#include "runtime/alloc.h" #include "runtime/tree.h" #include "runtime/array.h" #include "runtime/stack.h" #include "runtime/length.h" #include #include #define MAX_LINK_COUNT 8 #define MAX_NODE_POOL_SIZE 50 #define INLINE static inline __attribute__((always_inline)) typedef struct StackNode StackNode; typedef struct { StackNode *node; Tree *tree; unsigned push_count; bool is_pending; } StackLink; struct StackNode { TSStateId state; Length position; StackLink links[MAX_LINK_COUNT]; short unsigned int link_count; short unsigned int ref_count; unsigned error_cost; unsigned error_count; }; typedef struct { TreeArray trees; uint32_t tree_count; StackNode *node; bool is_pending; unsigned push_count; } Iterator; typedef struct { uint32_t goal_tree_count; bool found_error; bool found_valid_path; } StackPopSession; typedef Array(StackNode *) StackNodeArray; typedef struct { StackNode *node; bool is_halted; unsigned push_count; } StackHead; struct Stack { Array(StackHead) heads; StackSliceArray slices; Array(Iterator) iterators; StackNodeArray node_pool; StackNode *base_node; }; static void stack_node_retain(StackNode *self) { if (!self) return; assert(self->ref_count != 0); self->ref_count++; } static void stack_node_release(StackNode *self, StackNodeArray *pool) { if (!self) return; assert(self->ref_count != 0); self->ref_count--; if (self->ref_count == 0) { for (int i = 0; i < self->link_count; i++) { if (self->links[i].tree) ts_tree_release(self->links[i].tree); stack_node_release(self->links[i].node, pool); } if (pool->size < MAX_NODE_POOL_SIZE) { array_push(pool, self); } else { ts_free(self); } } } static StackNode *stack_node_new(StackNode *next, Tree *tree, bool is_pending, TSStateId state, Length position, StackNodeArray *pool) { StackNode *node; if (pool->size > 0) node = array_pop(pool); else if (!(node = ts_malloc(sizeof(StackNode)))) return NULL; *node = (StackNode){ .ref_count = 1, .link_count = 0, .links = {}, .state = state, .position = position, }; if (next) { stack_node_retain(next); node->link_count = 1; node->links[0] = (StackLink){ .node = next, .tree = tree, .is_pending = is_pending, .push_count = 0, }; node->error_count = next->error_count; node->error_cost = next->error_cost; if (tree) { ts_tree_retain(tree); node->error_cost += tree->error_cost; if (state == ERROR_STATE) { if (!tree->extra) { node->error_cost += ERROR_COST_PER_SKIPPED_TREE + ERROR_COST_PER_SKIPPED_CHAR * (tree->padding.chars + tree->size.chars) + ERROR_COST_PER_SKIPPED_LINE * (tree->padding.extent.row + tree->size.extent.row); } } } else { node->error_count++; } } else { node->error_count = 0; node->error_cost = 0; } return node; } static void stack_node_add_link(StackNode *self, StackLink link) { for (int i = 0; i < self->link_count; i++) { StackLink existing_link = self->links[i]; if (existing_link.tree == link.tree) { if (existing_link.node == link.node) return; if (existing_link.node->state == link.node->state) { for (int j = 0; j < link.node->link_count; j++) stack_node_add_link(existing_link.node, link.node->links[j]); return; } } } if (self->link_count < MAX_LINK_COUNT) { stack_node_retain(link.node); if (link.tree) ts_tree_retain(link.tree); self->links[self->link_count++] = (StackLink){ .node = link.node, .tree = link.tree, .is_pending = link.is_pending, .push_count = link.push_count, }; } } static StackVersion ts_stack__add_version(Stack *self, StackNode *node, unsigned push_count) { StackHead head = { .node = node, .is_halted = false, .push_count = push_count, }; array_push(&self->heads, head); stack_node_retain(node); return (StackVersion)(self->heads.size - 1); } static void ts_stack__add_slice(Stack *self, StackNode *node, TreeArray *trees, unsigned push_count) { for (uint32_t i = self->slices.size - 1; i + 1 > 0; i--) { StackVersion version = self->slices.contents[i].version; if (self->heads.contents[version].node == node) { StackSlice slice = { *trees, version }; array_insert(&self->slices, i + 1, slice); return; } } StackVersion version = ts_stack__add_version(self, node, push_count); StackSlice slice = { *trees, version }; array_push(&self->slices, slice); } INLINE StackPopResult stack__iter(Stack *self, StackVersion version, StackIterateCallback callback, void *payload) { array_clear(&self->slices); array_clear(&self->iterators); StackHead *head = array_get(&self->heads, version); unsigned push_count = head->push_count; Iterator iterator = { .node = head->node, .trees = array_new(), .tree_count = 0, .is_pending = true, .push_count = 0, }; array_push(&self->iterators, iterator); while (self->iterators.size > 0) { for (uint32_t i = 0, size = self->iterators.size; i < size; i++) { Iterator *iterator = &self->iterators.contents[i]; StackNode *node = iterator->node; bool is_done = node == self->base_node; StackIterateAction action = callback(payload, node->state, &iterator->trees, iterator->tree_count, is_done, iterator->is_pending); bool should_pop = action & StackIteratePop; bool should_stop = action & StackIterateStop || node->link_count == 0; if (should_pop) { TreeArray trees = iterator->trees; if (!should_stop) ts_tree_array_copy(trees, &trees); array_reverse(&trees); ts_stack__add_slice(self, node, &trees, push_count + iterator->push_count); } if (should_stop) { if (!should_pop) ts_tree_array_delete(&iterator->trees); array_erase(&self->iterators, i); i--, size--; continue; } for (uint32_t j = 1; j <= node->link_count; j++) { Iterator *next_iterator; StackLink link; if (j == node->link_count) { link = node->links[0]; next_iterator = &self->iterators.contents[i]; } else { link = node->links[j]; array_push(&self->iterators, self->iterators.contents[i]); next_iterator = array_back(&self->iterators); ts_tree_array_copy(next_iterator->trees, &next_iterator->trees); } next_iterator->node = link.node; next_iterator->push_count += link.push_count; if (link.tree) { if (!link.tree->extra) { next_iterator->tree_count++; if (!link.is_pending) next_iterator->is_pending = false; } array_push(&next_iterator->trees, link.tree); ts_tree_retain(link.tree); } else { next_iterator->is_pending = false; } } } } return (StackPopResult){ false, self->slices }; } Stack *ts_stack_new() { Stack *self = ts_calloc(1, sizeof(Stack)); array_init(&self->heads); array_init(&self->slices); array_init(&self->iterators); array_init(&self->node_pool); array_grow(&self->heads, 4); array_grow(&self->slices, 4); array_grow(&self->iterators, 4); array_grow(&self->node_pool, MAX_NODE_POOL_SIZE); self->base_node = stack_node_new(NULL, NULL, false, 1, length_zero(), &self->node_pool); stack_node_retain(self->base_node); array_push(&self->heads, ((StackHead){ self->base_node, false, 0 })); return self; } void ts_stack_delete(Stack *self) { if (self->slices.contents) array_delete(&self->slices); if (self->iterators.contents) array_delete(&self->iterators); stack_node_release(self->base_node, &self->node_pool); for (uint32_t i = 0; i < self->heads.size; i++) stack_node_release(self->heads.contents[i].node, &self->node_pool); array_clear(&self->heads); if (self->node_pool.contents) { for (uint32_t i = 0; i < self->node_pool.size; i++) ts_free(self->node_pool.contents[i]); array_delete(&self->node_pool); } array_delete(&self->heads); ts_free(self); } uint32_t ts_stack_version_count(const Stack *self) { return self->heads.size; } TSStateId ts_stack_top_state(const Stack *self, StackVersion version) { return array_get(&self->heads, version)->node->state; } Length ts_stack_top_position(const Stack *self, StackVersion version) { return array_get(&self->heads, version)->node->position; } unsigned ts_stack_push_count(const Stack *self, StackVersion version) { return array_get(&self->heads, version)->push_count; } void ts_stack_decrease_push_count(const Stack *self, StackVersion version, unsigned decrement) { array_get(&self->heads, version)->push_count -= decrement; } ErrorStatus ts_stack_error_status(const Stack *self, StackVersion version) { StackHead *head = array_get(&self->heads, version); return (ErrorStatus){ .cost = head->node->error_cost, .count = head->node->error_count, .push_count = head->push_count, }; } unsigned ts_stack_error_count(const Stack *self, StackVersion version) { StackNode *node = array_get(&self->heads, version)->node; return node->error_count; } bool ts_stack_push(Stack *self, StackVersion version, Tree *tree, bool is_pending, TSStateId state) { StackHead *head = array_get(&self->heads, version); StackNode *node = head->node; Length position = node->position; if (tree) position = length_add(position, ts_tree_total_size(tree)); StackNode *new_node = stack_node_new(node, tree, is_pending, state, position, &self->node_pool); if (!new_node) return false; stack_node_release(node, &self->node_pool); head->node = new_node; if (state == ERROR_STATE) { new_node->links[0].push_count = head->push_count; head->push_count = 0; } else head->push_count++; return true; } StackPopResult ts_stack_iterate(Stack *self, StackVersion version, StackIterateCallback callback, void *payload) { return stack__iter(self, version, callback, payload); } INLINE StackIterateAction pop_count_callback(void *payload, TSStateId state, TreeArray *trees, uint32_t tree_count, bool is_done, bool is_pending) { StackPopSession *pop_session = (StackPopSession *)payload; if (tree_count == pop_session->goal_tree_count) { pop_session->found_valid_path = true; return StackIteratePop | StackIterateStop; } if (state == ERROR_STATE) { if (pop_session->found_valid_path || pop_session->found_error) { return StackIterateStop; } else { pop_session->found_error = true; return StackIteratePop | StackIterateStop; } } return StackIterateNone; } StackPopResult ts_stack_pop_count(Stack *self, StackVersion version, uint32_t count) { StackPopSession session = { .goal_tree_count = count, .found_error = false, .found_valid_path = false, }; StackPopResult pop = stack__iter(self, version, pop_count_callback, &session); if (session.found_error) { if (session.found_valid_path) { StackSlice error_slice = pop.slices.contents[0]; ts_tree_array_delete(&error_slice.trees); array_erase(&pop.slices, 0); if (array_front(&pop.slices)->version != error_slice.version) { ts_stack_remove_version(self, error_slice.version); for (StackVersion i = 0; i < pop.slices.size; i++) pop.slices.contents[i].version--; } } else { pop.stopped_at_error = true; } } return pop; } INLINE StackIterateAction pop_pending_callback(void *payload, TSStateId state, TreeArray *trees, uint32_t tree_count, bool is_done, bool is_pending) { if (tree_count >= 1) { if (is_pending) { return StackIteratePop | StackIterateStop; } else { return StackIterateStop; } } else { return StackIterateNone; } } StackPopResult ts_stack_pop_pending(Stack *self, StackVersion version) { StackPopResult pop = stack__iter(self, version, pop_pending_callback, NULL); if (pop.slices.size > 0) { ts_stack_renumber_version(self, pop.slices.contents[0].version, version); pop.slices.contents[0].version = version; } return pop; } INLINE StackIterateAction pop_all_callback(void *payload, TSStateId state, TreeArray *trees, uint32_t tree_count, bool is_done, bool is_pending) { return is_done ? (StackIteratePop | StackIterateStop) : StackIterateNone; } StackPopResult ts_stack_pop_all(Stack *self, StackVersion version) { return stack__iter(self, version, pop_all_callback, NULL); } void ts_stack_remove_version(Stack *self, StackVersion version) { StackNode *node = array_get(&self->heads, version)->node; stack_node_release(node, &self->node_pool); array_erase(&self->heads, version); } void ts_stack_renumber_version(Stack *self, StackVersion v1, StackVersion v2) { assert(v2 < v1); assert((uint32_t)v1 < self->heads.size); stack_node_release(self->heads.contents[v2].node, &self->node_pool); self->heads.contents[v2] = self->heads.contents[v1]; array_erase(&self->heads, v1); } StackVersion ts_stack_copy_version(Stack *self, StackVersion version) { assert(version < self->heads.size); array_push(&self->heads, self->heads.contents[version]); stack_node_retain(array_back(&self->heads)->node); return self->heads.size - 1; } bool ts_stack_merge(Stack *self, StackVersion version, StackVersion new_version) { StackHead *head = &self->heads.contents[version]; StackHead *new_head = &self->heads.contents[new_version]; StackNode *node = head->node; StackNode *new_node = new_head->node; if (new_node->state == node->state && new_node->position.chars == node->position.chars && new_node->error_count == node->error_count && new_node->error_cost == node->error_cost) { for (uint32_t j = 0; j < new_node->link_count; j++) stack_node_add_link(node, new_node->links[j]); if (new_head->push_count > head->push_count) head->push_count = new_head->push_count; ts_stack_remove_version(self, new_version); return true; } else { return false; } } void ts_stack_halt(Stack *self, StackVersion version) { array_get(&self->heads, version)->is_halted = true; } bool ts_stack_is_halted(Stack *self, StackVersion version) { return array_get(&self->heads, version)->is_halted; } void ts_stack_clear(Stack *self) { stack_node_retain(self->base_node); for (uint32_t i = 0; i < self->heads.size; i++) stack_node_release(self->heads.contents[i].node, &self->node_pool); array_clear(&self->heads); array_push(&self->heads, ((StackHead){ self->base_node, false, 0 })); } bool ts_stack_print_dot_graph(Stack *self, const char **symbol_names, FILE *f) { bool was_recording_allocations = ts_toggle_allocation_recording(false); if (!f) f = stderr; fprintf(f, "digraph stack {\n"); fprintf(f, "rankdir=\"RL\";\n"); fprintf(f, "edge [arrowhead=none]\n"); Array(StackNode *)visited_nodes = array_new(); array_clear(&self->iterators); for (uint32_t i = 0; i < self->heads.size; i++) { StackHead *head = &self->heads.contents[i]; if (head->is_halted) continue; fprintf(f, "node_head_%u [shape=none, label=\"\"]\n", i); fprintf( f, "node_head_%u -> node_%p [label=%u, fontcolor=blue, weight=10000, " "labeltooltip=\"push_count: %u\"]\n", i, head->node, i, head->push_count); array_push(&self->iterators, ((Iterator){.node = head->node })); } bool all_iterators_done = false; while (!all_iterators_done) { all_iterators_done = true; for (uint32_t i = 0; i < self->iterators.size; i++) { Iterator *iterator = &self->iterators.contents[i]; StackNode *node = iterator->node; for (uint32_t j = 0; j < visited_nodes.size; j++) { if (visited_nodes.contents[j] == node) { node = NULL; break; } } if (!node) continue; all_iterators_done = false; fprintf(f, "node_%p [", node); if (node->state == ERROR_STATE) fprintf(f, "label=\"?\""); else if (node->link_count == 1 && node->links[0].tree && node->links[0].tree->extra) fprintf(f, "shape=point margin=0 label=\"\""); else fprintf(f, "label=\"%d\"", node->state); fprintf(f, " tooltip=\"position: %u,%u\nerror_count: %u\nerror_cost: %u\"];\n", node->position.extent.row, node->position.extent.column, node->error_count, node->error_cost); for (int j = 0; j < node->link_count; j++) { StackLink link = node->links[j]; fprintf(f, "node_%p -> node_%p [", node, link.node); if (link.is_pending) fprintf(f, "style=dashed "); if (link.tree && link.tree->extra) fprintf(f, "fontcolor=gray "); if (!link.tree) { fprintf(f, "color=red, tooltip=\"push_count: %u\"", link.push_count); } else if (link.tree->symbol == ts_builtin_sym_error) { fprintf(f, "label=\"ERROR\""); } else { fprintf(f, "label=\""); if (!link.tree->named) fprintf(f, "'"); const char *name = symbol_names[link.tree->symbol]; for (const char *c = name; *c; c++) { if (*c == '\"' || *c == '\\') fprintf(f, "\\"); fprintf(f, "%c", *c); } if (!link.tree->named) fprintf(f, "'"); fprintf(f, "\" labeltooltip=\"error_cost: %u\"", link.tree->error_cost); } fprintf(f, "];\n"); if (j == 0) { iterator->node = link.node; } else { array_push(&self->iterators, *iterator); Iterator *next_iterator = array_back(&self->iterators); next_iterator->node = link.node; } } array_push(&visited_nodes, node); } } fprintf(f, "}\n"); array_delete(&visited_nodes); ts_toggle_allocation_recording(was_recording_allocations); return true; }