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esil_dfg.c
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2152 lines (1972 loc) · 73.2 KB
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/* radare - LGPL - Copyright 2019-2025 - condret */
#include <r_anal.h>
#define R_ANAL_ESIL_DFG_TAG_LI_MASK (R_ANAL_ESIL_DFG_TAG_VAR | R_ANAL_ESIL_DFG_TAG_CONST | R_ANAL_ESIL_DFG_TAG_GENERATIVE | R_ANAL_ESIL_DFG_TAG_RESULT | R_ANAL_ESIL_DFG_TAG_PTR)
typedef enum {
VAR_TYPE_REG = 0,
VAR_TYPE_MEM,
} EsilDFGVarType;
typedef struct esil_dfg_var_t {
ut64 from;
ut64 to;
RGraphNode *node;
EsilDFGVarType type;
} EsilDFGVar;
typedef struct r_anal_esil_dfg_filter_t {
RAnalEsilDFG *dfg;
RRBTree *tree;
Sdb *results;
} RAnalEsilDFGFilter;
typedef struct r_anal_esil_dfg_const_reducer_t {
RAnalEsilDFGFilter filter;
RRBTree *const_result_gnodes;
} RAnalEsilDFGConstReducer;
// TODO: simple const propagation - use node->type of srcs to propagate consts of pushed vars
R_API RAnalEsilDFGNode *r_anal_esil_dfg_node_new(RAnalEsilDFG *edf, const char *R_NULLABLE c) {
R_RETURN_VAL_IF_FAIL (edf, NULL);
RAnalEsilDFGNode *ret = R_NEW0 (RAnalEsilDFGNode);
ret->content = r_strbuf_new (c);
ret->idx = edf->idx++;
return ret;
}
static void _dfg_node_free(RAnalEsilDFGNode *free_me) {
if (free_me) {
r_strbuf_free (free_me->content);
free (free_me);
}
}
static int _rv_del_alloc_cmp(void *incoming, void *in, void *user) {
EsilDFGVar *rv_incoming = (EsilDFGVar *)incoming;
EsilDFGVar *rv_in = (EsilDFGVar *)in;
RAnalEsilDFG *dfg = (RAnalEsilDFG *)user;
if (dfg->malloc_failed) {
return -1;
}
if (rv_incoming->type < rv_in->type) {
return -1;
}
if (rv_incoming->type > rv_in->type) {
return 1;
}
// first handle the simple cases without intersection
if (rv_incoming->to < rv_in->from) {
return -1;
}
if (rv_in->to < rv_incoming->from) {
return 1;
}
if (rv_in->from == rv_incoming->from && rv_in->to == rv_incoming->to) {
return 0;
}
/*
the following cases are about intersection, here some ascii-art, so you understand what I do
=incoming=
=========in=========
split in into 2 and reinsert the second half (in2)
shrink first half (in1)
=incoming=
=in1= =in2=
*/
if (rv_in->from < rv_incoming->from && rv_incoming->to < rv_in->to) {
EsilDFGVar *rv = R_NEW (EsilDFGVar);
if (!rv) {
dfg->malloc_failed = true;
return -1;
}
rv[0] = rv_in[0];
rv_in->to = rv_incoming->from - 1;
rv->from = rv_incoming->to + 1;
dfg->insert = rv;
return 1;
}
/*
=incoming=
=in=
enqueue the non-intersecting ends in the todo-queue
*/
if (rv_incoming->from < rv_in->from && rv_in->to < rv_incoming->to) {
// lower part
EsilDFGVar *rv = R_NEW (EsilDFGVar);
if (!rv) {
dfg->malloc_failed = true;
return -1;
}
rv[0] = rv_incoming[0];
rv->to = rv_in->from - 1;
r_queue_enqueue (dfg->todo, rv);
// upper part
rv = R_NEW (EsilDFGVar);
if (!rv) {
dfg->malloc_failed = true;
return -1;
}
rv[0] = rv_incoming[0];
rv->from = rv_in->to + 1;
r_queue_enqueue (dfg->todo, rv);
return 0;
}
/*
=incoming=
=in=
similar to the previous case, but this time only enqueue 1 half
*/
if (rv_incoming->from == rv_in->from && rv_in->to < rv_incoming->to) {
EsilDFGVar *rv = R_NEW (EsilDFGVar);
if (!rv) {
dfg->malloc_failed = true;
return -1;
}
rv[0] = rv_incoming[0];
rv->from = rv_in->to + 1;
r_queue_enqueue (dfg->todo, rv);
return 0;
}
/*
=incoming=
=in=
*/
if (rv_incoming->from < rv_in->from && rv_in->to == rv_incoming->to) {
EsilDFGVar *rv = R_NEW (EsilDFGVar);
if (!rv) {
dfg->malloc_failed = true;
return -1;
}
rv[0] = rv_incoming[0];
rv->to = rv_in->from - 1;
r_queue_enqueue (dfg->todo, rv);
return 0;
}
/*
=incoming=
===in===
shrink in
=incoming=
=in=
*/
if (rv_in->to <= rv_incoming->to) {
rv_in->to = rv_incoming->from - 1;
return 1;
}
/*
=incoming=
===in===
up-shrink in
=incoming=
==in==
*/
rv_in->from = rv_incoming->to + 1;
return -1;
}
static int _rv_ins_cmp(void *incoming, void *in, void *user) {
EsilDFGVar *rv_incoming = (EsilDFGVar *)incoming;
EsilDFGVar *rv_in = (EsilDFGVar *)in;
if (rv_incoming->type < rv_in->type) {
return -1;
}
if (rv_incoming->type > rv_in->type) {
return 1;
}
return rv_incoming->from - rv_in->from;
}
static bool _edf_reg_set(RAnalEsilDFG *dfg, const char *reg, RGraphNode *node) {
R_RETURN_VAL_IF_FAIL (dfg && !dfg->malloc_failed && reg, false);
char *_reg = r_str_newf ("reg.%s", reg);
if (!sdb_num_exists (dfg->regs, _reg)) {
// no assert to prevent memleaks
free (_reg);
return false;
}
EsilDFGVar *rv = R_NEW0 (EsilDFGVar);
if (!rv) {
free (_reg);
return false;
}
const ut64 v = sdb_num_get (dfg->regs, _reg, NULL);
free (_reg);
rv->from = (v &(UT64_MAX ^ UT32_MAX)) >> 32;
rv->to = v & UT32_MAX;
r_queue_enqueue (dfg->todo, rv);
while (!r_queue_is_empty (dfg->todo) && !dfg->malloc_failed) {
// rbtree api does sadly not allow deleting multiple items at once : (
rv = r_queue_dequeue (dfg->todo);
r_crbtree_delete (dfg->vars, rv, _rv_del_alloc_cmp, dfg);
if (dfg->insert && !dfg->malloc_failed) {
r_crbtree_insert (dfg->vars, dfg->insert, _rv_ins_cmp, NULL);
dfg->insert = NULL;
}
free (rv);
}
if (dfg->malloc_failed) {
while (!r_queue_is_empty (dfg->todo)) {
free (r_queue_dequeue (dfg->todo));
}
return false;
}
rv = R_NEW0 (EsilDFGVar);
rv->from = (v &(UT64_MAX ^ UT32_MAX)) >> 32;
rv->to = v & UT32_MAX;
rv->node = node;
r_crbtree_insert (dfg->vars, rv, _rv_ins_cmp, NULL);
return true;
}
static bool _edf_mem_set(RAnalEsilDFG *dfg, ut64 addr, ut32 size, RGraphNode *node) {
R_RETURN_VAL_IF_FAIL (dfg && !dfg->malloc_failed && size, false);
EsilDFGVar *mv = R_NEW0 (EsilDFGVar);
if (!mv) {
return false;
}
mv->from = addr;
mv->to = addr + size - 1;
mv->type = VAR_TYPE_MEM;
r_queue_enqueue (dfg->todo, mv);
while (!r_queue_is_empty (dfg->todo) && !dfg->malloc_failed) {
// rbtree api does sadly not allow deleting multiple items at once : (
mv = r_queue_dequeue (dfg->todo);
r_crbtree_delete (dfg->vars, mv, _rv_del_alloc_cmp, dfg);
if (dfg->insert && !dfg->malloc_failed) {
r_crbtree_insert (dfg->vars, dfg->insert, _rv_ins_cmp, NULL);
dfg->insert = NULL;
}
free (mv);
}
if (dfg->malloc_failed) {
while (!r_queue_is_empty (dfg->todo)) {
free (r_queue_dequeue (dfg->todo));
}
return false;
}
mv = R_NEW0 (EsilDFGVar);
mv->from = addr;
mv->to = addr + size - 1;
mv->type = VAR_TYPE_MEM;
mv->node = node;
r_crbtree_insert (dfg->vars, mv, _rv_ins_cmp, NULL);
return true;
}
static int _rv_find_cmp(void *incoming, void *in, void *user) {
EsilDFGVar *rv_incoming = (EsilDFGVar *)incoming;
EsilDFGVar *rv_in = (EsilDFGVar *)in;
RAnalEsilDFG *dfg = (RAnalEsilDFG *)user;
if (dfg->malloc_failed) {
return -1;
}
if (rv_incoming->type < rv_in->type) {
return -1;
}
if (rv_incoming->type > rv_in->type) {
return 1;
}
// first handle the simple cases without intersection
if (rv_incoming->to < rv_in->from) {
return -1;
}
if (rv_in->to < rv_incoming->from) {
return 1;
}
/*
=incoming=
=========in=========
*/
if (rv_in->from <= rv_incoming->from && rv_incoming->to <= rv_in->to) {
return 0;
}
/*
=incoming=
=in=
enqueue the non-intersecting ends in the todo-queue
*/
if (rv_incoming->from < rv_in->from && rv_in->to < rv_incoming->to) {
// lower part
EsilDFGVar *rv = R_NEW (EsilDFGVar);
if (!rv) {
dfg->malloc_failed = true;
return -1;
}
rv[0] = rv_incoming[0];
rv->to = rv_in->from - 1;
r_queue_enqueue (dfg->todo, rv);
// upper part
rv = R_NEW (EsilDFGVar);
if (!rv) {
dfg->malloc_failed = true;
return -1;
}
rv[0] = rv_incoming[0];
rv->from = rv_in->to + 1;
r_queue_enqueue (dfg->todo, rv);
return 0;
}
/*
=incoming=
=in=
similar to the previous case, but this time only enqueue 1 half
*/
if (rv_in->from <= rv_incoming->from && rv_in->to < rv_incoming->to) {
EsilDFGVar *rv = R_NEW (EsilDFGVar);
if (!rv) {
dfg->malloc_failed = true;
return -1;
}
rv[0] = rv_incoming[0];
rv->from = rv_in->to + 1;
r_queue_enqueue (dfg->todo, rv);
return 0;
}
/*
=incoming=
=in=
*/
EsilDFGVar *rv = R_NEW (EsilDFGVar);
if (!rv) {
dfg->malloc_failed = true;
return -1;
}
rv[0] = rv_incoming[0];
rv->to = rv_in->from - 1;
r_queue_enqueue (dfg->todo, rv);
return 0;
}
static RGraphNode *_edf_origin_reg_get(RAnalEsilDFG *dfg, const char *reg) {
R_RETURN_VAL_IF_FAIL (dfg && reg, NULL);
char *_reg = r_str_newf ("reg.%s", reg);
if (!sdb_num_exists (dfg->regs, _reg)) {
free (_reg);
return NULL;
}
free (_reg);
char *origin_reg = r_str_newf ("ori.%s", reg);
RGraphNode *origin_reg_node = sdb_ptr_get (dfg->regs, origin_reg, 0);
if (origin_reg_node) {
free (origin_reg);
return origin_reg_node;
}
RGraphNode *reg_node = r_graph_add_node (dfg->flow, r_anal_esil_dfg_node_new (dfg, reg));
RAnalEsilDFGNode *_origin_reg_node = r_anal_esil_dfg_node_new (dfg, reg);
r_strbuf_appendf (_origin_reg_node->content, ":var_%d", dfg->idx++);
_origin_reg_node->type = R_ANAL_ESIL_DFG_TAG_VAR | R_ANAL_ESIL_DFG_TAG_REG;
origin_reg_node = r_graph_add_node (dfg->flow, _origin_reg_node);
r_graph_add_edge (dfg->flow, reg_node, origin_reg_node);
sdb_ptr_set (dfg->regs, origin_reg, origin_reg_node, 0);
free (origin_reg);
return origin_reg_node;
}
static RGraphNode *_edf_reg_get(RAnalEsilDFG *dfg, const char *reg) {
R_RETURN_VAL_IF_FAIL (dfg && reg, NULL);
char *_reg = r_str_newf ("reg.%s", reg);
if (!sdb_num_exists (dfg->regs, _reg)) {
free (_reg);
return NULL;
}
EsilDFGVar *rv = R_NEW0 (EsilDFGVar);
if (!rv) {
free (_reg);
return NULL;
}
const ut64 v = sdb_num_get (dfg->regs, _reg, NULL);
free (_reg);
rv->from = (v &(UT64_MAX ^ UT32_MAX)) >> 32;
rv->to = v & UT32_MAX;
RQueue *parts = r_queue_new (8);
if (!parts) {
free (rv);
return NULL;
}
r_queue_enqueue (dfg->todo, rv);
// log2 ((search_rv.to + 1) - search_rv.from) maybe better?
// wat du if this fails?
RGraphNode *reg_node = NULL;
while (!r_queue_is_empty (dfg->todo)) {
rv = r_queue_dequeue (dfg->todo);
EsilDFGVar *part_rv = r_crbtree_find (dfg->vars, rv, _rv_find_cmp, dfg);
if (part_rv) {
r_queue_enqueue (parts, part_rv->node);
} else if (!reg_node) {
reg_node = _edf_origin_reg_get (dfg, reg);
// insert in the gap
part_rv = R_NEW (EsilDFGVar);
if (!part_rv) {
R_FREE (rv);
dfg->malloc_failed = true;
break;
}
part_rv[0] = rv[0];
part_rv->node = reg_node;
r_crbtree_insert (dfg->vars, part_rv, _rv_ins_cmp, NULL);
// enqueue for later merge
r_queue_enqueue (parts, reg_node);
} else {
// initial regnode was already created
// only need to insert in the tree
part_rv = R_NEW (EsilDFGVar);
if (!part_rv) {
R_FREE (rv);
dfg->malloc_failed = true;
break;
}
part_rv[0] = rv[0];
part_rv->node = reg_node;
r_crbtree_insert (dfg->vars, part_rv, _rv_ins_cmp, NULL);
}
free (rv);
}
reg_node = NULL; // is this needed?
if (dfg->malloc_failed) {
while (!r_queue_is_empty (dfg->todo)) {
free (r_queue_dequeue (dfg->todo));
}
goto beach; // Outside loop!
}
switch (parts->size) {
case 0:
break;
case 1:
reg_node = r_queue_dequeue (parts);
break;
default:
{
RAnalEsilDFGNode *_reg_node = r_anal_esil_dfg_node_new (dfg, "merge to ");
if (!_reg_node) {
while (!r_queue_is_empty (dfg->todo)) {
free (r_queue_dequeue (dfg->todo));
}
dfg->malloc_failed = true;
goto beach;
}
r_strbuf_appendf (_reg_node->content, "%s:var_%d", reg, dfg->idx++);
reg_node = r_graph_add_node (dfg->flow, _reg_node);
if (!reg_node) {
_dfg_node_free (_reg_node);
while (!r_queue_is_empty (dfg->todo)) {
free (r_queue_dequeue (dfg->todo));
}
dfg->malloc_failed = true;
goto beach;
}
_reg_node->type = R_ANAL_ESIL_DFG_TAG_MERGE | R_ANAL_ESIL_DFG_TAG_REG;
}
do {
r_graph_add_edge (dfg->flow, r_queue_dequeue (parts), reg_node);
} while (!r_queue_is_empty (parts));
break;
}
beach:
r_queue_free (parts);
return reg_node;
}
static RGraphNode *_edf_uninitialized_mem_get(RAnalEsilDFG *dfg, ut64 addr, ut32 size) {
R_RETURN_VAL_IF_FAIL (dfg && size, NULL);
char *content = r_str_newf ("[%d]@0x%" PFMT64x, size, addr);
RGraphNode *orig_mem_gnode = r_graph_add_node (dfg->flow, r_anal_esil_dfg_node_new (dfg, content));
free (content);
content = r_str_newf ("[%d]@<0x%" PFMT64x ">:uninitialized_mem_var_%d", size, addr, dfg->idx + 1);
RAnalEsilDFGNode *mem_node = r_anal_esil_dfg_node_new (dfg, content);
free (content);
dfg->idx++;
mem_node->type = R_ANAL_ESIL_DFG_TAG_VAR | R_ANAL_ESIL_DFG_TAG_MEM;
if (dfg->use_map_info) {
RIOMap *map = dfg->iob.map_get_at (dfg->iob.io, addr);
if (map && ! (map->perm & R_PERM_W)) {
mem_node->type |= R_ANAL_ESIL_DFG_TAG_CONST;
}
}
RGraphNode *mem_gnode = r_graph_add_node (dfg->flow, mem_node);
r_graph_add_edge (dfg->flow, orig_mem_gnode, mem_gnode);
return mem_gnode;
}
static RGraphNode *_edf_mem_get(RAnalEsilDFG *dfg, ut64 addr, ut32 size) {
R_RETURN_VAL_IF_FAIL (dfg && size, NULL);
EsilDFGVar *mv = R_NEW0 (EsilDFGVar);
if (!mv) {
return NULL;
}
mv->from = addr;
mv->to = addr + size - 1;
mv->type = VAR_TYPE_MEM;
RQueue *parts = r_queue_new (size);
if (!parts) {
free (mv);
return NULL;
}
r_queue_enqueue (dfg->todo, mv);
// log2 ((search_rv.to + 1) - search_rv.from) maybe better?
// wat du if this fails?
RGraphNode *mem_node = NULL;
while (!r_queue_is_empty (dfg->todo)) {
mv = r_queue_dequeue (dfg->todo);
EsilDFGVar *part_mv = r_crbtree_find (dfg->vars, mv, _rv_find_cmp, dfg);
if (part_mv) {
r_queue_enqueue (parts, part_mv->node);
} else if (!mem_node) {
mem_node = _edf_uninitialized_mem_get (dfg, mv->from, (ut32) (mv->to - mv->from + 1));
if (!mem_node) {
dfg->malloc_failed = true;
break;
}
// insert in the gap
part_mv = R_NEW (EsilDFGVar);
if (!part_mv) {
R_FREE (mv);
dfg->malloc_failed = true;
break;
}
part_mv[0] = mv[0];
part_mv->node = mem_node;
r_crbtree_insert (dfg->vars, part_mv, _rv_ins_cmp, NULL);
// enqueue for later merge
r_queue_enqueue (parts, mem_node);
} else {
// initial regnode was already created
// only need to insert in the tree
part_mv = R_NEW (EsilDFGVar);
if (!part_mv) {
R_FREE (mv);
dfg->malloc_failed = true;
break;
}
part_mv[0] = mv[0];
part_mv->node = mem_node;
r_crbtree_insert (dfg->vars, part_mv, _rv_ins_cmp, NULL);
}
free (mv);
}
mem_node = NULL; // is this needed?
if (dfg->malloc_failed) {
while (!r_queue_is_empty (dfg->todo)) {
free (r_queue_dequeue (dfg->todo));
}
goto beach; // Outside loop!
}
switch (parts->size) {
case 0:
break;
case 1:
mem_node = r_queue_dequeue (parts);
break;
default:
{
RAnalEsilDFGNode *_mem_node = r_anal_esil_dfg_node_new (dfg, "merge to ");
if (!_mem_node) {
while (!r_queue_is_empty (dfg->todo)) {
free (r_queue_dequeue (dfg->todo));
}
dfg->malloc_failed = true;
goto beach;
}
r_strbuf_appendf (_mem_node->content, "<0x%" PFMT64x ">:mem_var_%d", addr, dfg->idx++);
mem_node = r_graph_add_node (dfg->flow, _mem_node);
if (!mem_node) {
_dfg_node_free (_mem_node);
while (!r_queue_is_empty (dfg->todo)) {
free (r_queue_dequeue (dfg->todo));
}
dfg->malloc_failed = true;
goto beach;
}
_mem_node->type = R_ANAL_ESIL_DFG_TAG_MERGE | R_ANAL_ESIL_DFG_TAG_MEM;
}
do {
r_graph_add_edge (dfg->flow, r_queue_dequeue (parts), mem_node);
} while (!r_queue_is_empty (parts));
break;
}
beach:
r_queue_free (parts);
return mem_node;
}
static RGraphNode *_edf_const_get(RAnalEsilDFG *dfg, char *const_value) {
RGraphNode *orig_value_gnode = r_graph_add_node (dfg->flow, r_anal_esil_dfg_node_new (dfg, const_value));
RAnalEsilDFGNode *value_node = r_anal_esil_dfg_node_new (dfg, const_value);
value_node->type = R_ANAL_ESIL_DFG_TAG_CONST;
r_strbuf_appendf (value_node->content, ":const_%d", dfg->idx++);
RGraphNode *ret = r_graph_add_node (dfg->flow, value_node);
r_graph_add_edge (dfg->flow, orig_value_gnode, ret);
return ret;
}
static bool _edf_var_set(RAnalEsilDFG *dfg, const char *var, RGraphNode *node) {
R_RETURN_VAL_IF_FAIL (dfg && var, false);
char *_var = r_str_newf ("var.%s", var);
const bool ret = !sdb_ptr_set (dfg->regs, _var, node, 0);
free (_var);
return ret;
}
static RGraphNode *_edf_var_get(RAnalEsilDFG *dfg, const char *var) {
R_RETURN_VAL_IF_FAIL (dfg && var, NULL);
char *k = r_str_newf ("var.%s", var);
RGraphNode *ret = sdb_ptr_get (dfg->regs, k, NULL);
free (k);
return ret;
}
static bool edf_consume_2_set_reg(REsil *esil);
static bool edf_consume_2_push_1(REsil *esil);
static bool edf_consume_1_push_1(REsil *esil);
typedef void(*AddConstraintStringUseNewCB)(RStrBuf *result, const char *new_node_str);
static bool edf_use_new_push_1(REsil *esil, const char *op_string, AddConstraintStringUseNewCB cb);
typedef void(*AddConstraintStringConsume1UseOldNewCB)(RStrBuf *result, const char *consume_str, const char *old_node_str, const char *new_node_str);
static bool edf_consume_1_use_old_new_push_1(REsil *esil, const char *op_string, AddConstraintStringConsume1UseOldNewCB cb);
static bool edf_eq_weak(REsil *esil) {
RAnalEsilDFG *edf = (RAnalEsilDFG *)esil->user;
RGraphNode *o_old = edf->old; // node for esil->old
RGraphNode *o_new = edf->cur; // node for esil->cur
if (!edf_consume_2_set_reg (esil)) {
return false;
}
// work-around
edf->old = o_old? o_old: NULL;
edf->cur = o_new? o_new: NULL;
return true;
}
static void edf_zf_constraint(RStrBuf *result, const char *new_node_str) {
r_strbuf_appendf (result, ":(%s==0)", new_node_str);
}
static bool edf_zf(REsil *esil) {
return edf_use_new_push_1 (esil, "$z", edf_zf_constraint);
}
static void edf_sf_constraint(RStrBuf *result, const char *new_node_str) {
r_strbuf_appendf (result, ":(%s<0)", new_node_str);
}
static bool edf_sf(REsil *esil) {
char *bitsize = r_esil_pop (esil);
R_LOG_INFO ("bitsize not yet implemented for sf (%s)", bitsize);
return edf_use_new_push_1 (esil, "$s", edf_sf_constraint);
}
static void edf_pf_constraint(RStrBuf *result, const char *new_node_str) {
r_strbuf_appendf (result, ":parity_of(%s)", new_node_str);
}
static bool edf_pf(REsil *esil) {
return edf_use_new_push_1 (esil, "$p", edf_pf_constraint);
}
static void edf_cf_constraint(RStrBuf *result, const char *consume, const char *o, const char *n) {
r_strbuf_appendf (result, ":((%s&mask(%s&0x3f))<(%s&mask(%s&0x3f)))",
n, consume, o, consume);
}
static bool edf_cf(REsil *esil) {
return edf_consume_1_use_old_new_push_1 (esil, "$c", edf_cf_constraint);
}
static void edf_bf_constraint(RStrBuf *result, const char *consume, const char *o, const char *n) {
r_strbuf_appendf (result, ":((%s&mask((%s+0x3f)&0x3f))<(%s& mask((%s+0x3f)&0x3f)))",
o, consume, n, consume);
}
static bool edf_bf(REsil *esil) {
return edf_consume_1_use_old_new_push_1 (esil, "$b", edf_bf_constraint);
}
static bool _edf_consume_2_set_reg(REsil *esil, const bool use_origin) {
const char *op_string = esil->current_opstr;
RAnalEsilDFG *edf = (RAnalEsilDFG *)esil->user;
char *dst = r_esil_pop (esil);
char *src = r_esil_pop (esil);
if (!src || !dst) {
free (dst);
free (src);
return false;
}
int dst_type = r_esil_get_parm_type (esil, dst);
if (dst_type == R_ESIL_PARM_INVALID) {
free (dst);
free (src);
return false;
}
const int src_type = r_esil_get_parm_type (esil, src);
RGraphNode *src_node = NULL;
if (src_type == R_ESIL_PARM_REG) {
src_node = _edf_reg_get (edf, src);
} else if (src_type == R_ESIL_PARM_NUM) {
src_node = _edf_const_get (edf, src);
} else {
src_node = _edf_var_get (edf, src);
}
RGraphNode *dst_node = use_origin? _edf_origin_reg_get (edf, dst): _edf_reg_get (edf, dst);
RGraphNode *old_dst_node = dst_node;
if (!src_node || !dst_node) {
free (src);
free (dst);
return false;
}
RAnalEsilDFGNode *eop_node = r_anal_esil_dfg_node_new (edf, src);
r_strbuf_appendf (eop_node->content, ",%s,%s", dst, op_string);
eop_node->type = R_ANAL_ESIL_DFG_TAG_GENERATIVE;
free (src);
RGraphNode *op_node = r_graph_add_node (edf->flow, eop_node);
r_graph_add_edge (edf->flow, dst_node, op_node);
r_graph_add_edge (edf->flow, src_node, op_node);
edf->old = old_dst_node;
RAnalEsilDFGNode *result = r_anal_esil_dfg_node_new (edf, dst);
result->type = R_ANAL_ESIL_DFG_TAG_RESULT | R_ANAL_ESIL_DFG_TAG_VAR | R_ANAL_ESIL_DFG_TAG_REG;
if (use_origin) {
if (((RAnalEsilDFGNode *) (src_node->data))->type & R_ANAL_ESIL_DFG_TAG_CONST) {
result->type |= R_ANAL_ESIL_DFG_TAG_CONST;
}
} else {
if ((((RAnalEsilDFGNode *) (src_node->data))->type & R_ANAL_ESIL_DFG_TAG_CONST) &&
(((RAnalEsilDFGNode *) (dst_node->data))->type & R_ANAL_ESIL_DFG_TAG_CONST)) {
result->type |= R_ANAL_ESIL_DFG_TAG_CONST;
}
}
r_strbuf_appendf (result->content, ":var_%d", edf->idx++);
dst_node = r_graph_add_node (edf->flow, result);
r_graph_add_edge (edf->flow, op_node, dst_node);
_edf_reg_set (edf, dst, dst_node);
edf->cur = dst_node;
free (dst);
return true;
}
static bool edf_consume_2_use_set_reg(REsil *esil) {
return _edf_consume_2_set_reg (esil, false);
}
static bool edf_consume_2_set_reg(REsil *esil) {
return _edf_consume_2_set_reg (esil, true);
}
// TODO: not properly implemented
static bool edf_pop(REsil *esil) {
const char *op_string = esil->current_opstr;
RAnalEsilDFG *edf = (RAnalEsilDFG *)esil->user;
char *src = r_esil_pop (esil);
if (!src) {
return false;
}
const int src_type = r_esil_get_parm_type (esil, src);
RGraphNode *src_node = NULL;
if (src_type == R_ESIL_PARM_REG) {
src_node = _edf_reg_get (edf, src);
} else if (src_type == R_ESIL_PARM_NUM) {
src_node = _edf_const_get (edf, src);
} else {
src_node = _edf_var_get (edf, src);
}
if (!src_node) {
free (src);
return false;
}
RAnalEsilDFGNode *eop_node = r_anal_esil_dfg_node_new (edf, src);
r_strbuf_appendf (eop_node->content, ",%s", op_string);
eop_node->type = R_ANAL_ESIL_DFG_TAG_GENERATIVE;
free (src);
RGraphNode *op_node = r_graph_add_node (edf->flow, eop_node);
r_graph_add_edge (edf->flow, src_node, op_node);
return true;
}
#if 1
// TODO: kill DUP
static bool edf_dup(REsil *esil) {
char *src = r_esil_pop (esil);
if (!src) {
return false;
}
const int src_type = r_esil_get_parm_type (esil, src);
if (src_type == R_ESIL_PARM_REG || src_type == R_ESIL_PARM_NUM) {
// this is a optimization to reduce needless DUPs
r_esil_push (esil, src);
return r_esil_push (esil, strdup (src));
}
const char *op_string = esil->current_opstr;
RAnalEsilDFG *edf = (RAnalEsilDFG *)esil->user;
RGraphNode *src_node = _edf_var_get (edf, src);
RAnalEsilDFGNode *eop_node = r_anal_esil_dfg_node_new (edf, src);
r_strbuf_appendf (eop_node->content, ",%s", op_string);
eop_node->type = R_ANAL_ESIL_DFG_TAG_GENERATIVE;
RGraphNode *op_node = r_graph_add_node (edf->flow, eop_node);
r_graph_add_edge (edf->flow, src_node, op_node);
const bool const_result = !! (((RAnalEsilDFGNode *)src_node->data)->type & R_ANAL_ESIL_DFG_TAG_CONST);
RAnalEsilDFGNode *result = r_anal_esil_dfg_node_new (edf, "result_");
result->type = R_ANAL_ESIL_DFG_TAG_RESULT | R_ANAL_ESIL_DFG_TAG_SIBLING;
if (const_result) {
result->type |= R_ANAL_ESIL_DFG_TAG_CONST;
}
r_strbuf_appendf (result->content, "%d", edf->idx++);
RGraphNode *result_node = r_graph_add_node (edf->flow, result);
r_graph_add_edge (edf->flow, op_node, result_node);
_edf_var_set (edf, r_strbuf_get (result->content), result_node);
r_esil_push (esil, r_strbuf_get (result->content));
result = r_anal_esil_dfg_node_new (edf, "result_");
result->type = R_ANAL_ESIL_DFG_TAG_RESULT | R_ANAL_ESIL_DFG_TAG_SIBLING;
if (const_result) {
result->type |= R_ANAL_ESIL_DFG_TAG_CONST;
}
r_strbuf_appendf (result->content, "%d", edf->idx++);
result_node = r_graph_add_node (edf->flow, result);
r_graph_add_edge (edf->flow, op_node, result_node);
_edf_var_set (edf, r_strbuf_get (result->content), result_node);
return r_esil_push (esil, r_strbuf_get (result->content));
}
#endif
static bool edf_consume_2_push_1(REsil *esil) {
const char *op_string = esil->current_opstr;
RAnalEsilDFG *edf = (RAnalEsilDFG *)esil->user;
char *src[2] = { r_esil_pop (esil), r_esil_pop (esil) };
if (!src[0] || !src[1]) {
free (src[0]);
free (src[1]);
return false;
}
RAnalEsilDFGNode *eop_node = r_anal_esil_dfg_node_new (edf, src[1]);
r_strbuf_appendf (eop_node->content, ",%s,%s", src[0], op_string);
eop_node->type = R_ANAL_ESIL_DFG_TAG_RESULT | R_ANAL_ESIL_DFG_TAG_GENERATIVE;
// eop_node->type = R_ANAL_ESIL_DFG_TAG_GENERATIVE;
RGraphNode *op_node = r_graph_add_node (edf->flow, eop_node);
RGraphNode *src_node[2];
bool const_result = true;
ut32 i;
for (i = 0; i < 2; i++) {
const int src_type = r_esil_get_parm_type (esil, src[i]);
if (src_type == R_ESIL_PARM_REG) {
src_node[i] = _edf_reg_get (edf, src[i]);
RAnalEsilDFGNode *ec_node = (RAnalEsilDFGNode *)src_node[i]->data;
const_result &= !! (ec_node->type & R_ANAL_ESIL_DFG_TAG_CONST);
// const_result = false;
} else if (src_type == R_ESIL_PARM_NUM) {
src_node[i] = _edf_const_get (edf, src[i]);
// todo: check op_type, not relevant for now since this is always OP_MATH atm
const_result &= true;
} else {
src_node[i] = _edf_var_get (edf, src[i]);
if (src_node[i]) {
RAnalEsilDFGNode *ec_node = (RAnalEsilDFGNode *)src_node[i]->data;
const_result &= !! (ec_node->type & R_ANAL_ESIL_DFG_TAG_CONST);
} else {
R_LOG_WARN ("Invalid node");
}
}
r_graph_add_edge (edf->flow, src_node[i], op_node);
}
free (src[0]);
free (src[1]);
RAnalEsilDFGNode *result = r_anal_esil_dfg_node_new (edf, "result_");
result->type = R_ANAL_ESIL_DFG_TAG_RESULT;
if (const_result) {
result->type |= R_ANAL_ESIL_DFG_TAG_CONST;
}
r_strbuf_appendf (result->content, "%d", edf->idx++);
RGraphNode *result_node = r_graph_add_node (edf->flow, result);
r_graph_add_edge (edf->flow, op_node, result_node);
_edf_var_set (edf, r_strbuf_get (result->content), result_node);
r_esil_push (esil, r_strbuf_get (result->content));
return true;
}
static bool edf_consume_1_push_1(REsil *esil) {
const char *op_string = esil->current_opstr;
RAnalEsilDFG *edf = (RAnalEsilDFG *)esil->user;
char *src = r_esil_pop (esil);
if (!src) {
return false;
}
RAnalEsilDFGNode *eop_node = r_anal_esil_dfg_node_new (edf, src);
r_strbuf_appendf (eop_node->content, ",%s", op_string);
eop_node->type = R_ANAL_ESIL_DFG_TAG_RESULT | R_ANAL_ESIL_DFG_TAG_GENERATIVE;
// eop_node->type = R_ANAL_ESIL_DFG_TAG_GENERATIVE;
// esil operation node
RGraphNode *op_node = r_graph_add_node (edf->flow, eop_node);
// operation node, but in the rgraph
const int src_type = r_esil_get_parm_type (esil, src);
RGraphNode *src_node = NULL;
bool const_result = false;
// is the result a const value?
// e.g.: 42,!,!,! => 0,!,! => 1,! => 0 => const_result
// 0xaabbccdd,[1] => not const result, bc memory read
const ut32 eop_type = ((REsilOp *)ht_pp_find (esil->ops, op_string, NULL))->type;
// no need to check pointer here, bc this cannot fail if this function got called
if (src_type == R_ESIL_PARM_REG) {
src_node = _edf_reg_get (edf, src);
RAnalEsilDFGNode *ec_node = (RAnalEsilDFGNode *)src_node->data;
const_result = (!! (ec_node->type & R_ANAL_ESIL_DFG_TAG_CONST)) &(eop_type == R_ESIL_OP_TYPE_MATH);
} else if (src_type == R_ESIL_PARM_NUM) {
src_node = _edf_const_get (edf, src);
const_result = (eop_type == R_ESIL_OP_TYPE_MATH);
} else {
src_node = _edf_var_get (edf, src);
// cannot fail, bc src cannot be NULL
RAnalEsilDFGNode *ec_node = (RAnalEsilDFGNode *)src_node->data;
const_result = (eop_type == R_ESIL_OP_TYPE_MATH) & !! (ec_node->type & R_ANAL_ESIL_DFG_TAG_CONST);
}
free (src);
r_graph_add_edge (edf->flow, src_node, op_node);
RAnalEsilDFGNode *result = r_anal_esil_dfg_node_new (edf, "result_");
result->type = R_ANAL_ESIL_DFG_TAG_RESULT;
if (const_result) {
result->type |= R_ANAL_ESIL_DFG_TAG_CONST;
}
r_strbuf_appendf (result->content, "%d", edf->idx++);
RGraphNode *result_node = r_graph_add_node (edf->flow, result);
r_graph_add_edge (edf->flow, op_node, result_node);
_edf_var_set (edf, r_strbuf_get (result->content), result_node);
r_esil_push (esil, r_strbuf_get (result->content));
return true;
}
static RStrBuf *filter_gnode_expr(RAnalEsilDFG *dfg, RGraphNode *gnode);
#if THIS_FUNCTION_IS_UNUSED
static void _edf_check_stack_or_mem_const_node_cb(RGraphNode *gnode, RGraphVisitor *vi) {
bool *is_const = (bool *)vi->data;
RAnalEsilDFGNode *enode = (RAnalEsilDFGNode *)gnode->data;
is_const[0] &= (! ((enode->type & R_ANAL_ESIL_DFG_TAG_VAR) &&
((enode->type &(R_ANAL_ESIL_DFG_TAG_CONST | R_ANAL_ESIL_DFG_TAG_MEM)) !=
(R_ANAL_ESIL_DFG_TAG_CONST | R_ANAL_ESIL_DFG_TAG_MEM))));
}