = swreg_to_unrestricted(reg_none(), src, reg_imm(0), &reg);
	}
	if (err) {
		nfp_prog->error = err;
		return;
	}

	__emit_lcsr(nfp_prog, reg.areg, reg.breg, true, addr / 4,
		    false, reg.src_lmextn);
}

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static void emit_nop(struct nfp_prog *nfp_prog)
{
	__emit_immed(nfp_prog, UR_REG_IMM, UR_REG_IMM, 0, 0, 0, 0, 0, 0, 0);
}

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/* --- Wrappers --- */
static bool pack_immed(u32 imm, u16 *val, enum immed_shift *shift)
{
	if (!(imm & 0xffff0000)) {
		*val = imm;
		*shift = IMMED_SHIFT_0B;
	} else if (!(imm & 0xff0000ff)) {
		*val = imm >> 8;
		*shift = IMMED_SHIFT_1B;
	} else if (!(imm & 0x0000ffff)) {
		*val = imm >> 16;
		*shift = IMMED_SHIFT_2B;
	} else {
		return false;
	}

	return true;
}

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static void wrp_immed(struct nfp_prog *nfp_prog, swreg dst, u32 imm)
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{
	enum immed_shift shift;
	u16 val;

	if (pack_immed(imm, &val, &shift)) {
		emit_immed(nfp_prog, dst, val, IMMED_WIDTH_ALL, false, shift);
	} else if (pack_immed(~imm, &val, &shift)) {
		emit_immed(nfp_prog, dst, val, IMMED_WIDTH_ALL, true, shift);
	} else {
		emit_immed(nfp_prog, dst, imm & 0xffff, IMMED_WIDTH_ALL,
			   false, IMMED_SHIFT_0B);
		emit_immed(nfp_prog, dst, imm >> 16, IMMED_WIDTH_WORD,
			   false, IMMED_SHIFT_2B);
	}
}

/* ur_load_imm_any() - encode immediate or use tmp register (unrestricted)
 * If the @imm is small enough encode it directly in operand and return
 * otherwise load @imm to a spare register and return its encoding.
 */
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static swreg ur_load_imm_any(struct nfp_prog *nfp_prog, u32 imm, swreg tmp_reg)
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{
	if (FIELD_FIT(UR_REG_IMM_MAX, imm))
		return reg_imm(imm);

	wrp_immed(nfp_prog, tmp_reg, imm);
	return tmp_reg;
}

/* re_load_imm_any() - encode immediate or use tmp register (restricted)
 * If the @imm is small enough encode it directly in operand and return
 * otherwise load @imm to a spare register and return its encoding.
 */
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static swreg re_load_imm_any(struct nfp_prog *nfp_prog, u32 imm, swreg tmp_reg)
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{
	if (FIELD_FIT(RE_REG_IMM_MAX, imm))
		return reg_imm(imm);

	wrp_immed(nfp_prog, tmp_reg, imm);
	return tmp_reg;
}

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static void wrp_nops(struct nfp_prog *nfp_prog, unsigned int count)
{
	while (count--)
		emit_nop(nfp_prog);
}

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static void
wrp_br_special(struct nfp_prog *nfp_prog, enum br_mask mask,
	       enum br_special special)
{
	emit_br(nfp_prog, mask, 0, 0);

	nfp_prog->prog[nfp_prog->prog_len - 1] |=
		FIELD_PREP(OP_BR_SPECIAL, special);
}

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static void wrp_mov(struct nfp_prog *nfp_prog, swreg dst, swreg src)
{
	emit_alu(nfp_prog, dst, reg_none(), ALU_OP_NONE, src);
}

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static void wrp_reg_mov(struct nfp_prog *nfp_prog, u16 dst, u16 src)
{
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Jakub Kicinski 已提交
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	wrp_mov(nfp_prog, reg_both(dst), reg_b(src));
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}

static int
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data_ld(struct nfp_prog *nfp_prog, swreg offset, u8 dst_gpr, int size)
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{
	unsigned int i;
	u16 shift, sz;

	/* We load the value from the address indicated in @offset and then
	 * shift out the data we don't need.  Note: this is big endian!
	 */
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	sz = max(size, 4);
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	shift = size < 4 ? 4 - size : 0;

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	emit_cmd(nfp_prog, CMD_TGT_READ8, CMD_MODE_32b, 0,
		 pptr_reg(nfp_prog), offset, sz - 1, true);
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	i = 0;
	if (shift)
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		emit_shf(nfp_prog, reg_both(dst_gpr), reg_none(), SHF_OP_NONE,
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			 reg_xfer(0), SHF_SC_R_SHF, shift * 8);
	else
		for (; i * 4 < size; i++)
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			wrp_mov(nfp_prog, reg_both(dst_gpr + i), reg_xfer(i));
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	if (i < 2)
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		wrp_immed(nfp_prog, reg_both(dst_gpr + 1), 0);
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	return 0;
}

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static int
data_ld_host_order(struct nfp_prog *nfp_prog, u8 src_gpr, swreg offset,
		   u8 dst_gpr, int size)
{
	unsigned int i;
	u8 mask, sz;

	/* We load the value from the address indicated in @offset and then
	 * mask out the data we don't need.  Note: this is little endian!
	 */
	sz = max(size, 4);
	mask = size < 4 ? GENMASK(size - 1, 0) : 0;

	emit_cmd(nfp_prog, CMD_TGT_READ32_SWAP, CMD_MODE_32b, 0,
		 reg_a(src_gpr), offset, sz / 4 - 1, true);

	i = 0;
	if (mask)
		emit_ld_field_any(nfp_prog, reg_both(dst_gpr), mask,
				  reg_xfer(0), SHF_SC_NONE, 0, true);
	else
		for (; i * 4 < size; i++)
			wrp_mov(nfp_prog, reg_both(dst_gpr + i), reg_xfer(i));

	if (i < 2)
		wrp_immed(nfp_prog, reg_both(dst_gpr + 1), 0);

	return 0;
}

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static int
construct_data_ind_ld(struct nfp_prog *nfp_prog, u16 offset, u16 src, u8 size)
{
	swreg tmp_reg;

	/* Calculate the true offset (src_reg + imm) */
	tmp_reg = ur_load_imm_any(nfp_prog, offset, imm_b(nfp_prog));
	emit_alu(nfp_prog, imm_both(nfp_prog), reg_a(src), ALU_OP_ADD, tmp_reg);

	/* Check packet length (size guaranteed to fit b/c it's u8) */
	emit_alu(nfp_prog, imm_a(nfp_prog),
		 imm_a(nfp_prog), ALU_OP_ADD, reg_imm(size));
	emit_alu(nfp_prog, reg_none(),
		 plen_reg(nfp_prog), ALU_OP_SUB, imm_a(nfp_prog));
	wrp_br_special(nfp_prog, BR_BLO, OP_BR_GO_ABORT);

	/* Load data */
	return data_ld(nfp_prog, imm_b(nfp_prog), 0, size);
}

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static int construct_data_ld(struct nfp_prog *nfp_prog, u16 offset, u8 size)
{
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	swreg tmp_reg;

	/* Check packet length */
	tmp_reg = ur_load_imm_any(nfp_prog, offset + size, imm_a(nfp_prog));
	emit_alu(nfp_prog, reg_none(), plen_reg(nfp_prog), ALU_OP_SUB, tmp_reg);
	wrp_br_special(nfp_prog, BR_BLO, OP_BR_GO_ABORT);

	/* Load data */
	tmp_reg = re_load_imm_any(nfp_prog, offset, imm_b(nfp_prog));
	return data_ld(nfp_prog, tmp_reg, 0, size);
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}

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static int
data_stx_host_order(struct nfp_prog *nfp_prog, u8 dst_gpr, swreg offset,
		    u8 src_gpr, u8 size)
{
	unsigned int i;

	for (i = 0; i * 4 < size; i++)
		wrp_mov(nfp_prog, reg_xfer(i), reg_a(src_gpr + i));

	emit_cmd(nfp_prog, CMD_TGT_WRITE8_SWAP, CMD_MODE_32b, 0,
		 reg_a(dst_gpr), offset, size - 1, true);

	return 0;
}

static int
data_st_host_order(struct nfp_prog *nfp_prog, u8 dst_gpr, swreg offset,
		   u64 imm, u8 size)
{
	wrp_immed(nfp_prog, reg_xfer(0), imm);
	if (size == 8)
		wrp_immed(nfp_prog, reg_xfer(1), imm >> 32);

	emit_cmd(nfp_prog, CMD_TGT_WRITE8_SWAP, CMD_MODE_32b, 0,
		 reg_a(dst_gpr), offset, size - 1, true);

	return 0;
}

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typedef int
(*lmem_step)(struct nfp_prog *nfp_prog, u8 gpr, u8 gpr_byte, s32 off,
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	     unsigned int size, bool first, bool new_gpr, bool last, bool lm3,
	     bool needs_inc);
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static int
wrp_lmem_load(struct nfp_prog *nfp_prog, u8 dst, u8 dst_byte, s32 off,
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	      unsigned int size, bool first, bool new_gpr, bool last, bool lm3,
	      bool needs_inc)
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{
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	bool should_inc = needs_inc && new_gpr && !last;
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	u32 idx, src_byte;
	enum shf_sc sc;
	swreg reg;
	int shf;
	u8 mask;

	if (WARN_ON_ONCE(dst_byte + size > 4 || off % 4 + size > 4))
		return -EOPNOTSUPP;

	idx = off / 4;

	/* Move the entire word */
	if (size == 4) {
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		wrp_mov(nfp_prog, reg_both(dst),
			should_inc ? reg_lm_inc(3) : reg_lm(lm3 ? 3 : 0, idx));
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		return 0;
	}

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	if (WARN_ON_ONCE(lm3 && idx > RE_REG_LM_IDX_MAX))
		return -EOPNOTSUPP;

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	src_byte = off % 4;

	mask = (1 << size) - 1;
	mask <<= dst_byte;

	if (WARN_ON_ONCE(mask > 0xf))
		return -EOPNOTSUPP;

	shf = abs(src_byte - dst_byte) * 8;
	if (src_byte == dst_byte) {
		sc = SHF_SC_NONE;
	} else if (src_byte < dst_byte) {
		shf = 32 - shf;
		sc = SHF_SC_L_SHF;
	} else {
		sc = SHF_SC_R_SHF;
	}

	/* ld_field can address fewer indexes, if offset too large do RMW.
	 * Because we RMV twice we waste 2 cycles on unaligned 8 byte writes.
	 */
	if (idx <= RE_REG_LM_IDX_MAX) {
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		reg = reg_lm(lm3 ? 3 : 0, idx);
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	} else {
		reg = imm_a(nfp_prog);
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		/* If it's not the first part of the load and we start a new GPR
		 * that means we are loading a second part of the LMEM word into
		 * a new GPR.  IOW we've already looked that LMEM word and
		 * therefore it has been loaded into imm_a().
		 */
		if (first || !new_gpr)
			wrp_mov(nfp_prog, reg, reg_lm(0, idx));
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	}

	emit_ld_field_any(nfp_prog, reg_both(dst), mask, reg, sc, shf, new_gpr);

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	if (should_inc)
		wrp_mov(nfp_prog, reg_none(), reg_lm_inc(3));

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	return 0;
}
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static int
wrp_lmem_store(struct nfp_prog *nfp_prog, u8 src, u8 src_byte, s32 off,
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	       unsigned int size, bool first, bool new_gpr, bool last, bool lm3,
	       bool needs_inc)
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{
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	bool should_inc = needs_inc && new_gpr && !last;
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	u32 idx, dst_byte;
	enum shf_sc sc;
	swreg reg;
	int shf;
	u8 mask;

	if (WARN_ON_ONCE(src_byte + size > 4 || off % 4 + size > 4))
		return -EOPNOTSUPP;

	idx = off / 4;

	/* Move the entire word */
	if (size == 4) {
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		wrp_mov(nfp_prog,
			should_inc ? reg_lm_inc(3) : reg_lm(lm3 ? 3 : 0, idx),
			reg_b(src));
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		return 0;
	}

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	if (WARN_ON_ONCE(lm3 && idx > RE_REG_LM_IDX_MAX))
		return -EOPNOTSUPP;

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	dst_byte = off % 4;

	mask = (1 << size) - 1;
	mask <<= dst_byte;

	if (WARN_ON_ONCE(mask > 0xf))
		return -EOPNOTSUPP;

	shf = abs(src_byte - dst_byte) * 8;
	if (src_byte == dst_byte) {
		sc = SHF_SC_NONE;
	} else if (src_byte < dst_byte) {
		shf = 32 - shf;
		sc = SHF_SC_L_SHF;
	} else {
		sc = SHF_SC_R_SHF;
	}

	/* ld_field can address fewer indexes, if offset too large do RMW.
	 * Because we RMV twice we waste 2 cycles on unaligned 8 byte writes.
	 */
	if (idx <= RE_REG_LM_IDX_MAX) {
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		reg = reg_lm(lm3 ? 3 : 0, idx);
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	} else {
		reg = imm_a(nfp_prog);
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		/* Only first and last LMEM locations are going to need RMW,
		 * the middle location will be overwritten fully.
		 */
		if (first || last)
			wrp_mov(nfp_prog, reg, reg_lm(0, idx));
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	}

	emit_ld_field(nfp_prog, reg, mask, reg_b(src), sc, shf);

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	if (new_gpr || last) {
		if (idx > RE_REG_LM_IDX_MAX)
			wrp_mov(nfp_prog, reg_lm(0, idx), reg);
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		if (should_inc)
			wrp_mov(nfp_prog, reg_none(), reg_lm_inc(3));
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	}
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	return 0;
}

static int
mem_op_stack(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta,
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	     unsigned int size, unsigned int ptr_off, u8 gpr, u8 ptr_gpr,
	     bool clr_gpr, lmem_step step)
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{
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	s32 off = nfp_prog->stack_depth + meta->insn.off + ptr_off;
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	bool first = true, last;
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	bool needs_inc = false;
	swreg stack_off_reg;
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	u8 prev_gpr = 255;
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	u32 gpr_byte = 0;
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	bool lm3 = true;
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	int ret;

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	if (meta->ptr_not_const) {
		/* Use of the last encountered ptr_off is OK, they all have
		 * the same alignment.  Depend on low bits of value being
		 * discarded when written to LMaddr register.
		 */
		stack_off_reg = ur_load_imm_any(nfp_prog, meta->insn.off,
						stack_imm(nfp_prog));

		emit_alu(nfp_prog, imm_b(nfp_prog),
			 reg_a(ptr_gpr), ALU_OP_ADD, stack_off_reg);

		needs_inc = true;
	} else if (off + size <= 64) {
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		/* We can reach bottom 64B with LMaddr0 */
		lm3 = false;
	} else if (round_down(off, 32) == round_down(off + size - 1, 32)) {
		/* We have to set up a new pointer.  If we know the offset
		 * and the entire access falls into a single 32 byte aligned
		 * window we won't have to increment the LM pointer.
		 * The 32 byte alignment is imporant because offset is ORed in
		 * not added when doing *l$indexN[off].
		 */
		stack_off_reg = ur_load_imm_any(nfp_prog, round_down(off, 32),
						stack_imm(nfp_prog));
		emit_alu(nfp_prog, imm_b(nfp_prog),
			 stack_reg(nfp_prog), ALU_OP_ADD, stack_off_reg);

		off %= 32;
	} else {
		stack_off_reg = ur_load_imm_any(nfp_prog, round_down(off, 4),
						stack_imm(nfp_prog));

		emit_alu(nfp_prog, imm_b(nfp_prog),
			 stack_reg(nfp_prog), ALU_OP_ADD, stack_off_reg);

		needs_inc = true;
	}
	if (lm3) {
		emit_csr_wr(nfp_prog, imm_b(nfp_prog), NFP_CSR_ACT_LM_ADDR3);
		/* For size < 4 one slot will be filled by zeroing of upper. */
		wrp_nops(nfp_prog, clr_gpr && size < 8 ? 2 : 3);
	}

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	if (clr_gpr && size < 8)
		wrp_immed(nfp_prog, reg_both(gpr + 1), 0);

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	while (size) {
		u32 slice_end;
		u8 slice_size;

		slice_size = min(size, 4 - gpr_byte);
		slice_end = min(off + slice_size, round_up(off + 1, 4));
		slice_size = slice_end - off;

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		last = slice_size == size;

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		if (needs_inc)
			off %= 4;

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		ret = step(nfp_prog, gpr, gpr_byte, off, slice_size,
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			   first, gpr != prev_gpr, last, lm3, needs_inc);
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		if (ret)
			return ret;

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		prev_gpr = gpr;
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		first = false;

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		gpr_byte += slice_size;
		if (gpr_byte >= 4) {
			gpr_byte -= 4;
			gpr++;
		}

		size -= slice_size;
		off += slice_size;
	}

	return 0;
}

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static void
wrp_alu_imm(struct nfp_prog *nfp_prog, u8 dst, enum alu_op alu_op, u32 imm)
{
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	swreg tmp_reg;
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	if (alu_op == ALU_OP_AND) {
		if (!imm)
			wrp_immed(nfp_prog, reg_both(dst), 0);
		if (!imm || !~imm)
			return;
	}
	if (alu_op == ALU_OP_OR) {
		if (!~imm)
			wrp_immed(nfp_prog, reg_both(dst), ~0U);
		if (!imm || !~imm)
			return;
	}
	if (alu_op == ALU_OP_XOR) {
		if (!~imm)
			emit_alu(nfp_prog, reg_both(dst), reg_none(),
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				 ALU_OP_NOT, reg_b(dst));
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		if (!imm || !~imm)
			return;
	}

	tmp_reg = ur_load_imm_any(nfp_prog, imm, imm_b(nfp_prog));
	emit_alu(nfp_prog, reg_both(dst), reg_a(dst), alu_op, tmp_reg);
}

static int
wrp_alu64_imm(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta,
	      enum alu_op alu_op, bool skip)
{
	const struct bpf_insn *insn = &meta->insn;
	u64 imm = insn->imm; /* sign extend */

	if (skip) {
		meta->skip = true;
		return 0;
	}

	wrp_alu_imm(nfp_prog, insn->dst_reg * 2, alu_op, imm & ~0U);
	wrp_alu_imm(nfp_prog, insn->dst_reg * 2 + 1, alu_op, imm >> 32);

	return 0;
}

static int
wrp_alu64_reg(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta,
	      enum alu_op alu_op)
{
	u8 dst = meta->insn.dst_reg * 2, src = meta->insn.src_reg * 2;

	emit_alu(nfp_prog, reg_both(dst), reg_a(dst), alu_op, reg_b(src));
	emit_alu(nfp_prog, reg_both(dst + 1),
		 reg_a(dst + 1), alu_op, reg_b(src + 1));

	return 0;
}

static int
wrp_alu32_imm(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta,
	      enum alu_op alu_op, bool skip)
{
	const struct bpf_insn *insn = &meta->insn;

	if (skip) {
		meta->skip = true;
		return 0;
	}

	wrp_alu_imm(nfp_prog, insn->dst_reg * 2, alu_op, insn->imm);
	wrp_immed(nfp_prog, reg_both(insn->dst_reg * 2 + 1), 0);

	return 0;
}

static int
wrp_alu32_reg(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta,
	      enum alu_op alu_op)
{
	u8 dst = meta->insn.dst_reg * 2, src = meta->insn.src_reg * 2;

	emit_alu(nfp_prog, reg_both(dst), reg_a(dst), alu_op, reg_b(src));
	wrp_immed(nfp_prog, reg_both(meta->insn.dst_reg * 2 + 1), 0);

	return 0;
}

static void
wrp_test_reg_one(struct nfp_prog *nfp_prog, u8 dst, enum alu_op alu_op, u8 src,
		 enum br_mask br_mask, u16 off)
{
	emit_alu(nfp_prog, reg_none(), reg_a(dst), alu_op, reg_b(src));
	emit_br(nfp_prog, br_mask, off, 0);
}

static int
wrp_test_reg(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta,
	     enum alu_op alu_op, enum br_mask br_mask)
{
	const struct bpf_insn *insn = &meta->insn;

	wrp_test_reg_one(nfp_prog, insn->dst_reg * 2, alu_op,
			 insn->src_reg * 2, br_mask, insn->off);
	wrp_test_reg_one(nfp_prog, insn->dst_reg * 2 + 1, alu_op,
			 insn->src_reg * 2 + 1, br_mask, insn->off);

	return 0;
}

static int
wrp_cmp_imm(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta,
	    enum br_mask br_mask, bool swap)
{
	const struct bpf_insn *insn = &meta->insn;
	u64 imm = insn->imm; /* sign extend */
	u8 reg = insn->dst_reg * 2;
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	swreg tmp_reg;
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	tmp_reg = ur_load_imm_any(nfp_prog, imm & ~0U, imm_b(nfp_prog));
	if (!swap)
		emit_alu(nfp_prog, reg_none(), reg_a(reg), ALU_OP_SUB, tmp_reg);
	else
		emit_alu(nfp_prog, reg_none(), tmp_reg, ALU_OP_SUB, reg_a(reg));

	tmp_reg = ur_load_imm_any(nfp_prog, imm >> 32, imm_b(nfp_prog));
	if (!swap)
		emit_alu(nfp_prog, reg_none(),
			 reg_a(reg + 1), ALU_OP_SUB_C, tmp_reg);
	else
		emit_alu(nfp_prog, reg_none(),
			 tmp_reg, ALU_OP_SUB_C, reg_a(reg + 1));

	emit_br(nfp_prog, br_mask, insn->off, 0);

	return 0;
}

static int
wrp_cmp_reg(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta,
	    enum br_mask br_mask, bool swap)
{
	const struct bpf_insn *insn = &meta->insn;
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	u8 areg, breg;

	areg = insn->dst_reg * 2;
	breg = insn->src_reg * 2;
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	if (swap) {
		areg ^= breg;
		breg ^= areg;
		areg ^= breg;
	}

	emit_alu(nfp_prog, reg_none(), reg_a(areg), ALU_OP_SUB, reg_b(breg));
	emit_alu(nfp_prog, reg_none(),
		 reg_a(areg + 1), ALU_OP_SUB_C, reg_b(breg + 1));
	emit_br(nfp_prog, br_mask, insn->off, 0);

	return 0;
}

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static void wrp_end32(struct nfp_prog *nfp_prog, swreg reg_in, u8 gpr_out)
{
	emit_ld_field(nfp_prog, reg_both(gpr_out), 0xf, reg_in,
		      SHF_SC_R_ROT, 8);
	emit_ld_field(nfp_prog, reg_both(gpr_out), 0x5, reg_a(gpr_out),
		      SHF_SC_R_ROT, 16);
}

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/* --- Callbacks --- */
static int mov_reg64(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	const struct bpf_insn *insn = &meta->insn;
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	u8 dst = insn->dst_reg * 2;
	u8 src = insn->src_reg * 2;

	if (insn->src_reg == BPF_REG_10) {
		swreg stack_depth_reg;
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		stack_depth_reg = ur_load_imm_any(nfp_prog,
						  nfp_prog->stack_depth,
						  stack_imm(nfp_prog));
		emit_alu(nfp_prog, reg_both(dst),
			 stack_reg(nfp_prog), ALU_OP_ADD, stack_depth_reg);
		wrp_immed(nfp_prog, reg_both(dst + 1), 0);
	} else {
		wrp_reg_mov(nfp_prog, dst, src);
		wrp_reg_mov(nfp_prog, dst + 1, src + 1);
	}
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	return 0;
}

static int mov_imm64(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	u64 imm = meta->insn.imm; /* sign extend */

	wrp_immed(nfp_prog, reg_both(meta->insn.dst_reg * 2), imm & ~0U);
	wrp_immed(nfp_prog, reg_both(meta->insn.dst_reg * 2 + 1), imm >> 32);

	return 0;
}

static int xor_reg64(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return wrp_alu64_reg(nfp_prog, meta, ALU_OP_XOR);
}

static int xor_imm64(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return wrp_alu64_imm(nfp_prog, meta, ALU_OP_XOR, !meta->insn.imm);
}

static int and_reg64(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return wrp_alu64_reg(nfp_prog, meta, ALU_OP_AND);
}

static int and_imm64(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return wrp_alu64_imm(nfp_prog, meta, ALU_OP_AND, !~meta->insn.imm);
}

static int or_reg64(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return wrp_alu64_reg(nfp_prog, meta, ALU_OP_OR);
}

static int or_imm64(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return wrp_alu64_imm(nfp_prog, meta, ALU_OP_OR, !meta->insn.imm);
}

static int add_reg64(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	const struct bpf_insn *insn = &meta->insn;

	emit_alu(nfp_prog, reg_both(insn->dst_reg * 2),
		 reg_a(insn->dst_reg * 2), ALU_OP_ADD,
		 reg_b(insn->src_reg * 2));
	emit_alu(nfp_prog, reg_both(insn->dst_reg * 2 + 1),
		 reg_a(insn->dst_reg * 2 + 1), ALU_OP_ADD_C,
		 reg_b(insn->src_reg * 2 + 1));

	return 0;
}

static int add_imm64(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	const struct bpf_insn *insn = &meta->insn;
	u64 imm = insn->imm; /* sign extend */

	wrp_alu_imm(nfp_prog, insn->dst_reg * 2, ALU_OP_ADD, imm & ~0U);
	wrp_alu_imm(nfp_prog, insn->dst_reg * 2 + 1, ALU_OP_ADD_C, imm >> 32);

	return 0;
}

static int sub_reg64(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	const struct bpf_insn *insn = &meta->insn;

	emit_alu(nfp_prog, reg_both(insn->dst_reg * 2),
		 reg_a(insn->dst_reg * 2), ALU_OP_SUB,
		 reg_b(insn->src_reg * 2));
	emit_alu(nfp_prog, reg_both(insn->dst_reg * 2 + 1),
		 reg_a(insn->dst_reg * 2 + 1), ALU_OP_SUB_C,
		 reg_b(insn->src_reg * 2 + 1));

	return 0;
}

static int sub_imm64(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	const struct bpf_insn *insn = &meta->insn;
	u64 imm = insn->imm; /* sign extend */

	wrp_alu_imm(nfp_prog, insn->dst_reg * 2, ALU_OP_SUB, imm & ~0U);
	wrp_alu_imm(nfp_prog, insn->dst_reg * 2 + 1, ALU_OP_SUB_C, imm >> 32);

	return 0;
}

1154 1155 1156 1157 1158 1159 1160 1161 1162 1163 1164 1165
static int neg_reg64(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	const struct bpf_insn *insn = &meta->insn;

	emit_alu(nfp_prog, reg_both(insn->dst_reg * 2), reg_imm(0),
		 ALU_OP_SUB, reg_b(insn->dst_reg * 2));
	emit_alu(nfp_prog, reg_both(insn->dst_reg * 2 + 1), reg_imm(0),
		 ALU_OP_SUB_C, reg_b(insn->dst_reg * 2 + 1));

	return 0;
}

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static int shl_imm64(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	const struct bpf_insn *insn = &meta->insn;
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	u8 dst = insn->dst_reg * 2;

	if (insn->imm < 32) {
		emit_shf(nfp_prog, reg_both(dst + 1),
			 reg_a(dst + 1), SHF_OP_NONE, reg_b(dst),
			 SHF_SC_R_DSHF, 32 - insn->imm);
		emit_shf(nfp_prog, reg_both(dst),
			 reg_none(), SHF_OP_NONE, reg_b(dst),
			 SHF_SC_L_SHF, insn->imm);
	} else if (insn->imm == 32) {
		wrp_reg_mov(nfp_prog, dst + 1, dst);
		wrp_immed(nfp_prog, reg_both(dst), 0);
	} else if (insn->imm > 32) {
		emit_shf(nfp_prog, reg_both(dst + 1),
			 reg_none(), SHF_OP_NONE, reg_b(dst),
			 SHF_SC_L_SHF, insn->imm - 32);
		wrp_immed(nfp_prog, reg_both(dst), 0);
	}
1187 1188 1189 1190 1191 1192 1193

	return 0;
}

static int shr_imm64(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	const struct bpf_insn *insn = &meta->insn;
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	u8 dst = insn->dst_reg * 2;

	if (insn->imm < 32) {
		emit_shf(nfp_prog, reg_both(dst),
			 reg_a(dst + 1), SHF_OP_NONE, reg_b(dst),
			 SHF_SC_R_DSHF, insn->imm);
		emit_shf(nfp_prog, reg_both(dst + 1),
			 reg_none(), SHF_OP_NONE, reg_b(dst + 1),
			 SHF_SC_R_SHF, insn->imm);
	} else if (insn->imm == 32) {
		wrp_reg_mov(nfp_prog, dst, dst + 1);
		wrp_immed(nfp_prog, reg_both(dst + 1), 0);
	} else if (insn->imm > 32) {
		emit_shf(nfp_prog, reg_both(dst),
			 reg_none(), SHF_OP_NONE, reg_b(dst + 1),
			 SHF_SC_R_SHF, insn->imm - 32);
		wrp_immed(nfp_prog, reg_both(dst + 1), 0);
	}
1212 1213 1214 1215 1216 1217 1218 1219 1220 1221 1222 1223 1224 1225 1226 1227 1228 1229 1230 1231 1232 1233 1234 1235 1236 1237 1238 1239 1240 1241 1242 1243 1244 1245 1246 1247 1248 1249 1250 1251 1252 1253 1254 1255 1256 1257 1258 1259 1260 1261 1262 1263 1264 1265 1266 1267 1268 1269 1270 1271 1272 1273 1274 1275 1276 1277 1278 1279 1280 1281 1282 1283 1284 1285

	return 0;
}

static int mov_reg(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	const struct bpf_insn *insn = &meta->insn;

	wrp_reg_mov(nfp_prog, insn->dst_reg * 2,  insn->src_reg * 2);
	wrp_immed(nfp_prog, reg_both(insn->dst_reg * 2 + 1), 0);

	return 0;
}

static int mov_imm(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	const struct bpf_insn *insn = &meta->insn;

	wrp_immed(nfp_prog, reg_both(insn->dst_reg * 2), insn->imm);
	wrp_immed(nfp_prog, reg_both(insn->dst_reg * 2 + 1), 0);

	return 0;
}

static int xor_reg(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return wrp_alu32_reg(nfp_prog, meta, ALU_OP_XOR);
}

static int xor_imm(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return wrp_alu32_imm(nfp_prog, meta, ALU_OP_XOR, !~meta->insn.imm);
}

static int and_reg(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return wrp_alu32_reg(nfp_prog, meta, ALU_OP_AND);
}

static int and_imm(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return wrp_alu32_imm(nfp_prog, meta, ALU_OP_AND, !~meta->insn.imm);
}

static int or_reg(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return wrp_alu32_reg(nfp_prog, meta, ALU_OP_OR);
}

static int or_imm(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return wrp_alu32_imm(nfp_prog, meta, ALU_OP_OR, !meta->insn.imm);
}

static int add_reg(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return wrp_alu32_reg(nfp_prog, meta, ALU_OP_ADD);
}

static int add_imm(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return wrp_alu32_imm(nfp_prog, meta, ALU_OP_ADD, !meta->insn.imm);
}

static int sub_reg(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return wrp_alu32_reg(nfp_prog, meta, ALU_OP_SUB);
}

static int sub_imm(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return wrp_alu32_imm(nfp_prog, meta, ALU_OP_SUB, !meta->insn.imm);
}

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static int neg_reg(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	u8 dst = meta->insn.dst_reg * 2;

	emit_alu(nfp_prog, reg_both(dst), reg_imm(0), ALU_OP_SUB, reg_b(dst));
	wrp_immed(nfp_prog, reg_both(meta->insn.dst_reg * 2 + 1), 0);

	return 0;
}

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static int shl_imm(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	const struct bpf_insn *insn = &meta->insn;

	if (!insn->imm)
		return 1; /* TODO: zero shift means indirect */

	emit_shf(nfp_prog, reg_both(insn->dst_reg * 2),
		 reg_none(), SHF_OP_NONE, reg_b(insn->dst_reg * 2),
		 SHF_SC_L_SHF, insn->imm);
	wrp_immed(nfp_prog, reg_both(insn->dst_reg * 2 + 1), 0);

	return 0;
}

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static int end_reg32(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	const struct bpf_insn *insn = &meta->insn;
	u8 gpr = insn->dst_reg * 2;

	switch (insn->imm) {
	case 16:
		emit_ld_field(nfp_prog, reg_both(gpr), 0x9, reg_b(gpr),
			      SHF_SC_R_ROT, 8);
		emit_ld_field(nfp_prog, reg_both(gpr), 0xe, reg_a(gpr),
			      SHF_SC_R_SHF, 16);

		wrp_immed(nfp_prog, reg_both(gpr + 1), 0);
		break;
	case 32:
		wrp_end32(nfp_prog, reg_a(gpr), gpr);
		wrp_immed(nfp_prog, reg_both(gpr + 1), 0);
		break;
	case 64:
		wrp_mov(nfp_prog, imm_a(nfp_prog), reg_b(gpr + 1));

		wrp_end32(nfp_prog, reg_a(gpr), gpr + 1);
		wrp_end32(nfp_prog, imm_a(nfp_prog), gpr);
		break;
	}

	return 0;
}

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static int imm_ld8_part2(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
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	struct nfp_insn_meta *prev = nfp_meta_prev(meta);
	u32 imm_lo, imm_hi;
	u8 dst;

	dst = prev->insn.dst_reg * 2;
	imm_lo = prev->insn.imm;
	imm_hi = meta->insn.imm;

	wrp_immed(nfp_prog, reg_both(dst), imm_lo);

	/* mov is always 1 insn, load imm may be two, so try to use mov */
	if (imm_hi == imm_lo)
		wrp_mov(nfp_prog, reg_both(dst + 1), reg_a(dst));
	else
		wrp_immed(nfp_prog, reg_both(dst + 1), imm_hi);
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	return 0;
}

static int imm_ld8(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	meta->double_cb = imm_ld8_part2;
	return 0;
}

static int data_ld1(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return construct_data_ld(nfp_prog, meta->insn.imm, 1);
}

static int data_ld2(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return construct_data_ld(nfp_prog, meta->insn.imm, 2);
}

static int data_ld4(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return construct_data_ld(nfp_prog, meta->insn.imm, 4);
}

static int data_ind_ld1(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return construct_data_ind_ld(nfp_prog, meta->insn.imm,
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				     meta->insn.src_reg * 2, 1);
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}

static int data_ind_ld2(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return construct_data_ind_ld(nfp_prog, meta->insn.imm,
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				     meta->insn.src_reg * 2, 2);
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}

static int data_ind_ld4(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return construct_data_ind_ld(nfp_prog, meta->insn.imm,
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				     meta->insn.src_reg * 2, 4);
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}

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static int
mem_ldx_stack(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta,
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	      unsigned int size, unsigned int ptr_off)
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{
1404
	return mem_op_stack(nfp_prog, meta, size, ptr_off,
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			    meta->insn.dst_reg * 2, meta->insn.src_reg * 2,
			    true, wrp_lmem_load);
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}

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static int mem_ldx_skb(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta,
		       u8 size)
1411
{
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	swreg dst = reg_both(meta->insn.dst_reg * 2);

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	switch (meta->insn.off) {
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	case offsetof(struct __sk_buff, len):
		if (size != FIELD_SIZEOF(struct __sk_buff, len))
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			return -EOPNOTSUPP;
1418 1419
		wrp_mov(nfp_prog, dst, plen_reg(nfp_prog));
		break;
1420 1421
	case offsetof(struct __sk_buff, data):
		if (size != FIELD_SIZEOF(struct __sk_buff, data))
1422 1423 1424
			return -EOPNOTSUPP;
		wrp_mov(nfp_prog, dst, pptr_reg(nfp_prog));
		break;
1425 1426
	case offsetof(struct __sk_buff, data_end):
		if (size != FIELD_SIZEOF(struct __sk_buff, data_end))
1427 1428 1429
			return -EOPNOTSUPP;
		emit_alu(nfp_prog, dst,
			 plen_reg(nfp_prog), ALU_OP_ADD, pptr_reg(nfp_prog));
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		break;
	default:
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		return -EOPNOTSUPP;
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	}

	wrp_immed(nfp_prog, reg_both(meta->insn.dst_reg * 2 + 1), 0);
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	return 0;
}

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static int mem_ldx_xdp(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta,
		       u8 size)
1442
{
1443
	swreg dst = reg_both(meta->insn.dst_reg * 2);
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	switch (meta->insn.off) {
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	case offsetof(struct xdp_md, data):
		if (size != FIELD_SIZEOF(struct xdp_md, data))
			return -EOPNOTSUPP;
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		wrp_mov(nfp_prog, dst, pptr_reg(nfp_prog));
		break;
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	case offsetof(struct xdp_md, data_end):
		if (size != FIELD_SIZEOF(struct xdp_md, data_end))
			return -EOPNOTSUPP;
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		emit_alu(nfp_prog, dst,
			 plen_reg(nfp_prog), ALU_OP_ADD, pptr_reg(nfp_prog));
		break;
	default:
		return -EOPNOTSUPP;
	}
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	wrp_immed(nfp_prog, reg_both(meta->insn.dst_reg * 2 + 1), 0);
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	return 0;
}

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static int
mem_ldx_data(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta,
	     unsigned int size)
{
	swreg tmp_reg;

	tmp_reg = re_load_imm_any(nfp_prog, meta->insn.off, imm_b(nfp_prog));

	return data_ld_host_order(nfp_prog, meta->insn.src_reg * 2, tmp_reg,
				  meta->insn.dst_reg * 2, size);
}

static int
mem_ldx(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta,
	unsigned int size)
{
	if (meta->ptr.type == PTR_TO_CTX) {
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		if (nfp_prog->type == BPF_PROG_TYPE_XDP)
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			return mem_ldx_xdp(nfp_prog, meta, size);
		else
			return mem_ldx_skb(nfp_prog, meta, size);
	}

	if (meta->ptr.type == PTR_TO_PACKET)
		return mem_ldx_data(nfp_prog, meta, size);

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	if (meta->ptr.type == PTR_TO_STACK)
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		return mem_ldx_stack(nfp_prog, meta, size,
				     meta->ptr.off + meta->ptr.var_off.value);
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	return -EOPNOTSUPP;
}

static int mem_ldx1(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return mem_ldx(nfp_prog, meta, 1);
}

static int mem_ldx2(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return mem_ldx(nfp_prog, meta, 2);
}

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static int mem_ldx4(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
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	return mem_ldx(nfp_prog, meta, 4);
}

static int mem_ldx8(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return mem_ldx(nfp_prog, meta, 8);
1517 1518
}

1519 1520 1521 1522 1523 1524 1525 1526 1527 1528 1529 1530 1531 1532 1533
static int
mem_st_data(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta,
	    unsigned int size)
{
	u64 imm = meta->insn.imm; /* sign extend */
	swreg off_reg;

	off_reg = re_load_imm_any(nfp_prog, meta->insn.off, imm_b(nfp_prog));

	return data_st_host_order(nfp_prog, meta->insn.dst_reg * 2, off_reg,
				  imm, size);
}

static int mem_st(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta,
		  unsigned int size)
1534
{
1535 1536 1537
	if (meta->ptr.type == PTR_TO_PACKET)
		return mem_st_data(nfp_prog, meta, size);

1538
	return -EOPNOTSUPP;
1539 1540
}

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static int mem_st1(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return mem_st(nfp_prog, meta, 1);
}

static int mem_st2(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return mem_st(nfp_prog, meta, 2);
}

static int mem_st4(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return mem_st(nfp_prog, meta, 4);
}

static int mem_st8(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
1557
{
1558 1559 1560 1561 1562 1563 1564 1565 1566 1567 1568 1569 1570 1571 1572
	return mem_st(nfp_prog, meta, 8);
}

static int
mem_stx_data(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta,
	     unsigned int size)
{
	swreg off_reg;

	off_reg = re_load_imm_any(nfp_prog, meta->insn.off, imm_b(nfp_prog));

	return data_stx_host_order(nfp_prog, meta->insn.dst_reg * 2, off_reg,
				   meta->insn.src_reg * 2, size);
}

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static int
mem_stx_stack(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta,
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	      unsigned int size, unsigned int ptr_off)
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{
1577
	return mem_op_stack(nfp_prog, meta, size, ptr_off,
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			    meta->insn.src_reg * 2, meta->insn.dst_reg * 2,
			    false, wrp_lmem_store);
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}

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static int
mem_stx(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta,
	unsigned int size)
{
	if (meta->ptr.type == PTR_TO_PACKET)
		return mem_stx_data(nfp_prog, meta, size);

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	if (meta->ptr.type == PTR_TO_STACK)
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		return mem_stx_stack(nfp_prog, meta, size,
				     meta->ptr.off + meta->ptr.var_off.value);
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1593
	return -EOPNOTSUPP;
1594 1595
}

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static int mem_stx1(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return mem_stx(nfp_prog, meta, 1);
}

static int mem_stx2(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return mem_stx(nfp_prog, meta, 2);
}

1606 1607
static int mem_stx4(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
1608 1609
	return mem_stx(nfp_prog, meta, 4);
}
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1611 1612 1613
static int mem_stx8(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return mem_stx(nfp_prog, meta, 8);
1614 1615
}

1616 1617 1618 1619 1620 1621 1622 1623 1624 1625 1626
static int jump(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	emit_br(nfp_prog, BR_UNC, meta->insn.off, 0);

	return 0;
}

static int jeq_imm(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	const struct bpf_insn *insn = &meta->insn;
	u64 imm = insn->imm; /* sign extend */
1627 1628 1629 1630
	swreg or1, or2, tmp_reg;

	or1 = reg_a(insn->dst_reg * 2);
	or2 = reg_b(insn->dst_reg * 2 + 1);
1631 1632 1633 1634 1635 1636 1637 1638 1639 1640 1641 1642 1643 1644 1645 1646 1647 1648 1649 1650 1651 1652 1653

	if (imm & ~0U) {
		tmp_reg = ur_load_imm_any(nfp_prog, imm & ~0U, imm_b(nfp_prog));
		emit_alu(nfp_prog, imm_a(nfp_prog),
			 reg_a(insn->dst_reg * 2), ALU_OP_XOR, tmp_reg);
		or1 = imm_a(nfp_prog);
	}

	if (imm >> 32) {
		tmp_reg = ur_load_imm_any(nfp_prog, imm >> 32, imm_b(nfp_prog));
		emit_alu(nfp_prog, imm_b(nfp_prog),
			 reg_a(insn->dst_reg * 2 + 1), ALU_OP_XOR, tmp_reg);
		or2 = imm_b(nfp_prog);
	}

	emit_alu(nfp_prog, reg_none(), or1, ALU_OP_OR, or2);
	emit_br(nfp_prog, BR_BEQ, insn->off, 0);

	return 0;
}

static int jgt_imm(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
1654
	return wrp_cmp_imm(nfp_prog, meta, BR_BLO, true);
1655 1656 1657 1658
}

static int jge_imm(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
1659
	return wrp_cmp_imm(nfp_prog, meta, BR_BHS, false);
1660 1661
}

1662 1663
static int jlt_imm(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
1664
	return wrp_cmp_imm(nfp_prog, meta, BR_BLO, false);
1665 1666 1667 1668
}

static int jle_imm(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
1669
	return wrp_cmp_imm(nfp_prog, meta, BR_BHS, true);
1670 1671
}

1672 1673 1674 1675
static int jset_imm(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	const struct bpf_insn *insn = &meta->insn;
	u64 imm = insn->imm; /* sign extend */
1676
	swreg tmp_reg;
1677 1678 1679 1680 1681 1682 1683 1684 1685 1686 1687 1688 1689 1690 1691 1692 1693 1694 1695 1696 1697 1698 1699 1700 1701 1702 1703

	if (!imm) {
		meta->skip = true;
		return 0;
	}

	if (imm & ~0U) {
		tmp_reg = ur_load_imm_any(nfp_prog, imm & ~0U, imm_b(nfp_prog));
		emit_alu(nfp_prog, reg_none(),
			 reg_a(insn->dst_reg * 2), ALU_OP_AND, tmp_reg);
		emit_br(nfp_prog, BR_BNE, insn->off, 0);
	}

	if (imm >> 32) {
		tmp_reg = ur_load_imm_any(nfp_prog, imm >> 32, imm_b(nfp_prog));
		emit_alu(nfp_prog, reg_none(),
			 reg_a(insn->dst_reg * 2 + 1), ALU_OP_AND, tmp_reg);
		emit_br(nfp_prog, BR_BNE, insn->off, 0);
	}

	return 0;
}

static int jne_imm(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	const struct bpf_insn *insn = &meta->insn;
	u64 imm = insn->imm; /* sign extend */
1704
	swreg tmp_reg;
1705 1706 1707 1708 1709

	if (!imm) {
		emit_alu(nfp_prog, reg_none(), reg_a(insn->dst_reg * 2),
			 ALU_OP_OR, reg_b(insn->dst_reg * 2 + 1));
		emit_br(nfp_prog, BR_BNE, insn->off, 0);
1710
		return 0;
1711 1712 1713 1714 1715 1716 1717 1718 1719 1720 1721 1722 1723 1724 1725 1726 1727 1728 1729 1730 1731 1732 1733 1734 1735 1736 1737 1738 1739 1740 1741 1742
	}

	tmp_reg = ur_load_imm_any(nfp_prog, imm & ~0U, imm_b(nfp_prog));
	emit_alu(nfp_prog, reg_none(),
		 reg_a(insn->dst_reg * 2), ALU_OP_XOR, tmp_reg);
	emit_br(nfp_prog, BR_BNE, insn->off, 0);

	tmp_reg = ur_load_imm_any(nfp_prog, imm >> 32, imm_b(nfp_prog));
	emit_alu(nfp_prog, reg_none(),
		 reg_a(insn->dst_reg * 2 + 1), ALU_OP_XOR, tmp_reg);
	emit_br(nfp_prog, BR_BNE, insn->off, 0);

	return 0;
}

static int jeq_reg(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	const struct bpf_insn *insn = &meta->insn;

	emit_alu(nfp_prog, imm_a(nfp_prog), reg_a(insn->dst_reg * 2),
		 ALU_OP_XOR, reg_b(insn->src_reg * 2));
	emit_alu(nfp_prog, imm_b(nfp_prog), reg_a(insn->dst_reg * 2 + 1),
		 ALU_OP_XOR, reg_b(insn->src_reg * 2 + 1));
	emit_alu(nfp_prog, reg_none(),
		 imm_a(nfp_prog), ALU_OP_OR, imm_b(nfp_prog));
	emit_br(nfp_prog, BR_BEQ, insn->off, 0);

	return 0;
}

static int jgt_reg(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
1743
	return wrp_cmp_reg(nfp_prog, meta, BR_BLO, true);
1744 1745 1746 1747
}

static int jge_reg(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
1748
	return wrp_cmp_reg(nfp_prog, meta, BR_BHS, false);
1749 1750
}

1751 1752
static int jlt_reg(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
1753
	return wrp_cmp_reg(nfp_prog, meta, BR_BLO, false);
1754 1755 1756 1757
}

static int jle_reg(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
1758
	return wrp_cmp_reg(nfp_prog, meta, BR_BHS, true);
1759 1760
}

1761 1762 1763 1764 1765 1766 1767 1768 1769 1770 1771 1772 1773 1774 1775 1776 1777 1778 1779 1780 1781 1782 1783 1784 1785 1786 1787 1788 1789 1790
static int jset_reg(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return wrp_test_reg(nfp_prog, meta, ALU_OP_AND, BR_BNE);
}

static int jne_reg(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	return wrp_test_reg(nfp_prog, meta, ALU_OP_XOR, BR_BNE);
}

static int goto_out(struct nfp_prog *nfp_prog, struct nfp_insn_meta *meta)
{
	wrp_br_special(nfp_prog, BR_UNC, OP_BR_GO_OUT);

	return 0;
}

static const instr_cb_t instr_cb[256] = {
	[BPF_ALU64 | BPF_MOV | BPF_X] =	mov_reg64,
	[BPF_ALU64 | BPF_MOV | BPF_K] =	mov_imm64,
	[BPF_ALU64 | BPF_XOR | BPF_X] =	xor_reg64,
	[BPF_ALU64 | BPF_XOR | BPF_K] =	xor_imm64,
	[BPF_ALU64 | BPF_AND | BPF_X] =	and_reg64,
	[BPF_ALU64 | BPF_AND | BPF_K] =	and_imm64,
	[BPF_ALU64 | BPF_OR | BPF_X] =	or_reg64,
	[BPF_ALU64 | BPF_OR | BPF_K] =	or_imm64,
	[BPF_ALU64 | BPF_ADD | BPF_X] =	add_reg64,
	[BPF_ALU64 | BPF_ADD | BPF_K] =	add_imm64,
	[BPF_ALU64 | BPF_SUB | BPF_X] =	sub_reg64,
	[BPF_ALU64 | BPF_SUB | BPF_K] =	sub_imm64,
1791
	[BPF_ALU64 | BPF_NEG] =		neg_reg64,
1792 1793 1794 1795 1796 1797 1798 1799 1800 1801 1802 1803 1804 1805
	[BPF_ALU64 | BPF_LSH | BPF_K] =	shl_imm64,
	[BPF_ALU64 | BPF_RSH | BPF_K] =	shr_imm64,
	[BPF_ALU | BPF_MOV | BPF_X] =	mov_reg,
	[BPF_ALU | BPF_MOV | BPF_K] =	mov_imm,
	[BPF_ALU | BPF_XOR | BPF_X] =	xor_reg,
	[BPF_ALU | BPF_XOR | BPF_K] =	xor_imm,
	[BPF_ALU | BPF_AND | BPF_X] =	and_reg,
	[BPF_ALU | BPF_AND | BPF_K] =	and_imm,
	[BPF_ALU | BPF_OR | BPF_X] =	or_reg,
	[BPF_ALU | BPF_OR | BPF_K] =	or_imm,
	[BPF_ALU | BPF_ADD | BPF_X] =	add_reg,
	[BPF_ALU | BPF_ADD | BPF_K] =	add_imm,
	[BPF_ALU | BPF_SUB | BPF_X] =	sub_reg,
	[BPF_ALU | BPF_SUB | BPF_K] =	sub_imm,
1806
	[BPF_ALU | BPF_NEG] =		neg_reg,
1807
	[BPF_ALU | BPF_LSH | BPF_K] =	shl_imm,
1808
	[BPF_ALU | BPF_END | BPF_X] =	end_reg32,
1809 1810 1811 1812 1813 1814 1815
	[BPF_LD | BPF_IMM | BPF_DW] =	imm_ld8,
	[BPF_LD | BPF_ABS | BPF_B] =	data_ld1,
	[BPF_LD | BPF_ABS | BPF_H] =	data_ld2,
	[BPF_LD | BPF_ABS | BPF_W] =	data_ld4,
	[BPF_LD | BPF_IND | BPF_B] =	data_ind_ld1,
	[BPF_LD | BPF_IND | BPF_H] =	data_ind_ld2,
	[BPF_LD | BPF_IND | BPF_W] =	data_ind_ld4,
1816 1817
	[BPF_LDX | BPF_MEM | BPF_B] =	mem_ldx1,
	[BPF_LDX | BPF_MEM | BPF_H] =	mem_ldx2,
1818
	[BPF_LDX | BPF_MEM | BPF_W] =	mem_ldx4,
1819
	[BPF_LDX | BPF_MEM | BPF_DW] =	mem_ldx8,
1820 1821
	[BPF_STX | BPF_MEM | BPF_B] =	mem_stx1,
	[BPF_STX | BPF_MEM | BPF_H] =	mem_stx2,
1822
	[BPF_STX | BPF_MEM | BPF_W] =	mem_stx4,
1823 1824 1825 1826 1827
	[BPF_STX | BPF_MEM | BPF_DW] =	mem_stx8,
	[BPF_ST | BPF_MEM | BPF_B] =	mem_st1,
	[BPF_ST | BPF_MEM | BPF_H] =	mem_st2,
	[BPF_ST | BPF_MEM | BPF_W] =	mem_st4,
	[BPF_ST | BPF_MEM | BPF_DW] =	mem_st8,
1828 1829 1830 1831
	[BPF_JMP | BPF_JA | BPF_K] =	jump,
	[BPF_JMP | BPF_JEQ | BPF_K] =	jeq_imm,
	[BPF_JMP | BPF_JGT | BPF_K] =	jgt_imm,
	[BPF_JMP | BPF_JGE | BPF_K] =	jge_imm,
1832 1833
	[BPF_JMP | BPF_JLT | BPF_K] =	jlt_imm,
	[BPF_JMP | BPF_JLE | BPF_K] =	jle_imm,
1834 1835 1836 1837 1838
	[BPF_JMP | BPF_JSET | BPF_K] =	jset_imm,
	[BPF_JMP | BPF_JNE | BPF_K] =	jne_imm,
	[BPF_JMP | BPF_JEQ | BPF_X] =	jeq_reg,
	[BPF_JMP | BPF_JGT | BPF_X] =	jgt_reg,
	[BPF_JMP | BPF_JGE | BPF_X] =	jge_reg,
1839 1840
	[BPF_JMP | BPF_JLT | BPF_X] =	jlt_reg,
	[BPF_JMP | BPF_JLE | BPF_X] =	jle_reg,
1841 1842 1843 1844 1845 1846 1847 1848 1849 1850 1851 1852 1853 1854 1855 1856 1857 1858 1859 1860
	[BPF_JMP | BPF_JSET | BPF_X] =	jset_reg,
	[BPF_JMP | BPF_JNE | BPF_X] =	jne_reg,
	[BPF_JMP | BPF_EXIT] =		goto_out,
};

/* --- Misc code --- */
static void br_set_offset(u64 *instr, u16 offset)
{
	u16 addr_lo, addr_hi;

	addr_lo = offset & (OP_BR_ADDR_LO >> __bf_shf(OP_BR_ADDR_LO));
	addr_hi = offset != addr_lo;
	*instr &= ~(OP_BR_ADDR_HI | OP_BR_ADDR_LO);
	*instr |= FIELD_PREP(OP_BR_ADDR_HI, addr_hi);
	*instr |= FIELD_PREP(OP_BR_ADDR_LO, addr_lo);
}

/* --- Assembler logic --- */
static int nfp_fixup_branches(struct nfp_prog *nfp_prog)
{
1861
	struct nfp_insn_meta *meta, *jmp_dst;
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1862
	u32 idx, br_idx;
1863

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1864
	list_for_each_entry(meta, &nfp_prog->insns, l) {
1865 1866 1867 1868 1869
		if (meta->skip)
			continue;
		if (BPF_CLASS(meta->insn.code) != BPF_JMP)
			continue;

1870
		if (list_is_last(&meta->l, &nfp_prog->insns))
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			idx = nfp_prog->last_bpf_off;
1872 1873
		else
			idx = list_next_entry(meta, l)->off - 1;
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		br_idx = nfp_prog_offset_to_index(nfp_prog, idx);

1877 1878 1879 1880 1881 1882 1883 1884 1885
		if (!nfp_is_br(nfp_prog->prog[br_idx])) {
			pr_err("Fixup found block not ending in branch %d %02x %016llx!!\n",
			       br_idx, meta->insn.code, nfp_prog->prog[br_idx]);
			return -ELOOP;
		}
		/* Leave special branches for later */
		if (FIELD_GET(OP_BR_SPECIAL, nfp_prog->prog[br_idx]))
			continue;

1886 1887
		if (!meta->jmp_dst) {
			pr_err("Non-exit jump doesn't have destination info recorded!!\n");
1888 1889 1890
			return -ELOOP;
		}

1891
		jmp_dst = meta->jmp_dst;
1892

1893
		if (jmp_dst->skip) {
1894 1895 1896 1897 1898 1899 1900 1901
			pr_err("Branch landing on removed instruction!!\n");
			return -ELOOP;
		}

		for (idx = nfp_prog_offset_to_index(nfp_prog, meta->off);
		     idx <= br_idx; idx++) {
			if (!nfp_is_br(nfp_prog->prog[idx]))
				continue;
1902
			br_set_offset(&nfp_prog->prog[idx], jmp_dst->off);
1903 1904 1905 1906 1907 1908 1909 1910 1911 1912 1913 1914 1915 1916 1917 1918 1919 1920 1921 1922 1923 1924 1925 1926 1927 1928 1929 1930 1931 1932 1933 1934
		}
	}

	/* Fixup 'goto out's separately, they can be scattered around */
	for (br_idx = 0; br_idx < nfp_prog->prog_len; br_idx++) {
		enum br_special special;

		if ((nfp_prog->prog[br_idx] & OP_BR_BASE_MASK) != OP_BR_BASE)
			continue;

		special = FIELD_GET(OP_BR_SPECIAL, nfp_prog->prog[br_idx]);
		switch (special) {
		case OP_BR_NORMAL:
			break;
		case OP_BR_GO_OUT:
			br_set_offset(&nfp_prog->prog[br_idx],
				      nfp_prog->tgt_out);
			break;
		case OP_BR_GO_ABORT:
			br_set_offset(&nfp_prog->prog[br_idx],
				      nfp_prog->tgt_abort);
			break;
		}

		nfp_prog->prog[br_idx] &= ~OP_BR_SPECIAL;
	}

	return 0;
}

static void nfp_intro(struct nfp_prog *nfp_prog)
{
1935 1936 1937
	wrp_immed(nfp_prog, plen_reg(nfp_prog), GENMASK(13, 0));
	emit_alu(nfp_prog, plen_reg(nfp_prog),
		 plen_reg(nfp_prog), ALU_OP_AND, pv_len(nfp_prog));
1938 1939
}

1940 1941 1942 1943 1944 1945 1946 1947 1948 1949 1950 1951 1952 1953 1954 1955 1956 1957 1958
static void nfp_outro_tc_da(struct nfp_prog *nfp_prog)
{
	/* TC direct-action mode:
	 *   0,1   ok        NOT SUPPORTED[1]
	 *   2   drop  0x22 -> drop,  count as stat1
	 *   4,5 nuke  0x02 -> drop
	 *   7  redir  0x44 -> redir, count as stat2
	 *   * unspec  0x11 -> pass,  count as stat0
	 *
	 * [1] We can't support OK and RECLASSIFY because we can't tell TC
	 *     the exact decision made.  We are forced to support UNSPEC
	 *     to handle aborts so that's the only one we handle for passing
	 *     packets up the stack.
	 */
	/* Target for aborts */
	nfp_prog->tgt_abort = nfp_prog_current_offset(nfp_prog);

	emit_br_def(nfp_prog, nfp_prog->tgt_done, 2);

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1959
	wrp_mov(nfp_prog, reg_a(0), NFP_BPF_ABI_FLAGS);
1960 1961 1962 1963 1964 1965 1966 1967
	emit_ld_field(nfp_prog, reg_a(0), 0xc, reg_imm(0x11), SHF_SC_L_SHF, 16);

	/* Target for normal exits */
	nfp_prog->tgt_out = nfp_prog_current_offset(nfp_prog);

	/* if R0 > 7 jump to abort */
	emit_alu(nfp_prog, reg_none(), reg_imm(7), ALU_OP_SUB, reg_b(0));
	emit_br(nfp_prog, BR_BLO, nfp_prog->tgt_abort, 0);
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Jakub Kicinski 已提交
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	wrp_mov(nfp_prog, reg_a(0), NFP_BPF_ABI_FLAGS);
1969 1970 1971 1972 1973 1974 1975 1976 1977 1978 1979 1980 1981 1982 1983 1984 1985 1986 1987 1988 1989 1990

	wrp_immed(nfp_prog, reg_b(2), 0x41221211);
	wrp_immed(nfp_prog, reg_b(3), 0x41001211);

	emit_shf(nfp_prog, reg_a(1),
		 reg_none(), SHF_OP_NONE, reg_b(0), SHF_SC_L_SHF, 2);

	emit_alu(nfp_prog, reg_none(), reg_a(1), ALU_OP_OR, reg_imm(0));
	emit_shf(nfp_prog, reg_a(2),
		 reg_imm(0xf), SHF_OP_AND, reg_b(2), SHF_SC_R_SHF, 0);

	emit_alu(nfp_prog, reg_none(), reg_a(1), ALU_OP_OR, reg_imm(0));
	emit_shf(nfp_prog, reg_b(2),
		 reg_imm(0xf), SHF_OP_AND, reg_b(3), SHF_SC_R_SHF, 0);

	emit_br_def(nfp_prog, nfp_prog->tgt_done, 2);

	emit_shf(nfp_prog, reg_b(2),
		 reg_a(2), SHF_OP_OR, reg_b(2), SHF_SC_L_SHF, 4);
	emit_ld_field(nfp_prog, reg_a(0), 0xc, reg_b(2), SHF_SC_L_SHF, 16);
}

1991 1992 1993 1994 1995 1996 1997 1998 1999 2000 2001 2002 2003 2004
static void nfp_outro_xdp(struct nfp_prog *nfp_prog)
{
	/* XDP return codes:
	 *   0 aborted  0x82 -> drop,  count as stat3
	 *   1    drop  0x22 -> drop,  count as stat1
	 *   2    pass  0x11 -> pass,  count as stat0
	 *   3      tx  0x44 -> redir, count as stat2
	 *   * unknown  0x82 -> drop,  count as stat3
	 */
	/* Target for aborts */
	nfp_prog->tgt_abort = nfp_prog_current_offset(nfp_prog);

	emit_br_def(nfp_prog, nfp_prog->tgt_done, 2);

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Jakub Kicinski 已提交
2005
	wrp_mov(nfp_prog, reg_a(0), NFP_BPF_ABI_FLAGS);
2006 2007 2008 2009 2010 2011 2012 2013 2014 2015 2016 2017 2018 2019 2020 2021 2022 2023 2024 2025
	emit_ld_field(nfp_prog, reg_a(0), 0xc, reg_imm(0x82), SHF_SC_L_SHF, 16);

	/* Target for normal exits */
	nfp_prog->tgt_out = nfp_prog_current_offset(nfp_prog);

	/* if R0 > 3 jump to abort */
	emit_alu(nfp_prog, reg_none(), reg_imm(3), ALU_OP_SUB, reg_b(0));
	emit_br(nfp_prog, BR_BLO, nfp_prog->tgt_abort, 0);

	wrp_immed(nfp_prog, reg_b(2), 0x44112282);

	emit_shf(nfp_prog, reg_a(1),
		 reg_none(), SHF_OP_NONE, reg_b(0), SHF_SC_L_SHF, 3);

	emit_alu(nfp_prog, reg_none(), reg_a(1), ALU_OP_OR, reg_imm(0));
	emit_shf(nfp_prog, reg_b(2),
		 reg_imm(0xff), SHF_OP_AND, reg_b(2), SHF_SC_R_SHF, 0);

	emit_br_def(nfp_prog, nfp_prog->tgt_done, 2);

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Jakub Kicinski 已提交
2026
	wrp_mov(nfp_prog, reg_a(0), NFP_BPF_ABI_FLAGS);
2027 2028 2029
	emit_ld_field(nfp_prog, reg_a(0), 0xc, reg_b(2), SHF_SC_L_SHF, 16);
}

2030 2031
static void nfp_outro(struct nfp_prog *nfp_prog)
{
2032 2033
	switch (nfp_prog->type) {
	case BPF_PROG_TYPE_SCHED_CLS:
2034 2035
		nfp_outro_tc_da(nfp_prog);
		break;
2036
	case BPF_PROG_TYPE_XDP:
2037 2038
		nfp_outro_xdp(nfp_prog);
		break;
2039 2040
	default:
		WARN_ON(1);
2041 2042 2043 2044 2045 2046
	}
}

static int nfp_translate(struct nfp_prog *nfp_prog)
{
	struct nfp_insn_meta *meta;
2047
	int err;
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

	nfp_intro(nfp_prog);
	if (nfp_prog->error)
		return nfp_prog->error;

	list_for_each_entry(meta, &nfp_prog->insns, l) {
		instr_cb_t cb = instr_cb[meta->insn.code];

		meta->off = nfp_prog_current_offset(nfp_prog);

		if (meta->skip) {
			nfp_prog->n_translated++;
			continue;
		}

		if (nfp_meta_has_prev(nfp_prog, meta) &&
		    nfp_meta_prev(meta)->double_cb)
			cb = nfp_meta_prev(meta)->double_cb;
		if (!cb)
			return -ENOENT;
		err = cb(nfp_prog, meta);
		if (err)
			return err;

		nfp_prog->n_translated++;
	}

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Jiong Wang 已提交
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	nfp_prog->last_bpf_off = nfp_prog_current_offset(nfp_prog) - 1;

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	nfp_outro(nfp_prog);
	if (nfp_prog->error)
		return nfp_prog->error;

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	wrp_nops(nfp_prog, NFP_USTORE_PREFETCH_WINDOW);
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	if (nfp_prog->error)
		return nfp_prog->error;

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	return nfp_fixup_branches(nfp_prog);
}

/* --- Optimizations --- */
static void nfp_bpf_opt_reg_init(struct nfp_prog *nfp_prog)
{
	struct nfp_insn_meta *meta;

	list_for_each_entry(meta, &nfp_prog->insns, l) {
		struct bpf_insn insn = meta->insn;

		/* Programs converted from cBPF start with register xoring */
		if (insn.code == (BPF_ALU64 | BPF_XOR | BPF_X) &&
		    insn.src_reg == insn.dst_reg)
			continue;

		/* Programs start with R6 = R1 but we ignore the skb pointer */
		if (insn.code == (BPF_ALU64 | BPF_MOV | BPF_X) &&
		    insn.src_reg == 1 && insn.dst_reg == 6)
			meta->skip = true;

		/* Return as soon as something doesn't match */
		if (!meta->skip)
			return;
	}
}

/* Remove masking after load since our load guarantees this is not needed */
static void nfp_bpf_opt_ld_mask(struct nfp_prog *nfp_prog)
{
	struct nfp_insn_meta *meta1, *meta2;
	const s32 exp_mask[] = {
		[BPF_B] = 0x000000ffU,
		[BPF_H] = 0x0000ffffU,
		[BPF_W] = 0xffffffffU,
	};

	nfp_for_each_insn_walk2(nfp_prog, meta1, meta2) {
		struct bpf_insn insn, next;

		insn = meta1->insn;
		next = meta2->insn;

		if (BPF_CLASS(insn.code) != BPF_LD)
			continue;
		if (BPF_MODE(insn.code) != BPF_ABS &&
		    BPF_MODE(insn.code) != BPF_IND)
			continue;

		if (next.code != (BPF_ALU64 | BPF_AND | BPF_K))
			continue;

		if (!exp_mask[BPF_SIZE(insn.code)])
			continue;
		if (exp_mask[BPF_SIZE(insn.code)] != next.imm)
			continue;

		if (next.src_reg || next.dst_reg)
			continue;

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		if (meta2->flags & FLAG_INSN_IS_JUMP_DST)
			continue;

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		meta2->skip = true;
	}
}

static void nfp_bpf_opt_ld_shift(struct nfp_prog *nfp_prog)
{
	struct nfp_insn_meta *meta1, *meta2, *meta3;

	nfp_for_each_insn_walk3(nfp_prog, meta1, meta2, meta3) {
		struct bpf_insn insn, next1, next2;

		insn = meta1->insn;
		next1 = meta2->insn;
		next2 = meta3->insn;

		if (BPF_CLASS(insn.code) != BPF_LD)
			continue;
		if (BPF_MODE(insn.code) != BPF_ABS &&
		    BPF_MODE(insn.code) != BPF_IND)
			continue;
		if (BPF_SIZE(insn.code) != BPF_W)
			continue;

		if (!(next1.code == (BPF_LSH | BPF_K | BPF_ALU64) &&
		      next2.code == (BPF_RSH | BPF_K | BPF_ALU64)) &&
		    !(next1.code == (BPF_RSH | BPF_K | BPF_ALU64) &&
		      next2.code == (BPF_LSH | BPF_K | BPF_ALU64)))
			continue;

		if (next1.src_reg || next1.dst_reg ||
		    next2.src_reg || next2.dst_reg)
			continue;

		if (next1.imm != 0x20 || next2.imm != 0x20)
			continue;

		meta2->skip = true;
		meta3->skip = true;
	}
}

static int nfp_bpf_optimize(struct nfp_prog *nfp_prog)
{
	nfp_bpf_opt_reg_init(nfp_prog);

	nfp_bpf_opt_ld_mask(nfp_prog);
	nfp_bpf_opt_ld_shift(nfp_prog);

	return 0;
}

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static int nfp_bpf_ustore_calc(struct nfp_prog *nfp_prog, __le64 *ustore)
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{
	int i;

	for (i = 0; i < nfp_prog->prog_len; i++) {
		int err;

		err = nfp_ustore_check_valid_no_ecc(nfp_prog->prog[i]);
		if (err)
			return err;

		nfp_prog->prog[i] = nfp_ustore_calc_ecc_insn(nfp_prog->prog[i]);
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		ustore[i] = cpu_to_le64(nfp_prog->prog[i]);
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	}

	return 0;
}

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int nfp_bpf_jit(struct nfp_prog *nfp_prog)
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{
	int ret;

	ret = nfp_bpf_optimize(nfp_prog);
	if (ret)
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		return ret;
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	ret = nfp_translate(nfp_prog);
	if (ret) {
		pr_err("Translation failed with error %d (translated: %u)\n",
		       ret, nfp_prog->n_translated);
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		return -EINVAL;
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	}

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	return nfp_bpf_ustore_calc(nfp_prog, (__force __le64 *)nfp_prog->prog);
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}