ia32_emitter.c 107 KB
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/*
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 * Copyright (C) 1995-2008 University of Karlsruhe.  All right reserved.
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 *
 * This file is part of libFirm.
 *
 * This file may be distributed and/or modified under the terms of the
 * GNU General Public License version 2 as published by the Free Software
 * Foundation and appearing in the file LICENSE.GPL included in the
 * packaging of this file.
 *
 * Licensees holding valid libFirm Professional Edition licenses may use
 * this file in accordance with the libFirm Commercial License.
 * Agreement provided with the Software.
 *
 * This file is provided AS IS with NO WARRANTY OF ANY KIND, INCLUDING THE
 * WARRANTY OF DESIGN, MERCHANTABILITY AND FITNESS FOR A PARTICULAR
 * PURPOSE.
 */

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/**
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 * @file
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 * @brief       This file implements the ia32 node emitter.
 * @author      Christian Wuerdig, Matthias Braun
 * @version     $Id$
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 *
 * Summary table for x86 floatingpoint compares:
 *   pnc_Eq  => !P && E
 *   pnc_Lt  => !P && B
 *   pnc_Le  => !P && BE
 *   pnc_Gt  => A
 *   pnc_Ge  => AE
 *   pnc_Lg  => P || NE
 *   pnc_Leg => NP  (ordered)
 *   pnc_Uo  => P
 *   pnc_Ue  => E
 *   pnc_Ul  => B
 *   pnc_Ule => BE
 *   pnc_Ug  => P || A
 *   pnc_Uge => P || AE
 *   pnc_Ne  => NE
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 */
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#include "config.h"
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#include <limits.h>

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#include "xmalloc.h"
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#include "tv.h"
#include "iredges.h"
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#include "debug.h"
#include "irgwalk.h"
#include "irprintf.h"
#include "irop_t.h"
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#include "irargs_t.h"
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#include "irprog_t.h"
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#include "iredges_t.h"
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#include "irtools.h"
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#include "execfreq.h"
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#include "error.h"
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#include "raw_bitset.h"
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#include "dbginfo.h"
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#include "lc_opts.h"
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#include "../besched.h"
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#include "../benode.h"
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#include "../beabi.h"
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#include "../be_dbgout.h"
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#include "../beemitter.h"
#include "../begnuas.h"
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#include "../beirg.h"
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#include "../be_dbgout.h"
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#include "ia32_emitter.h"
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#include "gen_ia32_emitter.h"
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#include "gen_ia32_regalloc_if.h"
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#include "ia32_nodes_attr.h"
#include "ia32_new_nodes.h"
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#include "ia32_map_regs.h"
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#include "ia32_architecture.h"
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#include "bearch_ia32_t.h"
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DEBUG_ONLY(static firm_dbg_module_t *dbg = NULL;)

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#define SNPRINTF_BUF_LEN 128

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static const ia32_isa_t *isa;
static ia32_code_gen_t  *cg;
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static char              pic_base_label[128];
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static ir_label_t        exc_label_id;
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static int               mark_spill_reload = 0;
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static int               do_pic;
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/** Return the next block in Block schedule */
static ir_node *get_prev_block_sched(const ir_node *block)
{
	return get_irn_link(block);
}

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/** Checks if the current block is a fall-through target. */
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static int is_fallthrough(const ir_node *cfgpred)
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{
	ir_node *pred;

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	if (!is_Proj(cfgpred))
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		return 1;
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	pred = get_Proj_pred(cfgpred);
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	if (is_ia32_SwitchJmp(pred))
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		return 0;
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	return 1;
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}

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/**
 * returns non-zero if the given block needs a label
 * because of being a jump-target (and not a fall-through)
 */
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static int block_needs_label(const ir_node *block)
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{
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	int need_label = 1;
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	int  n_cfgpreds = get_Block_n_cfgpreds(block);

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	if (has_Block_entity(block))
		return 1;

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	if (n_cfgpreds == 0) {
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		need_label = 0;
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	} else if (n_cfgpreds == 1) {
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		ir_node *cfgpred       = get_Block_cfgpred(block, 0);
		ir_node *cfgpred_block = get_nodes_block(cfgpred);
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		if (get_prev_block_sched(block) == cfgpred_block
				&& is_fallthrough(cfgpred)) {
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			need_label = 0;
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		}
	}

	return need_label;
}

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/**
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 * Returns the register at in position pos.
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 */
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static const arch_register_t *get_in_reg(const ir_node *irn, int pos)
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{
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	ir_node               *op;
	const arch_register_t *reg = NULL;
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	assert(get_irn_arity(irn) > pos && "Invalid IN position");

	/* The out register of the operator at position pos is the
	   in register we need. */
	op = get_irn_n(irn, pos);

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	reg = arch_get_irn_register(op);
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	assert(reg && "no in register found");
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	if (reg == &ia32_gp_regs[REG_GP_NOREG])
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		panic("trying to emit noreg for %+F input %d", irn, pos);
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	/* in case of unknown register: just return a valid register */
	if (reg == &ia32_gp_regs[REG_GP_UKNWN]) {
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		const arch_register_req_t *req = arch_get_register_req(irn, pos);
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		if (arch_register_req_is(req, limited)) {
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			/* in case of limited requirements: get the first allowed register */
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			unsigned idx = rbitset_next(req->limited, 0, 1);
			reg = arch_register_for_index(req->cls, idx);
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		} else {
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			/* otherwise get first register in class */
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			reg = arch_register_for_index(req->cls, 0);
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		}
	}
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	return reg;
}

/**
 * Returns the register at out position pos.
 */
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static const arch_register_t *get_out_reg(const ir_node *irn, int pos)
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{
	ir_node               *proj;
	const arch_register_t *reg = NULL;
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	/* 1st case: irn is not of mode_T, so it has only                 */
	/*           one OUT register -> good                             */
	/* 2nd case: irn is of mode_T -> collect all Projs and ask the    */
	/*           Proj with the corresponding projnum for the register */

	if (get_irn_mode(irn) != mode_T) {
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		assert(pos == 0);
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		reg = arch_get_irn_register(irn);
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	} else if (is_ia32_irn(irn)) {
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		reg = arch_irn_get_register(irn, pos);
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	} else {
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		const ir_edge_t *edge;

		foreach_out_edge(irn, edge) {
			proj = get_edge_src_irn(edge);
			assert(is_Proj(proj) && "non-Proj from mode_T node");
			if (get_Proj_proj(proj) == pos) {
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				reg = arch_get_irn_register(proj);
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				break;
			}
		}
	}

	assert(reg && "no out register found");
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	return reg;
}

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/**
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 * Add a number to a prefix. This number will not be used a second time.
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 */
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static char *get_unique_label(char *buf, size_t buflen, const char *prefix)
{
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	static unsigned long id = 0;
	snprintf(buf, buflen, "%s%lu", prefix, ++id);
	return buf;
}

/*************************************************************
 *             _       _    __   _          _
 *            (_)     | |  / _| | |        | |
 *  _ __  _ __ _ _ __ | |_| |_  | |__   ___| |_ __   ___ _ __
 * | '_ \| '__| | '_ \| __|  _| | '_ \ / _ \ | '_ \ / _ \ '__|
 * | |_) | |  | | | | | |_| |   | | | |  __/ | |_) |  __/ |
 * | .__/|_|  |_|_| |_|\__|_|   |_| |_|\___|_| .__/ \___|_|
 * | |                                       | |
 * |_|                                       |_|
 *************************************************************/

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/**
 * Emit the name of the 8bit low register
 */
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static void emit_8bit_register(const arch_register_t *reg)
{
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	const char *reg_name = arch_register_get_name(reg);
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	be_emit_char('%');
	be_emit_char(reg_name[1]);
	be_emit_char('l');
}

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/**
 * Emit the name of the 8bit high register
 */
static void emit_8bit_register_high(const arch_register_t *reg)
{
	const char *reg_name = arch_register_get_name(reg);

	be_emit_char('%');
	be_emit_char(reg_name[1]);
	be_emit_char('h');
}

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static void emit_16bit_register(const arch_register_t *reg)
{
	const char *reg_name = ia32_get_mapped_reg_name(isa->regs_16bit, reg);
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	be_emit_char('%');
	be_emit_string(reg_name);
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}

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/**
 * emit a register, possible shortened by a mode
 *
 * @param reg   the register
 * @param mode  the mode of the register or NULL for full register
 */
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static void emit_register(const arch_register_t *reg, const ir_mode *mode)
{
	const char *reg_name;

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	if (mode != NULL) {
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		int size = get_mode_size_bits(mode);
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		switch (size) {
			case  8: emit_8bit_register(reg);  return;
			case 16: emit_16bit_register(reg); return;
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		}
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		assert(mode_is_float(mode) || size == 32);
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	}

	reg_name = arch_register_get_name(reg);
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	be_emit_char('%');
	be_emit_string(reg_name);
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}

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void ia32_emit_source_register(const ir_node *node, int pos)
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{
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	const arch_register_t *reg = get_in_reg(node, pos);
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	emit_register(reg, NULL);
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}

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static void ia32_emit_entity(ir_entity *entity, int no_pic_adjust)
{
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	be_gas_emit_entity(entity);
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	if (get_entity_owner(entity) == get_tls_type()) {
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		if (get_entity_visibility(entity) == ir_visibility_external) {
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			be_emit_cstring("@INDNTPOFF");
		} else {
			be_emit_cstring("@NTPOFF");
		}
	}

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	if (do_pic && !no_pic_adjust) {
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		be_emit_char('-');
		be_emit_string(pic_base_label);
	}
}

static void emit_ia32_Immediate_no_prefix(const ir_node *node)
{
	const ia32_immediate_attr_t *attr = get_ia32_immediate_attr_const(node);

	if (attr->symconst != NULL) {
		if (attr->sc_sign)
			be_emit_char('-');
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		ia32_emit_entity(attr->symconst, attr->no_pic_adjust);
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	}
	if (attr->symconst == NULL || attr->offset != 0) {
		if (attr->symconst != NULL) {
			be_emit_irprintf("%+d", attr->offset);
		} else {
			be_emit_irprintf("0x%X", attr->offset);
		}
	}
}

static void emit_ia32_Immediate(const ir_node *node)
{
	be_emit_char('$');
	emit_ia32_Immediate_no_prefix(node);
}
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void ia32_emit_8bit_source_register_or_immediate(const ir_node *node, int pos)
{
	const arch_register_t *reg;
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	const ir_node         *in = get_irn_n(node, pos);
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	if (is_ia32_Immediate(in)) {
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		emit_ia32_Immediate(in);
		return;
	}

	reg = get_in_reg(node, pos);
	emit_8bit_register(reg);
}

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void ia32_emit_8bit_high_source_register(const ir_node *node, int pos)
{
	const arch_register_t *reg = get_in_reg(node, pos);
	emit_8bit_register_high(reg);
}

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void ia32_emit_16bit_source_register_or_immediate(const ir_node *node, int pos)
{
	const arch_register_t *reg;
	const ir_node         *in = get_irn_n(node, pos);
	if (is_ia32_Immediate(in)) {
		emit_ia32_Immediate(in);
		return;
	}

	reg = get_in_reg(node, pos);
	emit_16bit_register(reg);
}

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void ia32_emit_dest_register(const ir_node *node, int pos)
{
	const arch_register_t *reg  = get_out_reg(node, pos);

	emit_register(reg, NULL);
}

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void ia32_emit_dest_register_size(const ir_node *node, int pos)
{
	const arch_register_t *reg  = get_out_reg(node, pos);

	emit_register(reg, get_ia32_ls_mode(node));
}

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void ia32_emit_8bit_dest_register(const ir_node *node, int pos)
{
	const arch_register_t *reg  = get_out_reg(node, pos);

	emit_register(reg, mode_Bu);
}

void ia32_emit_x87_register(const ir_node *node, int pos)
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{
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	const ia32_x87_attr_t *attr = get_ia32_x87_attr_const(node);
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	assert(pos < 3);
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	be_emit_char('%');
	be_emit_string(attr->x87[pos]->name);
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}
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static void ia32_emit_mode_suffix_mode(const ir_mode *mode)
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{
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	assert(mode_is_int(mode) || mode_is_reference(mode));
	switch (get_mode_size_bits(mode)) {
		case 8:  be_emit_char('b');     return;
		case 16: be_emit_char('w');     return;
		case 32: be_emit_char('l');     return;
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		/* gas docu says q is the suffix but gcc, objdump and icc use ll
		 * apparently */
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		case 64: be_emit_cstring("ll"); return;
	}
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	panic("Can't output mode_suffix for %+F", mode);
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}

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void ia32_emit_mode_suffix(const ir_node *node)
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{
	ir_mode *mode = get_ia32_ls_mode(node);
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	if (mode == NULL)
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		mode = mode_Iu;

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	ia32_emit_mode_suffix_mode(mode);
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}

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void ia32_emit_x87_mode_suffix(const ir_node *node)
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{
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	ir_mode *mode;

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	/* we only need to emit the mode on address mode */
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	if (get_ia32_op_type(node) == ia32_Normal)
		return;

	mode = get_ia32_ls_mode(node);
	assert(mode != NULL);

	if (mode_is_float(mode)) {
		switch (get_mode_size_bits(mode)) {
			case 32: be_emit_char('s'); return;
			case 64: be_emit_char('l'); return;
			case 80:
			case 96: be_emit_char('t'); return;
		}
	} else {
		assert(mode_is_int(mode));
		switch (get_mode_size_bits(mode)) {
			case 16: be_emit_char('s');     return;
			case 32: be_emit_char('l');     return;
			/* gas docu says q is the suffix but gcc, objdump and icc use ll
			 * apparently */
			case 64: be_emit_cstring("ll"); return;
		}
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	}
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	panic("Can't output mode_suffix for %+F", mode);
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}

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static char get_xmm_mode_suffix(ir_mode *mode)
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{
	assert(mode_is_float(mode));
	switch(get_mode_size_bits(mode)) {
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	case 32: return 's';
	case 64: return 'd';
	default: panic("Invalid XMM mode");
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	}
}

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void ia32_emit_xmm_mode_suffix(const ir_node *node)
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{
	ir_mode *mode = get_ia32_ls_mode(node);
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	assert(mode != NULL);
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	be_emit_char('s');
	be_emit_char(get_xmm_mode_suffix(mode));
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}

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void ia32_emit_xmm_mode_suffix_s(const ir_node *node)
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{
	ir_mode *mode = get_ia32_ls_mode(node);
	assert(mode != NULL);
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	be_emit_char(get_xmm_mode_suffix(mode));
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}

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void ia32_emit_extend_suffix(const ir_node *node)
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{
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	ir_mode *mode = get_ia32_ls_mode(node);
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	if (get_mode_size_bits(mode) == 32)
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		return;
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	be_emit_char(mode_is_signed(mode) ? 's' : 'z');
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	ia32_emit_mode_suffix_mode(mode);
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}

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void ia32_emit_source_register_or_immediate(const ir_node *node, int pos)
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{
	ir_node *in = get_irn_n(node, pos);
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	if (is_ia32_Immediate(in)) {
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		emit_ia32_Immediate(in);
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	} else {
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		const ir_mode         *mode = get_ia32_ls_mode(node);
		const arch_register_t *reg  = get_in_reg(node, pos);
		emit_register(reg, mode);
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	}
}

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/**
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 * Returns the target block for a control flow node.
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 */
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static ir_node *get_cfop_target_block(const ir_node *irn)
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{
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	assert(get_irn_mode(irn) == mode_X);
	return get_irn_link(irn);
}
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/**
 * Emits the target label for a control flow node.
 */
static void ia32_emit_cfop_target(const ir_node *node)
{
	ir_node *block = get_cfop_target_block(node);
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	be_gas_emit_block_name(block);
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}

/*
 * positive conditions for signed compares
 */
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static const char *const cmp2condition_s[] = {
	NULL, /* always false */
	"e",  /* == */
	"l",  /* <  */
	"le", /* <= */
	"g",  /* >  */
	"ge", /* >= */
	"ne", /* != */
	NULL  /* always true */
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};

/*
 * positive conditions for unsigned compares
 */
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static const char *const cmp2condition_u[] = {
	NULL, /* always false */
	"e",  /* == */
	"b",  /* <  */
	"be", /* <= */
	"a",  /* >  */
	"ae", /* >= */
	"ne", /* != */
	NULL  /* always true */
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};

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/**
 * Emit the suffix for a compare instruction.
 */
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static void ia32_emit_cmp_suffix(int pnc)
{
	const char *str;

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	if (pnc == ia32_pn_Cmp_parity) {
		be_emit_char('p');
		return;
	}
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	if (pnc & ia32_pn_Cmp_float || pnc & ia32_pn_Cmp_unsigned) {
		str = cmp2condition_u[pnc & 7];
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	} else {
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		str = cmp2condition_s[pnc & 7];
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	}

	be_emit_string(str);
}

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typedef enum ia32_emit_mod_t {
	EMIT_RESPECT_LS   = 1U << 0,
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	EMIT_ALTERNATE_AM = 1U << 1,
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	EMIT_LONG         = 1U << 2,
	EMIT_HIGH_REG     = 1U << 3,
	EMIT_LOW_REG      = 1U << 4
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} ia32_emit_mod_t;

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/**
 * Emits address mode.
 */
void ia32_emit_am(const ir_node *node)
{
	ir_entity *ent       = get_ia32_am_sc(node);
	int        offs      = get_ia32_am_offs_int(node);
	ir_node   *base      = get_irn_n(node, n_ia32_base);
	int        has_base  = !is_ia32_NoReg_GP(base);
	ir_node   *index     = get_irn_n(node, n_ia32_index);
	int        has_index = !is_ia32_NoReg_GP(index);

	/* just to be sure... */
	assert(!is_ia32_use_frame(node) || get_ia32_frame_ent(node) != NULL);

	/* emit offset */
	if (ent != NULL) {
		const ia32_attr_t *attr = get_ia32_attr_const(node);
		if (is_ia32_am_sc_sign(node))
			be_emit_char('-');
		ia32_emit_entity(ent, attr->data.am_sc_no_pic_adjust);
	}

	/* also handle special case if nothing is set */
	if (offs != 0 || (ent == NULL && !has_base && !has_index)) {
		if (ent != NULL) {
			be_emit_irprintf("%+d", offs);
		} else {
			be_emit_irprintf("%d", offs);
		}
	}

	if (has_base || has_index) {
		be_emit_char('(');

		/* emit base */
		if (has_base) {
			const arch_register_t *reg = get_in_reg(node, n_ia32_base);
			emit_register(reg, NULL);
		}

		/* emit index + scale */
		if (has_index) {
			const arch_register_t *reg = get_in_reg(node, n_ia32_index);
			int scale;
			be_emit_char(',');
			emit_register(reg, NULL);

			scale = get_ia32_am_scale(node);
			if (scale > 0) {
				be_emit_irprintf(",%d", 1 << scale);
			}
		}
		be_emit_char(')');
	}
}

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/**
 * fmt  parameter               output
 * ---- ----------------------  ---------------------------------------------
 * %%                           %
 * %AM  <node>                  address mode of the node
 * %AR  const arch_register_t*  address mode of the node or register
 * %ASx <node>                  address mode of the node or source register x
 * %Dx  <node>                  destination register x
 * %I   <node>                  immediate of the node
 * %L   <node>                  control flow target of the node
 * %M   <node>                  mode suffix of the node
 * %P   int                     condition code
 * %R   const arch_register_t*  register
 * %Sx  <node>                  source register x
 * %s   const char*             string
 * %u   unsigned int            unsigned int
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 * %d   signed int              signed int
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 *
 * x starts at 0
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 * # modifier for %ASx, %D, %R, and %S uses ls mode of node to alter register width
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 * * modifier does not prefix immediates with $, but AM with *
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 * l modifier for %lu and %ld
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 * > modifier to output high 8bit register (ah, bh)
 * < modifier to output low 8bit register (al, bl)
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 */
static void ia32_emitf(const ir_node *node, const char *fmt, ...)
{
	va_list ap;
	va_start(ap, fmt);

	for (;;) {
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		const char      *start = fmt;
		ia32_emit_mod_t  mod   = 0;
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		while (*fmt != '%' && *fmt != '\n' && *fmt != '\0')
			++fmt;
		if (fmt != start) {
			be_emit_string_len(start, fmt - start);
		}

		if (*fmt == '\n') {
			be_emit_finish_line_gas(node);
			++fmt;
			if (*fmt == '\0')
				break;
			continue;
		}

		if (*fmt == '\0')
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			break;
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		++fmt;
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		while (1) {
			switch(*fmt) {
			case '*': mod |= EMIT_ALTERNATE_AM; break;
			case '#': mod |= EMIT_RESPECT_LS;   break;
			case 'l': mod |= EMIT_LONG;         break;
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			case '>': mod |= EMIT_HIGH_REG;     break;
			case '<': mod |= EMIT_LOW_REG;      break;
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			default:
				goto end_of_mods;
			}
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			++fmt;
		}
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end_of_mods:
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		switch (*fmt++) {
			case '%':
				be_emit_char('%');
				break;

			case 'A': {
				switch (*fmt++) {
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emit_AM:
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					case 'M':
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						if (mod & EMIT_ALTERNATE_AM)
							be_emit_char('*');
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						ia32_emit_am(node);
						break;

					case 'R': {
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						const arch_register_t *reg = va_arg(ap, const arch_register_t*);
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						if (get_ia32_op_type(node) == ia32_AddrModeS) {
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							goto emit_AM;
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						} else {
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							if (mod & EMIT_ALTERNATE_AM)
								be_emit_char('*');
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							emit_register(reg, NULL);
						}
						break;
					}

					case 'S':
						if (get_ia32_op_type(node) == ia32_AddrModeS) {
							++fmt;
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							goto emit_AM;
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						} else {
							assert(get_ia32_op_type(node) == ia32_Normal);
							goto emit_S;
						}
						break;

					default: goto unknown;
				}
				break;
			}

			case 'D': {
				unsigned               pos;
				const arch_register_t *reg;

				if (*fmt < '0' || '9' <= *fmt)
					goto unknown;

				pos = *fmt++ - '0';
				reg = get_out_reg(node, pos);
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				emit_register(reg, mod & EMIT_RESPECT_LS ? get_ia32_ls_mode(node) : NULL);
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				break;
			}

			case 'I':
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				if (!(mod & EMIT_ALTERNATE_AM))
					be_emit_char('$');
				emit_ia32_Immediate_no_prefix(node);
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				break;

			case 'L':
				ia32_emit_cfop_target(node);
				break;

			case 'M': {
				ia32_emit_mode_suffix_mode(get_ia32_ls_mode(node));
				break;
			}

			case 'P': {
				int pnc = va_arg(ap, int);
				ia32_emit_cmp_suffix(pnc);
				break;
			}

			case 'R': {
				const arch_register_t *reg = va_arg(ap, const arch_register_t*);
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				if (mod & EMIT_HIGH_REG) {
					emit_8bit_register_high(reg);
				} else if (mod & EMIT_LOW_REG) {
					emit_8bit_register(reg);
				} else {
					emit_register(reg, mod & EMIT_RESPECT_LS ? get_ia32_ls_mode(node) : NULL);
				}
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				break;
			}

emit_S:
			case 'S': {
				unsigned       pos;
				const ir_node *in;

				if (*fmt < '0' || '9' <= *fmt)
					goto unknown;

				pos = *fmt++ - '0';
				in  = get_irn_n(node, pos);
				if (is_ia32_Immediate(in)) {
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					if (!(mod & EMIT_ALTERNATE_AM))
						be_emit_char('$');
					emit_ia32_Immediate_no_prefix(in);
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				} else {
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					const arch_register_t *reg;

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					if (mod & EMIT_ALTERNATE_AM)
						be_emit_char('*');
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					reg = get_in_reg(node, pos);
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					emit_register(reg, mod & EMIT_RESPECT_LS ? get_ia32_ls_mode(node) : NULL);
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				}
				break;
			}

			case 's': {
				const char *str = va_arg(ap, const char*);
				be_emit_string(str);
				break;
			}

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			case 'u':
				if (mod & EMIT_LONG) {
					unsigned long num = va_arg(ap, unsigned long);
					be_emit_irprintf("%lu", num);
				} else {
					unsigned num = va_arg(ap, unsigned);
					be_emit_irprintf("%u", num);
				}
				break;

			case 'd':
				if (mod & EMIT_LONG) {
					long num = va_arg(ap, long);
					be_emit_irprintf("%ld", num);
				} else {
					int num = va_arg(ap, int);
					be_emit_irprintf("%d", num);
				}
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				break;

			default:
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				panic("unknown format conversion in ia32_emitf()");
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		}
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	}

	va_end(ap);
}

/**
 * Emits registers and/or address mode of a binary operation.
 */
void ia32_emit_binop(const ir_node *node)
{
	if (is_ia32_Immediate(get_irn_n(node, n_ia32_binary_right))) {
		ia32_emitf(node, "%#S4, %#AS3");
	} else {
		ia32_emitf(node, "%#AS4, %#S3");
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	}
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}

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/**
 * Emits registers and/or address mode of a binary operation.
 */
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void ia32_emit_x87_binop(const ir_node *node)
{
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	switch(get_ia32_op_type(node)) {
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		case ia32_Normal:
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			{
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				const ia32_x87_attr_t *x87_attr = get_ia32_x87_attr_const(node);
				const arch_register_t *in1      = x87_attr->x87[0];
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				const arch_register_t *in       = x87_attr->x87[1];
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				const arch_register_t *out      = x87_attr->x87[2];
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				if (out == NULL) {
					out = in1;
				} else if (out == in) {
					in = in1;
				}
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				be_emit_char('%');
				be_emit_string(arch_register_get_name(in));
				be_emit_cstring(", %");
				be_emit_string(arch_register_get_name(out));
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			}
			break;
		case ia32_AddrModeS:
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			ia32_emit_am(node);
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			break;
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		case ia32_AddrModeD:
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		default:
			assert(0 && "unsupported op type");
	}
}

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/**
 * Emits registers and/or address mode of a unary operation.
 */
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void ia32_emit_unop(const ir_node *node, int pos)
{
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	char fmt[] = "%ASx";
	fmt[3] = '0' + pos;
	ia32_emitf(node, fmt);
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}

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static void emit_ia32_IMul(const ir_node *node)
{
	ir_node               *left    = get_irn_n(node, n_ia32_IMul_left);
	const arch_register_t *out_reg = get_out_reg(node, pn_ia32_IMul_res);

	/* do we need the 3-address form? */
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	if (is_ia32_NoReg_GP(left) ||
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			get_in_reg(node, n_ia32_IMul_left) != out_reg) {
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		ia32_emitf(node, "\timul%M %#S4, %#AS3, %#D0\n");
	} else {
		ia32_emitf(node, "\timul%M %#AS4, %#S3\n");
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	}
}

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/**
 * walks up a tree of copies/perms/spills/reloads to find the original value
 * that is moved around
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 */
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static ir_node *find_original_value(ir_node *node)
{
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	if (irn_visited(node))
		return NULL;

	mark_irn_visited(node);
	if (be_is_Copy(node)) {
		return find_original_value(be_get_Copy_op(node));
	} else if (be_is_CopyKeep(node)) {
		return find_original_value(be_get_CopyKeep_op(node));
	} else if (is_Proj(node)) {
		ir_node *pred = get_Proj_pred(node);
		if (be_is_Perm(pred)) {
			return find_original_value(get_irn_n(pred, get_Proj_proj(node)));
		} else if (be_is_MemPerm(pred)) {
			return find_original_value(get_irn_n(pred, get_Proj_proj(node) + 1));
		} else if (is_ia32_Load(pred)) {
			return find_original_value(get_irn_n(pred, n_ia32_Load_mem));
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		} else {
			return node;
		}
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	} else if (is_ia32_Store(node)) {
		return find_original_value(get_irn_n(node, n_ia32_Store_val));
	} else if (is_Phi(node)) {
		int i, arity;
		arity = get_irn_arity(node);
		for (i = 0; i < arity; ++i) {
			ir_node *in  = get_irn_n(node, i);
			ir_node *res = find_original_value(in);

			if (res != NULL)
				return res;
		}
		return NULL;
	} else {
		return node;
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	}
}

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static int determine_final_pnc(const ir_node *node, int flags_pos, int pnc)
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{
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	ir_node           *flags = get_irn_n(node, flags_pos);
	const ia32_attr_t *flags_attr;
	flags = skip_Proj(flags);

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	if (is_ia32_Sahf(flags)) {
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		ir_node *cmp = get_irn_n(flags, n_ia32_Sahf_val);
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		if (!(is_ia32_FucomFnstsw(cmp) || is_ia32_FucompFnstsw(cmp)
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				|| is_ia32_FucomppFnstsw(cmp) || is_ia32_FtstFnstsw(cmp))) {
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			inc_irg_visited(current_ir_graph);
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			cmp = find_original_value(cmp);
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			assert(cmp != NULL);
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			assert(is_ia32_FucomFnstsw(cmp) || is_ia32_FucompFnstsw(cmp)
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			       || is_ia32_FucomppFnstsw(cmp) || is_ia32_FtstFnstsw(cmp));
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		}
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		flags_attr = get_ia32_attr_const(cmp);
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		if (flags_attr->data.ins_permuted)
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			pnc = get_mirrored_pnc(pnc);
		pnc |= ia32_pn_Cmp_float;
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	} else if (is_ia32_Ucomi(flags) || is_ia32_Fucomi(flags)
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			|| is_ia32_Fucompi(flags)) {
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		flags_attr = get_ia32_attr_const(flags);

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		if (flags_attr->data.ins_permuted)
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			pnc = get_mirrored_pnc(pnc);
		pnc |= ia32_pn_Cmp_float;
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	} else {
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		flags_attr = get_ia32_attr_const(flags);

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		if (flags_attr->data.ins_permuted)
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			pnc = get_mirrored_pnc(pnc);
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		if (flags_attr->data.cmp_unsigned)
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			pnc |= ia32_pn_Cmp_unsigned;
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	}
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	return pnc;
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}

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static pn_Cmp ia32_get_negated_pnc(pn_Cmp pnc)
{
	ir_mode *mode = pnc & ia32_pn_Cmp_float ? mode_F : mode_Iu;
	return get_negated_pnc(pnc, mode);
}

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void ia32_emit_cmp_suffix_node(const ir_node *node, int flags_pos)
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{
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	pn_Cmp pnc = get_ia32_condcode(node);
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	pnc = determine_final_pnc(node, flags_pos, pnc);
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	ia32_emit_cmp_suffix(pnc);
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}
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/**
 * Emits an exception label for a given node.
 */
static void ia32_emit_exc_label(const ir_node *node)
{
	be_emit_string(be_gas_insn_label_prefix());
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	be_emit_irprintf("%lu", get_ia32_exc_label_id(node));
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}

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/**
 * Returns the Proj with projection number proj and NOT mode_M
 */
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static ir_node *get_proj(const ir_node *node, long proj)
{
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	const ir_edge_t *edge;
	ir_node         *src;

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	assert(get_irn_mode(node) == mode_T && "expected mode_T node");
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	foreach_out_edge(node, edge) {
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		src = get_edge_src_irn(edge);

		assert(is_Proj(src) && "Proj expected");
		if (get_irn_mode(src) == mode_M)
			continue;

		if (get_Proj_proj(src) == proj)
			return src;
	}
	return NULL;
}

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static int can_be_fallthrough(const ir_node *node)
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{
	ir_node *target_block = get_cfop_target_block(node);
	ir_node *block        = get_nodes_block(node);
	return get_prev_block_sched(target_block) == block;
}

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/**
 * Emits the jump sequence for a conditional jump (cmp + jmp_true + jmp_false)
 */
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static void emit_ia32_Jcc(const ir_node *node)
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{
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	int            need_parity_label = 0;
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	const ir_node *proj_true;
	const ir_node *proj_false;
	const ir_node *block;
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	pn_Cmp         pnc = get_ia32_condcode(node);
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	pnc = determine_final_pnc(node, 0, pnc);
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	/* get both Projs */
	proj_true = get_proj(node, pn_ia32_Jcc_true);
	assert(proj_true && "Jcc without true Proj");
1068

1069
1070
	proj_false = get_proj(node, pn_ia32_Jcc_false);
	assert(proj_false && "Jcc without false Proj");
1071

1072
	block      = get_nodes_block(node);
1073

1074
	if (can_be_fallthrough(proj_true)) {
1075
		/* exchange both proj's so the second one can be omitted */
1076
1077
		const ir_node *t = proj_true;

1078
1079
		proj_true  = proj_false;
		proj_false = t;
1080
		pnc        = ia32_get_negated_pnc(pnc);
1081
1082
	}

1083
1084
1085
	if (pnc & ia32_pn_Cmp_float) {
		/* Some floating point comparisons require a test of the parity flag,
		 * which indicates that the result is unordered */
1086
1087
1088
1089
1090
		switch (pnc & 0x0f) {
		case pn_Cmp_Uo: {
			ia32_emitf(proj_true, "\tjp %L\n");
			break;
		}
1091

1092
1093
1094
		case pn_Cmp_Leg:
			ia32_emitf(proj_true, "\tjnp %L\n");
			break;
1095

1096
1097
1098
1099
1100
1101
1102
1103
1104
1105
1106
1107
		case pn_Cmp_Eq:
		case pn_Cmp_Lt:
		case pn_Cmp_Le:
			/* we need a local label if the false proj is a fallthrough
			 * as the falseblock might have no label emitted then */
			if (can_be_fallthrough(proj_false)) {
				need_parity_label = 1;
				ia32_emitf(proj_false, "\tjp 1f\n");
			} else {
				ia32_emitf(proj_false, "\tjp %L\n");
			}
			goto emit_jcc;
1108

1109
1110
1111
1112
1113
		case pn_Cmp_Ug:
		case pn_Cmp_Uge:
		case pn_Cmp_Ne:
			ia32_emitf(proj_true, "\tjp %L\n");
			goto emit_jcc;
1114

1115
1116
		default:
			goto emit_jcc;
1117
1118
1119
		}
	} else {
emit_jcc:
1120
		ia32_emitf(proj_true, "\t