tree-sitter/src/runtime/stack.c

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C
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#include "tree_sitter/parser.h"
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#include "runtime/alloc.h"
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#include "runtime/tree.h"
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#include "runtime/array.h"
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#include "runtime/stack.h"
#include "runtime/length.h"
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#include <assert.h>
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#include <stdio.h>
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#define MAX_SUCCESSOR_COUNT 8
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#define INITIAL_HEAD_CAPACITY 3
#define STARTING_TREE_CAPACITY 10
#define MAX_NODE_POOL_SIZE 50
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typedef struct StackNode {
StackEntry entry;
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struct StackNode *successors[MAX_SUCCESSOR_COUNT];
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short unsigned int successor_count;
short unsigned int ref_count;
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} StackNode;
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typedef struct {
size_t goal_tree_count;
StackNode *node;
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TreeArray trees;
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bool is_shared;
} PopPath;
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struct Stack {
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Array(StackNode *) heads;
StackPopResultArray pop_results;
Array(PopPath) pop_paths;
Array(StackNode *) node_pool;
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void *tree_selection_payload;
TreeSelectionFunction tree_selection_function;
};
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/*
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* Section: Stack lifecycle
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*/
static int ts_stack__default_tree_selection(void *p, TSTree *t1, TSTree *t2) {
return 0;
}
Stack *ts_stack_new() {
Stack *self = ts_calloc(1, sizeof(Stack));
if (!self)
goto error;
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array_init(&self->heads);
array_init(&self->pop_results);
array_init(&self->pop_paths);
array_init(&self->node_pool);
self->tree_selection_payload = NULL;
self->tree_selection_function = ts_stack__default_tree_selection;
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if (!array_grow(&self->heads, 4))
goto error;
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if (!array_grow(&self->pop_results, 4))
goto error;
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if (!array_grow(&self->pop_paths, 4))
goto error;
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if (!array_grow(&self->node_pool, 20))
goto error;
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array_push(&self->heads, NULL);
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return self;
error:
if (self) {
if (self->heads.contents)
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array_delete(&self->heads);
if (self->pop_results.contents)
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array_delete(&self->pop_results);
if (self->pop_paths.contents)
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array_delete(&self->pop_paths);
if (self->node_pool.contents)
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array_delete(&self->node_pool);
ts_free(self);
}
return NULL;
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}
/*
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* Section: Reading from the stack
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*/
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TSStateId ts_stack_top_state(const Stack *self, int head) {
StackEntry *entry = ts_stack_head((Stack *)self, head);
return entry ? entry->state : 0;
}
TSLength ts_stack_top_position(const Stack *self, int head) {
StackEntry *entry = ts_stack_head((Stack *)self, head);
return entry ? entry->position : ts_length_zero();
}
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TSTree *ts_stack_top_tree(const Stack *self, int head) {
StackEntry *entry = ts_stack_head((Stack *)self, head);
return entry ? entry->tree : NULL;
}
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StackEntry *ts_stack_head(Stack *self, int head) {
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StackNode *node = self->heads.contents[head];
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return node ? &node->entry : NULL;
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}
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int ts_stack_head_count(const Stack *self) {
return self->heads.size;
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}
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int ts_stack_entry_next_count(const StackEntry *entry) {
return ((const StackNode *)entry)->successor_count;
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}
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StackEntry *ts_stack_entry_next(const StackEntry *entry, int i) {
return &((const StackNode *)entry)->successors[i]->entry;
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}
/*
* Section: Manipulating nodes (Private)
*/
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static void stack_node_retain(StackNode *self) {
if (!self)
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return;
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assert(self->ref_count != 0);
self->ref_count++;
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}
static bool stack_node_release(Stack *self, StackNode *node) {
if (!node)
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return false;
assert(node->ref_count != 0);
node->ref_count--;
if (node->ref_count == 0) {
for (int i = 0; i < node->successor_count; i++)
stack_node_release(self, node->successors[i]);
ts_tree_release(node->entry.tree);
if (self->node_pool.size >= MAX_NODE_POOL_SIZE)
ts_free(node);
else
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array_push(&self->node_pool, node);
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return true;
} else {
return false;
}
}
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static StackNode *stack_node_new(Stack *self, StackNode *next, TSStateId state,
TSTree *tree) {
assert(tree->ref_count > 0);
StackNode *node;
if (self->node_pool.size == 0) {
node = ts_malloc(sizeof(StackNode));
if (!node)
return NULL;
} else {
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node = array_pop(&self->node_pool);
}
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ts_tree_retain(tree);
stack_node_retain(next);
TSLength position = ts_tree_total_size(tree);
if (next)
position = ts_length_add(next->entry.position, position);
*node = (StackNode){
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.ref_count = 1,
.successor_count = 1,
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.successors = { next, NULL, NULL },
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.entry = {.state = state, .tree = tree, .position = position },
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};
return node;
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}
static void ts_stack__add_alternative_tree(Stack *self, StackNode *node,
TSTree *tree) {
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if (tree != node->entry.tree) {
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int comparison = self->tree_selection_function(self->tree_selection_payload,
node->entry.tree, tree);
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if (comparison > 0) {
ts_tree_retain(tree);
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ts_tree_release(node->entry.tree);
node->entry.tree = tree;
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}
}
}
static void ts_stack__clear_pop_result(Stack *self, StackPopResult *result) {
for (size_t i = 0; i < result->trees.size; i++)
ts_tree_release(result->trees.contents[i]);
array_delete(&result->trees);
}
static void ts_stack__add_alternative_pop_result(Stack *self,
StackPopResult *result,
StackPopResult *new_result) {
bool should_update = false;
if (result->trees.size < new_result->trees.size) {
should_update = true;
} else if (result->trees.size == new_result->trees.size) {
for (size_t i = 0; i < result->trees.size; i++) {
TSTree *tree = result->trees.contents[i];
TSTree *new_tree = new_result->trees.contents[i];
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int comparison = self->tree_selection_function(
self->tree_selection_payload, tree, new_tree);
if (comparison < 0) {
break;
} else if (comparison > 0) {
should_update = true;
break;
}
}
}
if (should_update) {
ts_stack__clear_pop_result(self, result);
result->trees = new_result->trees;
result->trees.size = new_result->trees.size;
} else {
ts_stack__clear_pop_result(self, new_result);
}
}
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static void ts_stack__add_node_successor(Stack *self, StackNode *node,
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StackNode *new_successor) {
for (int i = 0; i < node->successor_count; i++) {
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StackNode *successor = node->successors[i];
if (successor == new_successor)
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return;
if (!successor)
continue;
if (successor->entry.state == new_successor->entry.state) {
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ts_stack__add_alternative_tree(self, successor, new_successor->entry.tree);
for (int j = 0; j < new_successor->successor_count; j++)
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ts_stack__add_node_successor(self, successor,
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new_successor->successors[j]);
return;
}
}
stack_node_retain(new_successor);
node->successors[node->successor_count] = new_successor;
node->successor_count++;
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}
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/*
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* Section: Mutating the stack (Private)
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*/
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static int ts_stack__add_head(Stack *self, StackNode *node) {
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if (array_push(&self->heads, node)) {
stack_node_retain(node);
return self->heads.size - 1;
} else {
return -1;
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}
}
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static int ts_stack__find_head(Stack *self, StackNode *node) {
for (size_t i = 0; i < self->heads.size; i++) {
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if (self->heads.contents[i] == node)
return i;
}
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return -1;
}
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void ts_stack_remove_head(Stack *self, int head_index) {
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StackNode *node = *array_get(&self->heads, head_index);
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stack_node_release(self, node);
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array_erase(&self->heads, head_index);
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}
/*
* Section: Mutating the stack (Public)
*/
StackPushResult ts_stack_push(Stack *self, int head_index, TSStateId state,
TSTree *tree) {
TSLength position = ts_tree_total_size(tree);
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StackNode *current_head = *array_get(&self->heads, head_index);
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if (current_head)
position = ts_length_add(current_head->entry.position, position);
for (int i = 0; i < head_index; i++) {
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StackNode *prior_node = self->heads.contents[i];
StackEntry prior_entry = prior_node->entry;
if (prior_entry.state == state &&
ts_length_eq(prior_entry.position, position)) {
ts_stack__add_alternative_tree(self, prior_node, tree);
ts_stack__add_node_successor(self, prior_node, current_head);
ts_stack_remove_head(self, head_index);
return StackPushResultMerged;
}
}
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StackNode *new_head = stack_node_new(self, current_head, state, tree);
if (!new_head)
return StackPushResultFailed;
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stack_node_release(self, current_head);
self->heads.contents[head_index] = new_head;
return StackPushResultContinued;
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}
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int ts_stack_split(Stack *self, int head_index) {
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StackNode *head = self->heads.contents[head_index];
return ts_stack__add_head(self, head);
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}
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StackPopResultArray ts_stack_pop(Stack *self, int head_index, int child_count,
bool count_extra) {
array_clear(&self->pop_results);
array_clear(&self->pop_paths);
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StackNode *previous_head = *array_get(&self->heads, head_index);
int capacity = (child_count == -1) ? STARTING_TREE_CAPACITY : child_count;
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PopPath initial_path = {
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.goal_tree_count = child_count, .node = previous_head, .is_shared = false,
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};
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array_init(&initial_path.trees);
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if (!array_grow(&initial_path.trees, capacity))
goto error;
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if (!array_push(&self->pop_paths, initial_path))
goto error;
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/*
* Reduce along every possible path in parallel. Stop when the given number
* of child trees have been collected along every path.
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*/
bool all_paths_done = false;
while (!all_paths_done) {
all_paths_done = true;
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for (size_t i = 0; i < self->pop_paths.size; i++) {
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PopPath *path = &self->pop_paths.contents[i];
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StackNode *node = path->node;
if (!node || path->trees.size == path->goal_tree_count)
continue;
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all_paths_done = false;
/*
* Children that are 'extra' do not count towards the total child count.
*/
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if (node->entry.tree->extra && !count_extra)
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path->goal_tree_count++;
/*
* If a node has more than one successor, create new paths for each of
* the additional successors.
*/
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if (path->is_shared) {
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path->trees = (TreeArray)array_copy(&path->trees);
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for (size_t j = 0; j < path->trees.size; j++)
ts_tree_retain(path->trees.contents[j]);
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path->is_shared = false;
}
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ts_tree_retain(node->entry.tree);
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if (!array_push(&path->trees, node->entry.tree))
goto error;
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path->node = path->node->successors[0];
for (int j = 1; j < node->successor_count; j++) {
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if (!array_push(&self->pop_paths, *path))
goto error;
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PopPath *next_path = array_back(&self->pop_paths);
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next_path->node = node->successors[j];
next_path->is_shared = true;
}
}
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}
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for (size_t i = 0; i < self->pop_paths.size; i++) {
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PopPath *path = &self->pop_paths.contents[i];
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if (!path->is_shared)
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array_reverse(&path->trees);
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StackPopResult result = {
.trees = path->trees,
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.head_index = -1,
};
if (i == 0) {
stack_node_retain(path->node);
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self->heads.contents[head_index] = path->node;
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result.head_index = head_index;
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} else {
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result.head_index = ts_stack__find_head(self, path->node);
if (result.head_index == -1) {
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result.head_index = ts_stack__add_head(self, path->node);
if (result.head_index == -1)
goto error;
} else {
bool merged_result = false;
for (size_t j = 0; j < self->pop_results.size; j++) {
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StackPopResult *prior_result = &self->pop_results.contents[j];
if (prior_result->head_index == result.head_index) {
ts_stack__add_alternative_pop_result(self, prior_result, &result);
merged_result = true;
break;
}
}
if (merged_result)
continue;
}
}
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if (!array_push(&self->pop_results, result))
goto error;
}
stack_node_release(self, previous_head);
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return self->pop_results;
error:
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array_delete(&initial_path.trees);
StackPopResultArray result;
array_init(&result);
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return result;
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}
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void ts_stack_shrink(Stack *self, int head_index, int count) {
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StackNode *head = *array_get(&self->heads, head_index);
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StackNode *new_head = head;
for (int i = 0; i < count; i++) {
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if (new_head->successor_count == 0)
break;
new_head = new_head->successors[0];
}
stack_node_retain(new_head);
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stack_node_release(self, head);
self->heads.contents[head_index] = new_head;
}
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void ts_stack_clear(Stack *self) {
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for (size_t i = 0; i < self->heads.size; i++)
stack_node_release(self, self->heads.contents[i]);
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array_clear(&self->heads);
array_push(&self->heads, NULL);
}
void ts_stack_set_tree_selection_callback(Stack *self, void *payload,
TreeSelectionFunction function) {
self->tree_selection_payload = payload;
self->tree_selection_function = function;
}
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void ts_stack_delete(Stack *self) {
if (self->pop_paths.contents)
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array_delete(&self->pop_results);
if (self->pop_paths.contents)
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array_delete(&self->pop_paths);
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ts_stack_clear(self);
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if (self->node_pool.contents) {
for (size_t i = 0; i < self->node_pool.size; i++)
ts_free(self->node_pool.contents[i]);
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array_delete(&self->node_pool);
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}
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array_delete(&self->heads);
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ts_free(self);
}