lower_dw.c 73 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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/**
 * @file
 * @brief   Lower Double word operations, ie 64bit -> 32bit, 32bit -> 16bit etc.
 * @date    8.10.2004
 * @author  Michael Beck
 * @version $Id$
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 */
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#include "config.h"
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#ifdef HAVE_STRING_H
# include <string.h>
#endif
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#include <stdlib.h>
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#include <assert.h>

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#include "error.h"
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#include "lowering.h"
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#include "irnode_t.h"
#include "irgraph_t.h"
#include "irmode_t.h"
#include "iropt_t.h"
#include "irgmod.h"
#include "tv_t.h"
#include "dbginfo_t.h"
#include "iropt_dbg.h"
#include "irflag_t.h"
#include "firmstat.h"
#include "irgwalk.h"
#include "ircons.h"
#include "irflag.h"
#include "irtools.h"
#include "debug.h"
#include "set.h"
#include "pmap.h"
#include "pdeq.h"
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#include "irdump.h"
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#include "array_t.h"
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/** A map from mode to a primitive type. */
static pmap *prim_types;

/** A map from (op, imode, omode) to Intrinsic functions entities. */
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static set *intrinsic_fkt;

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/** A map from (imode, omode) to conv function types. */
static set *conv_types;

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/** A map from a method type to its lowered type. */
static pmap *lowered_type;

/** The types for the binop and unop intrinsics. */
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static ir_type *binop_tp_u, *binop_tp_s, *unop_tp_u, *unop_tp_s, *shiftop_tp_u, *shiftop_tp_s, *tp_s, *tp_u;
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/** the debug handle */
DEBUG_ONLY(static firm_dbg_module_t *dbg = NULL;)

/**
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 * An entry in the (op, imode, omode) -> entity map.
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 */
typedef struct _op_mode_entry {
	const ir_op   *op;    /**< the op */
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	const ir_mode *imode; /**< the input mode */
	const ir_mode *omode; /**< the output mode */
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	ir_entity     *ent;   /**< the associated entity of this (op, imode, omode) triple */
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} op_mode_entry_t;

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/**
 * An entry in the (imode, omode) -> tp map.
 */
typedef struct _conv_tp_entry {
	const ir_mode *imode; /**< the input mode */
	const ir_mode *omode; /**< the output mode */
	ir_type       *mtd;   /**< the associated method type of this (imode, omode) pair */
} conv_tp_entry_t;

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/**
 * Every double word node will be replaced,
 * we need some store to hold the replacement:
 */
typedef struct _node_entry_t {
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	ir_node *low_word;    /**< the low word */
	ir_node *high_word;   /**< the high word */
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} node_entry_t;

enum lower_flags {
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	MUST_BE_LOWERED = 1,  /**< graph must be lowered */
	CF_CHANGED      = 2,  /**< control flow was changed */
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};

/**
 * The lower environment.
 */
typedef struct _lower_env_t {
	node_entry_t **entries;       /**< entries per node */
	struct obstack obst;          /**< an obstack holding the temporary data */
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	tarval   *tv_mode_bytes;      /**< a tarval containing the number of bytes in the lowered modes */
	tarval   *tv_mode_bits;       /**< a tarval containing the number of bits in the lowered modes */
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	pdeq     *waitq;              /**< a wait queue of all nodes that must be handled later */
	pmap     *proj_2_block;       /**< a map from ProjX to its destination blocks */
	const lwrdw_param_t *params;  /**< transformation parameter */
	unsigned flags;               /**< some flags */
	int      n_entries;           /**< number of entries */
} lower_env_t;

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/**
 * Get a primitive mode for a mode.
 */
static ir_type *get_primitive_type(ir_mode *mode) {
	pmap_entry *entry = pmap_find(prim_types, mode);
	ir_type *tp;
	char buf[64];

	if (entry)
		return entry->value;

	snprintf(buf, sizeof(buf), "_prim_%s", get_mode_name(mode));
	tp = new_type_primitive(new_id_from_str(buf), mode);

	pmap_insert(prim_types, mode, tp);
	return tp;
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}  /* get_primitive_type */
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/**
 * Create a method type for a Conv emulation from imode to omode.
 */
static ir_type *get_conv_type(ir_mode *imode, ir_mode *omode, lower_env_t *env) {
	conv_tp_entry_t key, *entry;
	ir_type *mtd;

	key.imode = imode;
	key.omode = omode;
	key.mtd   = NULL;

	entry = set_insert(conv_types, &key, sizeof(key), HASH_PTR(imode) ^ HASH_PTR(omode));
	if (! entry->mtd) {
		int n_param = 1, n_res = 1;
		char buf[64];

		if (imode == env->params->high_signed || imode == env->params->high_unsigned)
			n_param = 2;
		if (omode == env->params->high_signed || omode == env->params->high_unsigned)
			n_res = 2;

		/* create a new one */
		snprintf(buf, sizeof(buf), "LConv%s%s", get_mode_name(imode), get_mode_name(omode));
		mtd = new_type_method(new_id_from_str(buf), n_param, n_res);

		/* set param types and result types */
		n_param = 0;
		if (imode == env->params->high_signed) {
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			set_method_param_type(mtd, n_param++, tp_u);
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			set_method_param_type(mtd, n_param++, tp_s);
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		} else if (imode == env->params->high_unsigned) {
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			set_method_param_type(mtd, n_param++, tp_u);
			set_method_param_type(mtd, n_param++, tp_u);
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		} else {
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			ir_type *tp = get_primitive_type(imode);
			set_method_param_type(mtd, n_param++, tp);
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		}  /* if */
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		n_res = 0;
		if (omode == env->params->high_signed) {
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			set_method_res_type(mtd, n_res++, tp_u);
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			set_method_res_type(mtd, n_res++, tp_s);
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		} else if (omode == env->params->high_unsigned) {
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			set_method_res_type(mtd, n_res++, tp_u);
			set_method_res_type(mtd, n_res++, tp_u);
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		} else {
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			ir_type *tp = get_primitive_type(omode);
			set_method_res_type(mtd, n_res++, tp);
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		}  /* if */
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		entry->mtd = mtd;
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	} else {
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		mtd = entry->mtd;
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	}  /* if */
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	return mtd;
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}  /* get_conv_type */
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/**
 * Add an additional control flow input to a block.
 * Patch all Phi nodes. The new Phi inputs are copied from
 * old input number nr.
 */
static void add_block_cf_input_nr(ir_node *block, int nr, ir_node *cf)
{
	int i, arity = get_irn_arity(block);
	ir_node **in, *phi;

	assert(nr < arity);

	NEW_ARR_A(ir_node *, in, arity + 1);
	for (i = 0; i < arity; ++i)
		in[i] = get_irn_n(block, i);
	in[i] = cf;

	set_irn_in(block, i + 1, in);

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	for (phi = get_Block_phis(block); phi != NULL; phi = get_Phi_next(phi)) {
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		for (i = 0; i < arity; ++i)
			in[i] = get_irn_n(phi, i);
		in[i] = in[nr];
		set_irn_in(phi, i + 1, in);
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	}  /* for */
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}  /* add_block_cf_input_nr */
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/**
 * Add an additional control flow input to a block.
 * Patch all Phi nodes. The new Phi inputs are copied from
 * old input from cf tmpl.
 */
static void add_block_cf_input(ir_node *block, ir_node *tmpl, ir_node *cf)
{
	int i, arity = get_irn_arity(block);
	int nr = 0;

	for (i = 0; i < arity; ++i) {
		if (get_irn_n(block, i) == tmpl) {
			nr = i;
			break;
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		}  /* if */
	}  /* for */
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	assert(i < arity);
	add_block_cf_input_nr(block, nr, cf);
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}  /* add_block_cf_input */
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/**
 * Return the "operational" mode of a Firm node.
 */
static ir_mode *get_irn_op_mode(ir_node *node)
{
	switch (get_irn_opcode(node)) {
	case iro_Load:
		return get_Load_mode(node);
	case iro_Store:
		return get_irn_mode(get_Store_value(node));
	case iro_DivMod:
		return get_irn_mode(get_DivMod_left(node));
	case iro_Div:
		return get_irn_mode(get_Div_left(node));
	case iro_Mod:
		return get_irn_mode(get_Mod_left(node));
	case iro_Cmp:
		return get_irn_mode(get_Cmp_left(node));
	default:
		return get_irn_mode(node);
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	}  /* switch */
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}  /* get_irn_op_mode */
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/**
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 * Walker, prepare the node links.
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 */
static void prepare_links(ir_node *node, void *env)
{
	lower_env_t  *lenv = env;
	ir_mode      *mode = get_irn_op_mode(node);
	node_entry_t *link;
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	int          i, idx;
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	if (mode == lenv->params->high_signed ||
		mode == lenv->params->high_unsigned) {
		/* ok, found a node that will be lowered */
		link = obstack_alloc(&lenv->obst, sizeof(*link));

		memset(link, 0, sizeof(*link));

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		idx = get_irn_idx(node);
		if (idx >= lenv->n_entries) {
			/* enlarge: this happens only for Rotl nodes which is RARELY */
			int old = lenv->n_entries;
			int n_idx = idx + (idx >> 3);

			ARR_RESIZE(node_entry_t *, lenv->entries, n_idx);
			memset(&lenv->entries[old], 0, (n_idx - old) * sizeof(lenv->entries[0]));
			lenv->n_entries = n_idx;
		}
		lenv->entries[idx] = link;
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		lenv->flags |= MUST_BE_LOWERED;
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	} else if (is_Conv(node)) {
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		/* Conv nodes have two modes */
		ir_node *pred = get_Conv_op(node);
		mode = get_irn_mode(pred);

		if (mode == lenv->params->high_signed ||
			mode == lenv->params->high_unsigned) {
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			/* must lower this node either but don't need a link */
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			lenv->flags |= MUST_BE_LOWERED;
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		}  /* if */
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		return;
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	}  /* if */
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	if (is_Proj(node)) {
		/* link all Proj nodes to its predecessor:
		   Note that Tuple Proj's and its Projs are linked either. */
		ir_node *pred = get_Proj_pred(node);

		set_irn_link(node, get_irn_link(pred));
		set_irn_link(pred, node);
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	} else if (is_Phi(node)) {
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		/* link all Phi nodes to its block */
		ir_node *block = get_nodes_block(node);
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		add_Block_phi(block, node);
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	} else if (is_Block(node)) {
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		/* fill the Proj -> Block map */
		for (i = get_Block_n_cfgpreds(node) - 1; i >= 0; --i) {
			ir_node *pred = get_Block_cfgpred(node, i);

			if (is_Proj(pred))
				pmap_insert(lenv->proj_2_block, pred, node);
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		}  /* for */
	}  /* if */
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}  /* prepare_links */
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/**
 * Translate a Constant: create two.
 */
static void lower_Const(ir_node *node, ir_mode *mode, lower_env_t *env) {
	tarval   *tv, *tv_l, *tv_h;
	ir_node  *low, *high;
	dbg_info *dbg = get_irn_dbg_info(node);
	int      idx;
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	ir_graph *irg = current_ir_graph;
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	ir_mode  *low_mode = env->params->low_unsigned;
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	tv   = get_Const_tarval(node);

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	tv_l = tarval_convert_to(tv, low_mode);
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	low  = new_rd_Const(dbg, irg, tv_l);
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	tv_h = tarval_convert_to(tarval_shrs(tv, env->tv_mode_bits), mode);
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	high = new_rd_Const(dbg, irg, tv_h);
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	idx = get_irn_idx(node);
	assert(idx < env->n_entries);
	env->entries[idx]->low_word  = low;
	env->entries[idx]->high_word = high;
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}  /* lower_Const */
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/**
 * Translate a Load: create two.
 */
static void lower_Load(ir_node *node, ir_mode *mode, lower_env_t *env) {
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	ir_mode  *low_mode = env->params->low_unsigned;
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	ir_graph *irg = current_ir_graph;
	ir_node  *adr = get_Load_ptr(node);
	ir_node  *mem = get_Load_mem(node);
	ir_node  *low, *high, *proj;
	dbg_info *dbg;
	ir_node  *block = get_nodes_block(node);
	int      idx;

	if (env->params->little_endian) {
		low  = adr;
		high = new_r_Add(irg, block, adr,
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			new_r_Const(irg, env->tv_mode_bytes),
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			get_irn_mode(adr));
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	} else {
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		low  = new_r_Add(irg, block, adr,
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			new_r_Const(irg, env->tv_mode_bytes),
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			get_irn_mode(adr));
		high = adr;
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	}  /* if */
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	/* create two loads */
	dbg  = get_irn_dbg_info(node);
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	low  = new_rd_Load(dbg, irg, block, mem,  low,  low_mode);
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	proj = new_r_Proj(irg, block, low, mode_M, pn_Load_M);
	high = new_rd_Load(dbg, irg, block, proj, high, mode);

	set_Load_volatility(low,  get_Load_volatility(node));
	set_Load_volatility(high, get_Load_volatility(node));

	idx = get_irn_idx(node);
	assert(idx < env->n_entries);
	env->entries[idx]->low_word  = low;
	env->entries[idx]->high_word = high;

	for (proj = get_irn_link(node); proj; proj = get_irn_link(proj)) {
		idx = get_irn_idx(proj);

		switch (get_Proj_proj(proj)) {
		case pn_Load_M:         /* Memory result. */
			/* put it to the second one */
			set_Proj_pred(proj, high);
			break;
		case pn_Load_X_except:  /* Execution result if exception occurred. */
			/* put it to the first one */
			set_Proj_pred(proj, low);
			break;
		case pn_Load_res:       /* Result of load operation. */
			assert(idx < env->n_entries);
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			env->entries[idx]->low_word  = new_r_Proj(irg, block, low,  low_mode, pn_Load_res);
			env->entries[idx]->high_word = new_r_Proj(irg, block, high, mode,     pn_Load_res);
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			break;
		default:
			assert(0 && "unexpected Proj number");
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		}  /* switch */
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		/* mark this proj: we have handled it already, otherwise we might fall into
		 * out new nodes. */
		mark_irn_visited(proj);
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	}  /* for */
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}  /* lower_Load */
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/**
 * Translate a Store: create two.
 */
static void lower_Store(ir_node *node, ir_mode *mode, lower_env_t *env) {
	ir_graph *irg;
	ir_node  *block, *adr, *mem;
	ir_node  *low, *high, *irn, *proj;
	dbg_info *dbg;
	int      idx;
	node_entry_t *entry;
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	(void) node;
	(void) mode;
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	irn = get_Store_value(node);
	entry = env->entries[get_irn_idx(irn)];
	assert(entry);

	if (! entry->low_word) {
		/* not ready yet, wait */
		pdeq_putr(env->waitq, node);
		return;
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	}  /* if */
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	irg = current_ir_graph;
	adr = get_Store_ptr(node);
	mem = get_Store_mem(node);
	block = get_nodes_block(node);

	if (env->params->little_endian) {
		low  = adr;
		high = new_r_Add(irg, block, adr,
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			new_r_Const(irg, env->tv_mode_bytes),
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			get_irn_mode(adr));
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	} else {
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		low  = new_r_Add(irg, block, adr,
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			new_r_Const(irg, env->tv_mode_bytes),
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			get_irn_mode(adr));
		high = adr;
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	}  /* if */
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	/* create two Stores */
	dbg = get_irn_dbg_info(node);
	low  = new_rd_Store(dbg, irg, block, mem, low,  entry->low_word);
	proj = new_r_Proj(irg, block, low, mode_M, pn_Store_M);
	high = new_rd_Store(dbg, irg, block, proj, high, entry->high_word);

	set_Store_volatility(low,  get_Store_volatility(node));
	set_Store_volatility(high, get_Store_volatility(node));

	idx = get_irn_idx(node);
	assert(idx < env->n_entries);
	env->entries[idx]->low_word  = low;
	env->entries[idx]->high_word = high;

	for (proj = get_irn_link(node); proj; proj = get_irn_link(proj)) {
		idx = get_irn_idx(proj);

		switch (get_Proj_proj(proj)) {
		case pn_Store_M:         /* Memory result. */
			/* put it to the second one */
			set_Proj_pred(proj, high);
			break;
		case pn_Store_X_except:  /* Execution result if exception occurred. */
			/* put it to the first one */
			set_Proj_pred(proj, low);
			break;
		default:
			assert(0 && "unexpected Proj number");
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		}  /* switch */
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		/* mark this proj: we have handled it already, otherwise we might fall into
		 * out new nodes. */
		mark_irn_visited(proj);
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	}  /* for */
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}  /* lower_Store */
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/**
 * Return a node containing the address of the intrinsic emulation function.
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 *
 * @param method  the method type of the emulation function
 * @param op      the emulated ir_op
 * @param imode   the input mode of the emulated opcode
 * @param omode   the output mode of the emulated opcode
 * @param block   where the new mode is created
 * @param env     the lower environment
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 */
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static ir_node *get_intrinsic_address(ir_type *method, ir_op *op,
                                      ir_mode *imode, ir_mode *omode,
                                      ir_node *block, lower_env_t *env) {
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	symconst_symbol sym;
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	ir_entity *ent;
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	op_mode_entry_t key, *entry;

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	key.op    = op;
	key.imode = imode;
	key.omode = omode;
	key.ent   = NULL;
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	entry = set_insert(intrinsic_fkt, &key, sizeof(key),
				HASH_PTR(op) ^ HASH_PTR(imode) ^ (HASH_PTR(omode) << 8));
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	if (! entry->ent) {
		/* create a new one */
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		ent = env->params->create_intrinsic(method, op, imode, omode, env->params->ctx);
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		assert(ent && "Intrinsic creator must return an entity");
		entry->ent = ent;
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	} else {
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		ent = entry->ent;
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	}  /* if */
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	sym.entity_p = ent;
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	return new_r_SymConst(current_ir_graph, block, mode_P_code, sym, symconst_addr_ent);
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}  /* get_intrinsic_address */
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/**
 * Translate a Div.
 *
 * Create an intrinsic Call.
 */
static void lower_Div(ir_node *node, ir_mode *mode, lower_env_t *env) {
	ir_node  *block, *irn, *call, *proj;
	ir_node  *in[4];
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	ir_mode  *opmode;
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	dbg_info *dbg;
	ir_type  *mtp;
	int      idx;
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	ir_graph *irg;
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	node_entry_t *entry;

	irn   = get_Div_left(node);
	entry = env->entries[get_irn_idx(irn)];
	assert(entry);

	if (! entry->low_word) {
		/* not ready yet, wait */
		pdeq_putr(env->waitq, node);
		return;
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	}  /* if */
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	in[0] = entry->low_word;
	in[1] = entry->high_word;

	irn   = get_Div_right(node);
	entry = env->entries[get_irn_idx(irn)];
	assert(entry);

	if (! entry->low_word) {
		/* not ready yet, wait */
		pdeq_putr(env->waitq, node);
		return;
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	}  /* if */
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	in[2] = entry->low_word;
	in[3] = entry->high_word;

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	dbg   = get_irn_dbg_info(node);
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	block = get_nodes_block(node);
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	irg   = current_ir_graph;
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	mtp = mode_is_signed(mode) ? binop_tp_s : binop_tp_u;
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	opmode = get_irn_op_mode(node);
	irn = get_intrinsic_address(mtp, get_irn_op(node), opmode, opmode, block, env);
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	call = new_rd_Call(dbg, irg, block, get_Div_mem(node),
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		irn, 4, in, mtp);
	set_irn_pinned(call, get_irn_pinned(node));
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	irn = new_r_Proj(irg, block, call, mode_T, pn_Call_T_result);
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	for (proj = get_irn_link(node); proj; proj = get_irn_link(proj)) {
		switch (get_Proj_proj(proj)) {
		case pn_Div_M:         /* Memory result. */
			/* reroute to the call */
			set_Proj_pred(proj, call);
			set_Proj_proj(proj, pn_Call_M_except);
			break;
		case pn_Div_X_except:  /* Execution result if exception occurred. */
			/* reroute to the call */
			set_Proj_pred(proj, call);
			set_Proj_proj(proj, pn_Call_X_except);
			break;
		case pn_Div_res:       /* Result of computation. */
			idx = get_irn_idx(proj);
			assert(idx < env->n_entries);
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			env->entries[idx]->low_word  = new_r_Proj(current_ir_graph, block, irn, env->params->low_unsigned, 0);
			env->entries[idx]->high_word = new_r_Proj(current_ir_graph, block, irn, mode,                      1);
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			break;
		default:
			assert(0 && "unexpected Proj number");
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		}  /* switch */
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		/* mark this proj: we have handled it already, otherwise we might fall into
		 * out new nodes. */
		mark_irn_visited(proj);
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	}  /* for */
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}  /* lower_Div */
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/**
 * Translate a Mod.
 *
 * Create an intrinsic Call.
 */
static void lower_Mod(ir_node *node, ir_mode *mode, lower_env_t *env) {
	ir_node  *block, *proj, *irn, *call;
	ir_node  *in[4];
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	ir_mode  *opmode;
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	dbg_info *dbg;
	ir_type  *mtp;
	int      idx;
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	ir_graph *irg;
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	node_entry_t *entry;

	irn   = get_Mod_left(node);
	entry = env->entries[get_irn_idx(irn)];
	assert(entry);

	if (! entry->low_word) {
		/* not ready yet, wait */
		pdeq_putr(env->waitq, node);
		return;
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	}  /* if */
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	in[0] = entry->low_word;
	in[1] = entry->high_word;

	irn   = get_Mod_right(node);
	entry = env->entries[get_irn_idx(irn)];
	assert(entry);

	if (! entry->low_word) {
		/* not ready yet, wait */
		pdeq_putr(env->waitq, node);
		return;
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	}  /* if */
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	in[2] = entry->low_word;
	in[3] = entry->high_word;

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	dbg   = get_irn_dbg_info(node);
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	block = get_nodes_block(node);
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	irg   = current_ir_graph;
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	mtp = mode_is_signed(mode) ? binop_tp_s : binop_tp_u;
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	opmode = get_irn_op_mode(node);
	irn = get_intrinsic_address(mtp, get_irn_op(node), opmode, opmode, block, env);
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	call = new_rd_Call(dbg, irg, block, get_Mod_mem(node),
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		irn, 4, in, mtp);
	set_irn_pinned(call, get_irn_pinned(node));
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	irn = new_r_Proj(irg, block, call, mode_T, pn_Call_T_result);
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	for (proj = get_irn_link(node); proj; proj = get_irn_link(proj)) {
		switch (get_Proj_proj(proj)) {
		case pn_Mod_M:         /* Memory result. */
			/* reroute to the call */
			set_Proj_pred(proj, call);
			set_Proj_proj(proj, pn_Call_M_except);
			break;
		case pn_Mod_X_except:  /* Execution result if exception occurred. */
			/* reroute to the call */
			set_Proj_pred(proj, call);
			set_Proj_proj(proj, pn_Call_X_except);
			break;
		case pn_Mod_res:       /* Result of computation. */
			idx = get_irn_idx(proj);
			assert(idx < env->n_entries);
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			env->entries[idx]->low_word  = new_r_Proj(irg, block, irn, env->params->low_unsigned, 0);
			env->entries[idx]->high_word = new_r_Proj(irg, block, irn, mode,                      1);
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			break;
		default:
			assert(0 && "unexpected Proj number");
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		}  /* switch */
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		/* mark this proj: we have handled it already, otherwise we might fall into
		 * out new nodes. */
		mark_irn_visited(proj);
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	}  /* for */
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}  /* lower_Mod */
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/**
 * Translate a DivMod.
 *
 * Create two intrinsic Calls.
 */
static void lower_DivMod(ir_node *node, ir_mode *mode, lower_env_t *env) {
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	ir_node  *block, *proj, *irn, *mem, *callDiv, *callMod;
	ir_node  *resDiv = NULL;
	ir_node  *resMod = NULL;
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	ir_node  *in[4];
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	ir_mode  *opmode;
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	dbg_info *dbg;
	ir_type  *mtp;
	int      idx;
	node_entry_t *entry;
	unsigned flags = 0;
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	ir_graph *irg;
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	/* check if both results are needed */
	for (proj = get_irn_link(node); proj; proj = get_irn_link(proj)) {
		switch (get_Proj_proj(proj)) {
		case pn_DivMod_res_div: flags |= 1; break;
		case pn_DivMod_res_mod: flags |= 2; break;
		default: break;
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		}  /* switch */
	}  /* for */
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	irn   = get_DivMod_left(node);
	entry = env->entries[get_irn_idx(irn)];
	assert(entry);

	if (! entry->low_word) {
		/* not ready yet, wait */
		pdeq_putr(env->waitq, node);
		return;
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	}  /* if */
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	in[0] = entry->low_word;
	in[1] = entry->high_word;

	irn   = get_DivMod_right(node);
	entry = env->entries[get_irn_idx(irn)];
	assert(entry);

	if (! entry->low_word) {
		/* not ready yet, wait */
		pdeq_putr(env->waitq, node);
		return;
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	}  /* if */
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	in[2] = entry->low_word;
	in[3] = entry->high_word;

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	dbg   = get_irn_dbg_info(node);
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	block = get_nodes_block(node);
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	irg   = current_ir_graph;
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	mem = get_DivMod_mem(node);

	callDiv = callMod = NULL;
	mtp = mode_is_signed(mode) ? binop_tp_s : binop_tp_u;
	if (flags & 1) {
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		opmode = get_irn_op_mode(node);
		irn = get_intrinsic_address(mtp, op_Div, opmode, opmode, block, env);
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		callDiv = new_rd_Call(dbg, irg, block, mem,
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			irn, 4, in, mtp);
		set_irn_pinned(callDiv, get_irn_pinned(node));
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		resDiv = new_r_Proj(irg, block, callDiv, mode_T, pn_Call_T_result);
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	}  /* if */
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	if (flags & 2) {
		if (flags & 1)
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			mem = new_r_Proj(irg, block, callDiv, mode_M, pn_Call_M);
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		opmode = get_irn_op_mode(node);
		irn = get_intrinsic_address(mtp, op_Mod, opmode, opmode, block, env);
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		callMod = new_rd_Call(dbg, irg, block, mem,
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			irn, 4, in, mtp);
		set_irn_pinned(callMod, get_irn_pinned(node));
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		resMod = new_r_Proj(irg, block, callMod, mode_T, pn_Call_T_result);
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	}  /* if */
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	for (proj = get_irn_link(node); proj; proj = get_irn_link(proj)) {
		switch (get_Proj_proj(proj)) {
		case pn_DivMod_M:         /* Memory result. */
			/* reroute to the first call */
			set_Proj_pred(proj, callDiv ? callDiv : (callMod ? callMod : mem));
			set_Proj_proj(proj, pn_Call_M_except);
			break;
		case pn_DivMod_X_except:  /* Execution result if exception occurred. */
			/* reroute to the first call */
			set_Proj_pred(proj, callDiv ? callDiv : (callMod ? callMod : mem));
			set_Proj_proj(proj, pn_Call_X_except);
			break;
		case pn_DivMod_res_div:   /* Result of Div. */
			idx = get_irn_idx(proj);
			assert(idx < env->n_entries);
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			env->entries[idx]->low_word  = new_r_Proj(irg, block, resDiv, env->params->low_unsigned, 0);
			env->entries[idx]->high_word = new_r_Proj(irg, block, resDiv, mode,                      1);
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			break;
		case pn_DivMod_res_mod:   /* Result of Mod. */
			idx = get_irn_idx(proj);
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			env->entries[idx]->low_word  = new_r_Proj(irg, block, resMod, env->params->low_unsigned, 0);
			env->entries[idx]->high_word = new_r_Proj(irg, block, resMod, mode,                      1);
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			break;
		default:
			assert(0 && "unexpected Proj number");
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		}  /* switch */
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		/* mark this proj: we have handled it already, otherwise we might fall into
		 * out new nodes. */
		mark_irn_visited(proj);
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	}  /* for */
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}  /* lower_DivMod */
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/**
 * Translate a Binop.
 *
 * Create an intrinsic Call.
 */
static void lower_Binop(ir_node *node, ir_mode *mode, lower_env_t *env) {
	ir_node  *block, *irn;
	ir_node  *in[4];
	dbg_info *dbg;
	ir_type  *mtp;
	int      idx;
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	ir_graph *irg;
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	node_entry_t *entry;

	irn   = get_binop_left(node);
	entry = env->entries[get_irn_idx(irn)];
	assert(entry);

	if (! entry->low_word) {
		/* not ready yet, wait */
		pdeq_putr(env->waitq, node);
		return;
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	}  /* if */
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	in[0] = entry->low_word;
	in[1] = entry->high_word;

	irn   = get_binop_right(node);
	entry = env->entries[get_irn_idx(irn)];
	assert(entry);

	if (! entry->low_word) {
		/* not ready yet, wait */
		pdeq_putr(env->waitq, node);
		return;
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	}  /* if */
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	in[2] = entry->low_word;
	in[3] = entry->high_word;

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	dbg   = get_irn_dbg_info(node);
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	block = get_nodes_block(node);
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	irg   = current_ir_graph;
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	mtp = mode_is_signed(mode) ? binop_tp_s : binop_tp_u;
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	irn = get_intrinsic_address(mtp, get_irn_op(node), mode, mode, block, env);
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	irn = new_rd_Call(dbg, irg, block, get_irg_no_mem(current_ir_graph),
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		irn, 4, in, mtp);
	set_irn_pinned(irn, get_irn_pinned(node));
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	irn = new_r_Proj(irg, block, irn, mode_T, pn_Call_T_result);
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	idx = get_irn_idx(node);
	assert(idx < env->n_entries);
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	env->entries[idx]->low_word  = new_r_Proj(irg, block, irn, env->params->low_unsigned, 0);
	env->entries[idx]->high_word = new_r_Proj(irg, block, irn, mode,                      1);
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}  /* lower_Binop */
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/**
 * Translate a Shiftop.
 *
 * Create an intrinsic Call.
 */
static void lower_Shiftop(ir_node *node, ir_mode *mode, lower_env_t *env) {
	ir_node  *block, *irn;
	ir_node  *in[3];
	dbg_info *dbg;
	ir_type  *mtp;
	int      idx;
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	ir_graph *irg;
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	node_entry_t *entry;

	irn   = get_binop_left(node);
	entry = env->entries[get_irn_idx(irn)];
	assert(entry);

	if (! entry->low_word) {
		/* not ready yet, wait */
		pdeq_putr(env->waitq, node);
		return;
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	}  /* if */
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	in[0] = entry->low_word;
	in[1] = entry->high_word;

	/* The shift count is always mode_Iu in firm, so there is no need for lowering */
	in[2] = get_binop_right(node);

	dbg   = get_irn_dbg_info(node);
	block = get_nodes_block(node);
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	irg  = current_ir_graph;
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	mtp = mode_is_signed(mode) ? shiftop_tp_s : shiftop_tp_u;
	irn = get_intrinsic_address(mtp, get_irn_op(node), mode, mode, block, env);
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	irn = new_rd_Call(dbg, irg, block, get_irg_no_mem(current_ir_graph),
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		irn, 3, in, mtp);
	set_irn_pinned(irn, get_irn_pinned(node));
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	irn = new_r_Proj(irg, block, irn, mode_T, pn_Call_T_result);
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	idx = get_irn_idx(node);
	assert(idx < env->n_entries);
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	env->entries[idx]->low_word  = new_r_Proj(irg, block, irn, env->params->low_unsigned, 0);
	env->entries[idx]->high_word = new_r_Proj(irg, block, irn, mode,                      1);
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}  /* lower_Shiftop */
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/**
 * Translate a Shr and handle special cases.
 */
static void lower_Shr(ir_node *node, ir_mode *mode, lower_env_t *env) {
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	ir_node  *right = get_Shr_right(node);
	ir_graph *irg = current_ir_graph;
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	if (get_mode_arithmetic(mode) == irma_twos_complement && is_Const(right)) {
		tarval *tv = get_Const_tarval(right);

		if (tarval_is_long(tv) &&
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		    get_tarval_long(tv) >= (long)get_mode_size_bits(mode)) {
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			ir_node *block = get_nodes_block(node);
			ir_node *left = get_Shr_left(node);
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			ir_node *c;
			long shf_cnt = get_tarval_long(tv) - get_mode_size_bits(mode);
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			int idx = get_irn_idx(left);

			left = env->entries[idx]->high_word;
			idx = get_irn_idx(node);

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			if (shf_cnt > 0) {
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				c = new_r_Const_long(irg, env->params->low_unsigned, shf_cnt);
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				env->entries[idx]->low_word = new_r_Shr(irg, block, left, c, mode);
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			} else {
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				env->entries[idx]->low_word = left;
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			}  /* if */
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			env->entries[idx]->high_word = new_r_Const(irg, get_mode_null(mode));
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			return;
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		}  /* if */
	}  /* if */
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	lower_Shiftop(node, mode, env);
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}  /* lower_Shr */
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/**
 * Translate a Shl and handle special cases.
 */
static void lower_Shl(ir_node *node, ir_mode *mode, lower_env_t *env) {
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	ir_node  *right = get_Shl_right(node);
	ir_graph *irg = current_ir_graph;
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	if (get_mode_arithmetic(mode) == irma_twos_complement && is_Const(right)) {
		tarval *tv = get_Const_tarval(right);

		if (tarval_is_long(tv) &&
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		    get_tarval_long(tv) >= (long)get_mode_size_bits(mode)) {
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			ir_mode *mode_l;
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			ir_node *block = get_nodes_block(node);
			ir_node *left = get_Shl_left(node);
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			ir_node *c;
			long shf_cnt = get_tarval_long(tv) - get_mode_size_bits(mode);
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			int idx = get_irn_idx(left);

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			left = new_r_Conv(irg, block, env->entries[idx]->low_word, mode);
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			idx = get_irn_idx(node);

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			mode_l = env->params->low_unsigned;
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			if (shf_cnt > 0) {
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				c = new_r_Const_long(irg, mode_l, shf_cnt);
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				env->entries[idx]->high_word = new_r_Shl(irg, block, left, c, mode);
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			} else {
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				env->entries[idx]->high_word = left;
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			}  /* if */
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			env->entries[idx]->low_word  = new_r_Const(irg, get_mode_null(mode_l));
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			return;
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		}  /* if */
	}  /* if */
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	lower_Shiftop(node, mode, env);
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}  /* lower_Shl */
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/**
 * Translate a Shrs and handle special cases.
 */
static void lower_Shrs(ir_node *node, ir_mode *mode, lower_env_t *env) {
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	ir_node  *right = get_Shrs_right(node);
	ir_graph *irg = current_ir_graph;
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	if (get_mode_arithmetic(mode) == irma_twos_complement && is_Const(right)) {
		tarval *tv = get_Const_tarval(right);

		if (tarval_is_long(tv) &&
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		    get_tarval_long(tv) >= (long)get_mode_size_bits(mode)) {
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			ir_node *block   = get_nodes_block(node);
			ir_node *left    = get_Shrs_left(node);
			long     shf_cnt = get_tarval_long(tv) - get_mode_size_bits(mode);
			int      idx     = get_irn_idx(left);
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			ir_mode *mode_l;
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			ir_node *low;
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			ir_node *c;

			left = env->entries[idx]->high_word;
			idx = get_irn_idx(node);

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			mode_l = env->params->low_unsigned;
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			if (shf_cnt > 0) {
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				c   = new_r_Const_long(irg, mode_l, shf_cnt);
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				low = new_r_Shrs(irg, block, left, c, mode);
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			} else {
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				low = left;
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			}  /* if */
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			/* low word is expected to have mode_l */
			env->entries[idx]->low_word = new_r_Conv(irg, block, low, mode_l);
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			c = new_r_Const_long(irg, mode_l, get_mode_size_bits(mode) - 1);
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			env->entries[idx]->high_word = new_r_Shrs(irg, block, left, c, mode);
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			return;
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		}  /* if */
	}  /* if */
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	lower_Shiftop(node, mode, env);
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}  /* lower_Shrs */
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/**
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 * Rebuild Rotl nodes into Or(Shl, Shr) and prepare all nodes.
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 */
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static void prepare_links_and_handle_rotl(ir_node *node, void *env) {
	lower_env_t *lenv = env;

	if (is_Rotl(node)) {
		ir_mode *mode = get_irn_op_mode(node);
			if (mode == lenv->params->high_signed ||
			    mode == lenv->params->high_unsigned) {
				ir_node  *right = get_Rotl_right(node);
				ir_node  *left, *shl, *shr, *or, *block, *sub, *c;
				ir_mode  *omode, *rmode;
				ir_graph *irg;
				dbg_info *dbg;
				optimization_state_t state;

				if (get_mode_arithmetic(mode) == irma_twos_complement && is_Const(right)) {
					tarval *tv = get_Const_tarval(right);

					if (tarval_is_long(tv) &&
					    get_tarval_long(tv) == (long)get_mode_size_bits(mode)) {
						/* will be optimized in lower_Rotl() */
						return;
					}
				}

				/* replace the Rotl(x,y) by an Or(Shl(x,y), Shr(x,64-y)) and lower those */
				dbg   = get_irn_dbg_info(node);
				omode = get_irn_mode(node);
				left  = get_Rotl_left(node);
				irg   = current_ir_graph;
				block = get_nodes_block(node);
				shl   = new_rd_Shl(dbg, irg, block, left, right, omode);
				rmode = get_irn_mode(right);
				c     = new_Const_long(rmode, get_mode_size_bits(omode));
				sub   = new_rd_Sub(dbg, irg, block, c, right, rmode);
				shr   = new_rd_Shr(dbg, irg, block, left, sub, omode);

				/* optimization must be switched off here, or we will get the Rotl back */
				save_optimization_state(&state);
				set_opt_algebraic_simplification(0);
				or = new_rd_Or(dbg, irg, block, shl, shr, omode);
				restore_optimization_state(&state);

				exchange(node, or);

				/* do lowering on the new nodes */
				prepare_links(shl, env);
				prepare_links(c, env);
				prepare_links(sub, env);
				prepare_links(shr, env);
				prepare_links(or, env);
			}
	} else {
		prepare_links(node, env);
	}
}
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/**
 * Translate a special case Rotl(x, sizeof(w)).
 */
static void lower_Rotl(ir_node *node, ir_mode *mode, lower_env_t *env) {
	ir_node *right = get_Rotl_right(node);
	ir_node *left = get_Rotl_left(node);
	ir_node *h, *l;
	int idx = get_irn_idx(left);
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	(void) right;
	(void) mode;
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	assert(get_mode_arithmetic(mode) == irma_twos_complement &&
	       is_Const(right) && tarval_is_long(get_Const_tarval(right)) &&
	       get_tarval_long(get_Const_tarval(right)) == (long)get_mode_size_bits(mode));
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	l = env->entries[idx]->low_word;
	h = env->entries[idx]->high_word;
	idx = get_irn_idx(node);
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	env->entries[idx]->low_word  = h;
	env->entries[idx]->high_word = l;
}  /* lower_Rotl */
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/**
 * Translate an Unop.
 *
 * Create an intrinsic Call.
 */
static void lower_Unop(ir_node *node, ir_mode *mode, lower_env_t *env) {
	ir_node  *block, *irn;
	ir_node  *in[2];
	dbg_info *dbg;
	ir_type  *mtp;
	int      idx;
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	ir_graph *irg;
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	node_entry_t *entry;

	irn   = get_unop_op(node);
	entry = env->entries[get_irn_idx(irn)];
	assert(entry);

	if (! entry->low_word) {
		/* not ready yet, wait */
		pdeq_putr(env->waitq, node);
		return;
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	}  /* if */
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	in[0] = entry->low_word;
	in[1] = entry->high_word;

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	dbg   = get_irn_dbg_info(node);
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	block = get_nodes_block(node);
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	irg   = current_ir_graph;
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	mtp = mode_is_signed(mode) ? unop_tp_s : unop_tp_u;
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	irn = get_intrinsic_address(mtp, get_irn_op(node), mode, mode, block, env);
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	irn = new_rd_Call(dbg, irg, block, get_irg_no_mem(current_ir_graph),
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		irn, 2, in, mtp);
	set_irn_pinned(irn, get_irn_pinned(node));
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	irn = new_r_Proj(irg, block, irn, mode_T, pn_Call_T_result);
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	idx = get_irn_idx(node);
	assert(idx < env->n_entries);
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	env->entries[idx]->low_word  = new_r_Proj(irg, block, irn, env->params->low_unsigned, 0);
	env->entries[idx]->high_word = new_r_Proj(irg, block, irn, mode,                      1);
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}  /* lower_Unop */
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/**
 * Translate a logical Binop.
 *
 * Create two logical Binops.
 */
static void lower_Binop_logical(ir_node *node, ir_mode *mode, lower_env_t *env,
								ir_node *(*constr_rd)(dbg_info *db, ir_graph *irg, ir_node *block, ir_node *op1, ir_node *op2, ir_mode *mode) ) {
	ir_node  *block, *irn;
	ir_node  *lop_l, *lop_h, *rop_l, *rop_h;
	dbg_info *dbg;
	int      idx;
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	ir_graph *irg;
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	node_entry_t *entry;

	irn   = get_binop_left(node);
	entry = env->entries[get_irn_idx(irn)];
	assert(entry);

	if (! entry->low_word) {
		/* not ready yet, wait */
		pdeq_putr(env->waitq, node);
		return;
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	}  /* if */
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	lop_l = entry->low_word;
	lop_h = entry->high_word;

	irn   = get_binop_right(node);
	entry = env->entries[get_irn_idx(irn)];
	assert(entry);

	if (! entry->low_word) {
		/* not ready yet, wait */
		pdeq_putr(env->waitq, node);
		return;
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	}  /* if */
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	rop_l = entry->low_word;
	rop_h = entry->high_word;

	dbg = get_irn_dbg_info(node);
	block = get_nodes_block(node);

	idx = get_irn_idx(node);
	assert(idx < env->n_entries);
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	irg = current_ir_graph;
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	env->entries[idx]->low_word  = constr_rd(dbg, irg, block, lop_l, rop_l, env->params->low_unsigned);
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	env->entries[idx]->high_word = constr_rd(dbg, irg, block, lop_h, rop_h, mode);
}  /* lower_Binop_logical */
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