Year 2 compilers coureswork

main.c 11KB

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  1. #include <stdio.h>
  2. #include <stdlib.h>
  3. #include <ctype.h>
  4. #include <string.h>
  5. #include "nodes.h"
  6. #include "C.tab.h"
  7. #include "types.h"
  8. #include "list.h"
  9. extern TOKEN* lookup_token(char*);
  10. TOKEN* gen_tmp(void) {
  11. char tmp[10];
  12. static char num = 0;
  13. snprintf(tmp, 10, "$t%d", num++);
  14. return lookup_token(tmp);
  15. }
  16. TOKEN* gen_label(void) {
  17. char tmp[10];
  18. static char label = 0;
  19. snprintf(tmp, 10, "L%d", label++);
  20. return lookup_token(tmp);
  21. }
  22. char *named(int t)
  23. {
  24. static char b[100];
  25. if (isgraph(t) || t==' ') {
  26. sprintf(b, "%c", t);
  27. return b;
  28. }
  29. switch (t) {
  30. default: return "???";
  31. case IDENTIFIER:
  32. return "id";
  33. case CONSTANT:
  34. return "constant";
  35. case STRING_LITERAL:
  36. return "string";
  37. case LE_OP:
  38. return "<=";
  39. case GE_OP:
  40. return ">=";
  41. case EQ_OP:
  42. return "==";
  43. case NE_OP:
  44. return "!=";
  45. case EXTERN:
  46. return "extern";
  47. case AUTO:
  48. return "auto";
  49. case INT:
  50. return "int";
  51. case VOID:
  52. return "void";
  53. case APPLY:
  54. return "apply";
  55. case LEAF:
  56. return "leaf";
  57. case IF:
  58. return "if";
  59. case ELSE:
  60. return "else";
  61. case WHILE:
  62. return "while";
  63. case CONTINUE:
  64. return "continue";
  65. case BREAK:
  66. return "break";
  67. case RETURN:
  68. return "return";
  69. }
  70. }
  71. void print_leaf(NODE *tree, int level)
  72. {
  73. TOKEN *t = (TOKEN *)tree;
  74. int i;
  75. for (i=0; i<level; i++) putchar(' ');
  76. if (t->type == CONSTANT) printf("%d\n", t->value);
  77. else if (t->type == STRING_LITERAL) printf("\"%s\"\n", t->lexeme);
  78. else if (t) puts(t->lexeme);
  79. }
  80. void print_tree0(NODE *tree, int level)
  81. {
  82. int i;
  83. if (tree==NULL) return;
  84. if (tree->type==LEAF) {
  85. print_leaf(tree->left, level);
  86. }
  87. else {
  88. for(i=0; i<level; i++) putchar(' ');
  89. printf("%s\n", named(tree->type));
  90. print_tree0(tree->left, level+2);
  91. print_tree0(tree->right, level+2);
  92. }
  93. }
  94. void print_tree(NODE *tree)
  95. {
  96. print_tree0(tree, 0);
  97. }
  98. void new_tac(TACS* tacs, TOKEN* dst, TOKEN* src, TOKEN* tgt, int op) {
  99. if (tacs->list == NULL) {
  100. TAC_T* tac;
  101. tac = create_tac(op, src, tgt, dst);
  102. tacs->list = new_tac_list(tac, NULL);
  103. } else {
  104. add_tac(tacs->list, op, src, tgt, dst);
  105. }
  106. }
  107. char* stok(TOKEN* tok) {
  108. return tok->lexeme;
  109. }
  110. void print_tac(TLIST* tac_list) {
  111. TLIST *ptr = tac_list;
  112. while (ptr != NULL) {
  113. int op = ptr->elem->op;
  114. if (op == '=') printf("%s := %s\n", stok(ptr->elem->dst), stok(ptr->elem->src));
  115. if (op=='+' || op=='-' || op=='*' || op=='/' || op =='%') printf("%s := %s %c %s\n", stok(ptr->elem->dst), stok(ptr->elem->src), op, stok(ptr->elem->tgt));
  116. if (op == RETURN) printf("ret %s\n", stok(ptr->elem->src));
  117. if (op == 'D') printf("\nfunc %s\n", stok(ptr->elem->dst));
  118. if (op == '>' || op == '<') printf("if %s %c %s then %s\n", stok(ptr->elem->src), op, stok(ptr->elem->tgt), stok(ptr->elem->dst));
  119. if (op == GE_OP) printf("if %s >= %s then %s\n", stok(ptr->elem->src), stok(ptr->elem->tgt), stok(ptr->elem->dst));
  120. if (op == LE_OP) printf("if %s <= %s then %s\n", stok(ptr->elem->src), stok(ptr->elem->tgt), stok(ptr->elem->dst));
  121. if (op == EQ_OP) printf("if %s == %s then %s\n", stok(ptr->elem->src), stok(ptr->elem->tgt), stok(ptr->elem->dst));
  122. if (op == NE_OP) printf("if %s != %s then %s\n", stok(ptr->elem->src), stok(ptr->elem->tgt), stok(ptr->elem->dst));
  123. if (op == IDENTIFIER) printf("%s\n", stok(ptr->elem->dst));
  124. if (op == VOID) printf("goto %s\n", stok(ptr->elem->dst));
  125. if (op == AUTO) printf("param %s\n", stok(ptr->elem->dst));
  126. if (op == APPLY) printf("call %s, %s\n", stok(ptr->elem->dst), stok(ptr->elem->tgt));
  127. if (op == 278) printf("arg %s\n", stok(ptr->elem->dst));
  128. ptr = ptr->next;
  129. }
  130. }
  131. int invert_op(int op) {
  132. if (op == LE_OP) {
  133. return '>';
  134. } else if (op == GE_OP) {
  135. return '<';
  136. } else if (op == '>') {
  137. return LE_OP;
  138. } else if (op == '<') {
  139. return GE_OP;
  140. } else if (op == EQ_OP) {
  141. return NE_OP;
  142. } else if (op == NE_OP) {
  143. return EQ_OP;
  144. } else {
  145. printf("Unknown operator: %c", op);
  146. exit(1);
  147. }
  148. }
  149. int count_args(NODE *tree) {
  150. NODE *tmp = tree;
  151. int a = 1;
  152. while (tmp != NULL) {
  153. if (tmp->type != ',') {
  154. break;
  155. }
  156. tmp = tmp->left;
  157. a++;
  158. }
  159. return a;
  160. }
  161. void populate_arg_list(NODE *tree, TOKEN** arr, int arr_len) {
  162. if (tree->type == '~') {
  163. for (int i = 0; i < arr_len; i++) {
  164. if (arr[i] == NULL) {
  165. TOKEN* name = (TOKEN*)tree->right->left;
  166. arr[i] = name;
  167. break;
  168. }
  169. }
  170. } else {
  171. populate_arg_list(tree->left, arr, arr_len);
  172. populate_arg_list(tree->right, arr, arr_len);
  173. }
  174. }
  175. TOKEN** get_argument_list(NODE *tree) {
  176. int num_args = count_args(tree->left->right->right);
  177. TOKEN** arr = (TOKEN**) malloc(sizeof(TOKEN*) * num_args);
  178. populate_arg_list(tree->left->right->right, arr, num_args);
  179. return arr;
  180. }
  181. void populate_val_list(NODE* tree, NODE** arr, int num_args) {
  182. if (tree->type == ',') {
  183. populate_val_list(tree->left, arr, num_args);
  184. populate_val_list(tree->right, arr, num_args);
  185. } else {
  186. for (int i = 0; i < num_args; i++) {
  187. if (arr[i] == NULL) {
  188. arr[i] = tree;
  189. break;
  190. }
  191. }
  192. }
  193. }
  194. NODE** get_val_list(NODE *tree) {
  195. int num_args = count_args(tree);
  196. NODE** arr = (NODE**) malloc(sizeof(NODE*) * num_args);
  197. populate_val_list(tree, arr, num_args);
  198. return arr;
  199. }
  200. TOKEN* build_tac(NODE *tree, TACS* tac) {
  201. if (tree == NULL) return NULL;
  202. int type = tree->type;
  203. if (type == LEAF) {
  204. return (TOKEN *) tree->left;
  205. } else if (type == '=') {
  206. TOKEN* dst = (TOKEN*) tree->left->left;
  207. TOKEN* result = build_tac(tree->right, tac);
  208. new_tac(tac, dst, result, NULL, tree->type);
  209. } else if (type=='+' || type=='-' || type=='*' || type=='/' || type =='%') {
  210. TOKEN* dst = gen_tmp();
  211. TOKEN* src = build_tac(tree->left, tac);
  212. TOKEN* tgt = build_tac(tree->right, tac);
  213. new_tac(tac, dst, src, tgt, tree->type);
  214. return dst;
  215. } else if (type == IF) {
  216. int op = invert_op(tree->left->type);
  217. TOKEN* lhs = build_tac(tree->left->left, tac);
  218. TOKEN* rhs = build_tac(tree->left->right, tac);
  219. TOKEN* label = gen_label();
  220. new_tac(tac, label, lhs, rhs, op);
  221. if (tree->right->type == ELSE) {
  222. TOKEN* cont = gen_label();
  223. build_tac(tree->right->left, tac);
  224. new_tac(tac, cont, NULL, NULL, VOID);
  225. new_tac(tac, label, NULL, NULL, IDENTIFIER);
  226. build_tac(tree->right->right, tac);
  227. new_tac(tac, cont, NULL, NULL, IDENTIFIER);
  228. } else {
  229. build_tac(tree->right, tac);
  230. new_tac(tac, label, NULL, NULL, IDENTIFIER);
  231. }
  232. } else if (type == RETURN) {
  233. TOKEN* src = build_tac(tree->left, tac);
  234. new_tac(tac, NULL, src, NULL, RETURN);
  235. } else if (type == 'D') {
  236. new_tac(tac, (TOKEN*) tree->left->right->left->left, NULL, NULL, 'D');
  237. if (tree->left->right->right != NULL) {
  238. TOKEN** arg_list = get_argument_list(tree);
  239. int arg_count = count_args(tree->left->right->right);
  240. for (int i = 0; i < arg_count; i++) {
  241. new_tac(tac, arg_list[i], NULL, NULL, AUTO);
  242. }
  243. }
  244. build_tac(tree->right, tac);
  245. } else if (type == APPLY) {
  246. TOKEN* ret_val = gen_tmp();
  247. if (tree->right != NULL) {
  248. int num_args;
  249. NODE **val_list;
  250. num_args = count_args(tree->right);
  251. val_list = get_val_list(tree->right);
  252. for (int i = 0; i < num_args; i++) {
  253. TOKEN* arg_token = build_tac(val_list[i], tac);
  254. new_tac(tac, arg_token, NULL, NULL, 278);
  255. }
  256. }
  257. new_tac(tac, (TOKEN*) tree->left->left, NULL, ret_val, APPLY);
  258. return ret_val;
  259. } else {
  260. build_tac(tree->left, tac);
  261. build_tac(tree->right, tac);
  262. return NULL;
  263. }
  264. return NULL;
  265. }
  266. int tmp_regs[10] = {8, 9, 10, 11, 12, 13, 14, 15, 24, 25};
  267. int svd_regs[8] = {16, 17, 18, 19, 20, 21, 22, 23};
  268. int tmp_cntr = 0;
  269. VARLOC** vartab;
  270. int is_imm(TOKEN *t) {
  271. if (t->type==CONSTANT) return 1;
  272. else return 0;
  273. }
  274. int find_var_idx(TOKEN* var) {
  275. int i;
  276. for (i = 0; i < 8; i++) {
  277. if (vartab[i]->var == var) {
  278. return vartab[i]->loc_idx;
  279. }
  280. }
  281. return -1;
  282. }
  283. int store_var(TOKEN* name) {
  284. int i;
  285. for (i = 0; i < 8; i++) {
  286. if (vartab[i]->var == NULL) {
  287. vartab[i]->var = name;
  288. vartab[i]->loc_idx = svd_regs[i];
  289. return vartab[i]->loc_idx;
  290. } else if (name == vartab[i]->var) {
  291. vartab[i]->loc_idx = svd_regs[i];
  292. return svd_regs[i];
  293. }
  294. }
  295. printf("bugger\n");
  296. exit(1);
  297. }
  298. void init_reg() {
  299. int i;
  300. vartab = (VARLOC**) malloc(8 * sizeof(VARLOC*));
  301. for (i = 0; i < 8; i++) {
  302. vartab[i] = (VARLOC*) malloc(sizeof(VARLOC));
  303. vartab[i]->var = NULL;
  304. vartab[i]->loc_idx = -1;
  305. }
  306. }
  307. int alloc_register(TOKEN* val) {
  308. int idx;
  309. int imm = is_imm(val);
  310. if (imm) {
  311. if (val->value <= 32767 && val->value >= -32767) {
  312. printf("ori $%d, $0, %d\n", tmp_regs[tmp_cntr], val->value);
  313. idx = tmp_regs[tmp_cntr++];
  314. } else {
  315. printf("li $%d, %d\n", tmp_regs[tmp_cntr], val->value);
  316. idx = tmp_regs[tmp_cntr++];
  317. }
  318. } else {
  319. idx = find_var_idx(val);
  320. }
  321. if (tmp_cntr == 10) tmp_cntr = 0;
  322. return idx;
  323. }
  324. void compile_tac(TLIST* tacs) {
  325. printf("=====\n");
  326. init_reg();
  327. while(tacs != NULL) {
  328. TAC_T* t = tacs->elem;
  329. if (t->op == '=') {
  330. int src_idx = alloc_register(t->src);
  331. printf("or $%d, $0, $%d\n", store_var(t->dst), src_idx);
  332. }
  333. if (t->op == 'D') {
  334. printf("%s:\n", t->dst->lexeme);
  335. }
  336. if (t->op == '+') {
  337. int tgt_idx = alloc_register(t->tgt);
  338. int src_idx = alloc_register(t->src);
  339. printf("add $%d, $%d, $%d\n", store_var(t->dst), src_idx, tgt_idx);
  340. }
  341. if (t->op == '-') {
  342. int tgt_idx = alloc_register(t->tgt);
  343. int src_idx = alloc_register(t->src);
  344. printf("sub $%d, $%d, $%d\n", store_var(t->dst), src_idx, tgt_idx);
  345. }
  346. if (t->op == '*') {
  347. int tgt_idx = alloc_register(t->tgt);
  348. int src_idx = alloc_register(t->src);
  349. printf("mult $%d, $%d\n", src_idx, tgt_idx);
  350. printf("mflo $%d\n", store_var(t->dst));
  351. }
  352. if (t->op == '/') {
  353. int tgt_idx = alloc_register(t->tgt);
  354. int src_idx = alloc_register(t->src);
  355. printf("div $%d, $%d\n", src_idx, tgt_idx);
  356. printf("mflo $%d\n", store_var(t->dst));
  357. }
  358. if (t->op == '%') {
  359. int tgt_idx = alloc_register(t->tgt);
  360. int src_idx = alloc_register(t->src);
  361. printf("div $%d, $%d\n", src_idx, tgt_idx);
  362. printf("mfhi $%d\n", store_var(t->dst));
  363. }
  364. if (t->op == RETURN) {
  365. int src_idx = alloc_register(t->src);
  366. printf("or $v1, $0, $%d\n", src_idx);
  367. }
  368. tacs = tacs->next;
  369. }
  370. printf("ori $v0, 10\n");
  371. printf("syscall\n");
  372. }
  373. void interpret_tree(NODE *tree) {
  374. TACS* gen_tac = (TACS*) malloc(sizeof(TACS));
  375. build_tac(tree, gen_tac);
  376. print_tac(gen_tac->list);
  377. compile_tac(gen_tac->list);
  378. }
  379. extern int yydebug;
  380. #ifdef __APPLE__
  381. extern NODE* yyparse(void);
  382. #endif
  383. extern NODE* ans;
  384. extern void init_symbtable(void);
  385. int main(int argc, char** argv)
  386. {
  387. NODE* tree;
  388. if (argc>1 && strcmp(argv[1],"-d")==0) yydebug = 1;
  389. init_symbtable();
  390. printf("--C COMPILER\n");
  391. yyparse();
  392. tree = ans;
  393. printf("parse finished\n");
  394. print_tree(tree);
  395. interpret_tree(tree);
  396. return 0;
  397. }