add construction of LR(0) automaton (untested)
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1 changed files with 190 additions and 13 deletions
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@ -17,30 +17,48 @@
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/* Constructing the characteristic automaton (handle recognizer) */
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/* Constructing the characteristic automaton (handle recognizer) */
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// - DFA is a hashset containing states (mapped to numbers)
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// - states are hashsets containing LRItems
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// - states are hashsets containing LRItems
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// - LRItems contain an optional lookahead set (HStringMap)
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// - LRItems contain an optional lookahead set (HStringMap)
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// - states (hashsets) get hash and comparison functions that ignore the lookahead
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// - states (hashsets) get hash and comparison functions that ignore the lookahead
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typedef HHashSet HLRState;
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typedef struct HLRDFA_ {
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typedef struct HLRDFA_ {
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HHashSet *states;
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size_t nstates;
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const HLRState **states; // array of size nstates
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HSlist *transitions;
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HSlist *transitions;
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} HLRDFA;
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} HLRDFA;
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typedef struct HLRTransition_ {
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typedef struct HLRTransition_ {
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HLRState *from;
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size_t from, to; // indices into 'states' array
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HCFChoice *symbol;
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const HCFChoice *symbol;
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HLRState *to;
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} HLRTransition;
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} HLRTransition;
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typedef struct HLRItem_ {
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typedef struct HLRItem_ {
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HCFChoice *lhs;
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HCFChoice *lhs;
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HCFChoice **rhs;
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HCFChoice **rhs; // NULL-terminated
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size_t len; // number of elements in rhs
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size_t len; // number of elements in rhs
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size_t mark;
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size_t mark;
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HStringMap *lookahead; // optional
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HStringMap *lookahead; // optional
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} HLRItem;
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} HLRItem;
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HLRItem *h_lritem_new(HArena *a, HCFChoice *lhs, HCFChoice **rhs, size_t mark)
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{
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HLRItem *ret = h_arena_malloc(a, sizeof(HLRItem));
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size_t len = 0;
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for(HCFChoice **p=rhs; *p; p++) len++;
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assert(mark <= len);
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ret->lhs = lhs;
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ret->rhs = rhs;
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ret->len = len;
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ret->mark = mark;
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ret->lookahead = NULL;
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return ret;
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}
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// compare LALR items - ignores lookahead
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// compare LALR items - ignores lookahead
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static bool eq_lalr_item(const void *p, const void *q)
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static bool eq_lalr_item(const void *p, const void *q)
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{
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{
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@ -63,8 +81,9 @@ static inline bool eq_lalr_itemset(const void *p, const void *q)
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}
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}
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// hash LALR items
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// hash LALR items
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static inline HHashValue hash_lalr_item(const HLRItem *x)
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static inline HHashValue hash_lalr_item(const void *p)
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{
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{
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const HLRItem *x = p;
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return (h_hash_ptr(x->lhs)
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return (h_hash_ptr(x->lhs)
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+ h_djbhash((uint8_t *)x->rhs, x->len*sizeof(HCFChoice *))
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+ h_djbhash((uint8_t *)x->rhs, x->len*sizeof(HCFChoice *))
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+ x->mark); // XXX is it okay to just add mark?
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+ x->mark); // XXX is it okay to just add mark?
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@ -88,13 +107,90 @@ static HHashValue hash_lalr_itemset(const void *p)
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return hash;
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return hash;
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}
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}
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static HHashSet *closure(const HHashSet *items);
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static inline HLRState *h_lrstate_new(HArena *arena)
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{
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return h_hashset_new(arena, eq_lalr_item, hash_lalr_item);
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}
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static HLRItem *advance_mark(HArena *arena, const HLRItem *item)
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{
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assert(item->rhs[item->mark] != NULL);
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HLRItem *ret = h_arena_malloc(arena, sizeof(HLRItem));
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*ret = *item;
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ret->mark++;
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return ret;
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}
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static HHashSet *closure(HCFGrammar *g, const HHashSet *items)
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{
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HArena *arena = g->arena;
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HHashSet *ret = h_lrstate_new(arena);
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HSlist *work = h_slist_new(arena);
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// iterate over items - initialize work list with them
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const HHashTable *ht = items;
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for(size_t i=0; i < ht->capacity; i++) {
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for(HHashTableEntry *hte = &ht->contents[i]; hte; hte = hte->next) {
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if(hte->key == NULL)
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continue;
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const HLRItem *item = hte->key;
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h_hashset_put(ret, item);
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h_slist_push(work, (void *)item);
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}
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}
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while(!h_slist_empty(work)) {
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const HLRItem *item = h_slist_pop(work);
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HCFChoice *sym = item->rhs[item->mark]; // symbol after mark
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// if there is a non-terminal after the mark, follow it
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// XXX: do we have to count HCF_CHARSET as nonterminal?
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if(sym != NULL && sym->type == HCF_CHOICE) {
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// add items corresponding to the productions of sym
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for(HCFSequence **p=sym->seq; *p; p++) {
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HLRItem *it = h_lritem_new(arena, sym, (*p)->items, 0);
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if(!h_hashset_present(ret, it)) {
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h_hashset_put(ret, it);
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h_slist_push(work, it);
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}
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}
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// if sym derives epsilon, also advance over it
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if(h_derives_epsilon(g, sym)) {
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HLRItem *it = advance_mark(arena, item);
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h_hashset_put(ret, it);
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h_slist_push(work, it);
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}
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}
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}
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return ret;
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}
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HLRDFA *h_lalr_dfa(HCFGrammar *g)
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HLRDFA *h_lalr_dfa(HCFGrammar *g)
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{
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{
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HHashSet *states = h_hashset_new(g->arena, eq_lalr_itemset, hash_lalr_itemset);
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HArena *arena = g->arena;
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HHashSet *states = h_hashset_new(arena, eq_lalr_itemset, hash_lalr_itemset);
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// maps itemsets to assigned array indices
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HSlist *transitions = h_slist_new(arena);
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// list of states that need to be processed
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// to save lookups, we push two elements per state, the itemset and its
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// assigned index.
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HSlist *work = h_slist_new(arena);
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// XXX augment grammar?!
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// make initial state (kernel)
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// make initial state (kernel)
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HLRState *start = h_lrstate_new(arena);
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assert(g->start->type == HCF_CHOICE);
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for(HCFSequence **p=g->start->seq; *p; p++)
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h_hashset_put(start, h_lritem_new(arena, g->start, (*p)->items, 0));
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h_hashtable_put(states, start, 0);
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h_slist_push(work, start);
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h_slist_push(work, 0);
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// while work to do (on some state)
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// while work to do (on some state)
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// compute closure
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// compute closure
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@ -105,6 +201,85 @@ HLRDFA *h_lalr_dfa(HCFGrammar *g)
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// add it to state set
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// add it to state set
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// add transition to it
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// add transition to it
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// add it to the work list
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// add it to the work list
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while(!h_slist_empty(work)) {
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size_t state_idx = (uintptr_t)h_slist_pop(work);
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HLRState *state = h_slist_pop(work);
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// maps edge symbols to neighbor states (item sets) of s
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HHashTable *neighbors = h_hashtable_new(arena, h_eq_ptr, h_hash_ptr);
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// iterate over closure and generate neighboring sets
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const HHashTable *ht = closure(g, state);
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for(size_t i=0; i < ht->capacity; i++) {
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for(HHashTableEntry *hte = &ht->contents[i]; hte; hte = hte->next) {
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if(hte->key == NULL)
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continue;
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const HLRItem *item = hte->key;
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HCFChoice *sym = item->rhs[item->mark]; // symbol after mark
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if(sym != NULL) { // mark was not at the end
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// find or create prospective neighbor set
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HLRState *neighbor = h_hashtable_get(neighbors, sym);
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if(neighbor == NULL) {
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neighbor = h_lrstate_new(arena);
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h_hashtable_put(neighbors, sym, neighbor);
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}
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// ...and add the advanced item to it
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h_hashset_put(neighbor, advance_mark(arena, item));
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}
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}
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}
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// merge neighbor sets into the set of existing states
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ht = neighbors;
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for(size_t i=0; i < ht->capacity; i++) {
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for(HHashTableEntry *hte = &ht->contents[i]; hte; hte = hte->next) {
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if(hte->key == NULL)
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continue;
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const HCFChoice *symbol = hte->key;
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HLRState *neighbor = hte->value;
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// look up existing state, allocate new if not found
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size_t neighbor_idx;
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if(!h_hashset_present(states, neighbor)) {
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neighbor_idx = states->used;
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h_hashtable_put(states, neighbor, (void *)(uintptr_t)neighbor_idx);
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h_slist_push(work, neighbor);
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h_slist_push(work, (void *)(uintptr_t)neighbor_idx);
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}
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// add transition "state --symbol--> neighbor"
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HLRTransition *t = h_arena_malloc(arena, sizeof(HLRTransition));
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t->from = state_idx;
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t->to = neighbor_idx;
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t->symbol = symbol;
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h_slist_push(transitions, t);
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}
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}
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} // end while(work)
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// fill DFA struct
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HLRDFA *dfa = h_arena_malloc(arena, sizeof(HLRDFA));
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dfa->nstates = states->used;
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dfa->states = h_arena_malloc(arena, dfa->nstates*sizeof(HLRState *));
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for(size_t i=0; i < states->capacity; i++) {
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for(HHashTableEntry *hte = &states->contents[i]; hte; hte = hte->next) {
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if(hte->key == NULL)
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continue;
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const HLRState *state = hte->key;
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size_t idx = (uintptr_t)hte->value;
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dfa->states[idx] = state;
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}
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}
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dfa->transitions = transitions;
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return dfa;
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}
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}
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@ -172,20 +347,22 @@ int test_lalr(void)
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HParser *p = h_choice(A, B, NULL);
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HParser *p = h_choice(A, B, NULL);
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HCFGrammar *g = h_cfgrammar(&system_allocator, p);
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HCFGrammar *g = h_cfgrammar(&system_allocator, p);
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if(g == NULL) {
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if(g == NULL) {
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fprintf(stderr, "h_cfgrammar failed\n");
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fprintf(stderr, "h_cfgrammar failed\n");
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return 1;
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return 1;
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}
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}
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h_pprint_grammar(stdout, g, 0);
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h_pprint_grammar(stdout, g, 0);
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HLRDFA *dfa = h_lalr_dfa(g);
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if(dfa) {
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// print states of the LR(0) automaton
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// print states of the LR(0) automaton
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// print LALR(1) table
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}
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if(h_compile(p, PB_LALR, NULL)) {
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if(h_compile(p, PB_LALR, NULL)) {
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fprintf(stderr, "does not compile\n");
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fprintf(stderr, "does not compile\n");
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return 2;
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return 2;
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}
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}
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// print LALR(1) table
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HParseResult *res = h_parse(p, (uint8_t *)"xyya", 4);
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HParseResult *res = h_parse(p, (uint8_t *)"xyya", 4);
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