Standard setup for writing C inspired by Casey Muratori, Ryan Fleury, Mr. 4th Programmer, and others in the handmade community.
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  1. #include <unistd.h> // TODO(djledda): get outta here
  2. #include <math.h>
  3. #include <string.h>
  4. #define STB_SPRINTF_IMPLEMENTATION
  5. #include "core.h"
  6. #include "os.cpp"
  7. void *pushSize(Arena *arena, size_t bytes) {
  8. if (arena->capacity - arena->head >= bytes) {
  9. void *ptr = (char *)arena->memory + arena->head;
  10. arena->head += bytes;
  11. return ptr;
  12. }
  13. return 0;
  14. }
  15. Arena *arenaAlloc(size_t capacity) {
  16. Arena *result = (Arena *)os_alloc(sizeof(Arena) + capacity);
  17. result->memory = result + sizeof(Arena);
  18. result->capacity = capacity;
  19. result->head = 0;
  20. return result;
  21. }
  22. void arenaFree(Arena *arena) {
  23. os_free(arena, arena->capacity);
  24. }
  25. void arenaFreeFrom(Arena *arena, size_t position) {
  26. arena->head = position;
  27. }
  28. Arena *scratchArenas[2];
  29. void initialiseCore() {
  30. for (EachInArray(scratchArenas, i)) {
  31. scratchArenas[i] = arenaAlloc(Megabytes(64));
  32. }
  33. }
  34. Scratch scratchStart(Arena **conflicts, size_t conflictCount) {
  35. Scratch scratch = {0};
  36. for (size_t i = 0; i < ArrayCount(scratchArenas); i += 1) {
  37. bool conflicted = false;
  38. for (Arena **conflict = conflicts; conflict < conflicts + conflictCount; conflict += 1) {
  39. if (*conflict == scratchArenas[i]) {
  40. conflicted = true;
  41. break;
  42. }
  43. }
  44. if (conflicted == false) {
  45. scratch.arena = scratchArenas[i];
  46. scratch.start = scratch.arena->head;
  47. break;
  48. }
  49. }
  50. return scratch;
  51. }
  52. #define DeferLoop(begin_stmnt, end_stmnt) for(int __defer_i = ((begin_stmnt), 0); __defer_i < 1; (++__defer_i, (end_stmnt)))
  53. #define WithScratch(scratchName) Scratch scratchName; DeferLoop(scratchName = scratchStart(0, 0), scratchEnd(scratchName))
  54. void scratchEnd(Scratch scratch) {
  55. arenaFreeFrom(scratch.arena, scratch.start);
  56. }
  57. template <typename T>
  58. T *appendList(list<T> *list, T element) {
  59. if (list->head < list->length) {
  60. list->data[list->head] = element;
  61. list->head++;
  62. return &(list->data[list->head - 1]);
  63. } else {
  64. return 0;
  65. }
  66. }
  67. template <typename T>
  68. void zeroListFull(list<T> *list) {
  69. memset(list->data, 0, list->head * sizeof(T));
  70. }
  71. template <typename T>
  72. void zeroList(list<T> *list) {
  73. list->head = 0;
  74. memset(list->data, 0, list->head * sizeof(T));
  75. }
  76. inline string operator""_s(const char *cstrLiteral, unsigned long length) {
  77. return {
  78. (char *)cstrLiteral,
  79. length,
  80. };
  81. }
  82. const char *cstring(Arena *arena, list<char> buf) {
  83. char *arr = PushArray(arena, char, buf.length + 1);
  84. memmove(arr, buf.data, buf.length);
  85. arr[buf.length] = '\0';
  86. return arr;
  87. }
  88. const char *cstring(Arena *arena, string str) {
  89. char *arr = PushArray(arena, char, str.length + 1);
  90. memmove(arr, str.str, str.length);
  91. arr[str.length] = '\0';
  92. return arr;
  93. }
  94. bool strEql(string s1, string s2) {
  95. if (s1.length != s2.length) {
  96. return false;
  97. }
  98. for (size_t i = 0; i < s1.length; i++) {
  99. if (s1.str[i] != s2.str[i]) {
  100. return false;
  101. }
  102. }
  103. return true;
  104. }
  105. size_t calcStringLen(const char *str) {
  106. size_t size = 0;
  107. if (str == NULL) {
  108. return size;
  109. }
  110. while (str[size] != '\0') {
  111. size++;
  112. }
  113. return size;
  114. }
  115. string strFromCString(Arena *arena, const char *str) {
  116. string result = PushString(arena, calcStringLen(str));
  117. memcpy(result.str, str, result.length);
  118. return result;
  119. }
  120. string strReverse(Arena *arena, string str) {
  121. string reversed = PushString(arena, str.length);
  122. for (
  123. size_t mainIndex = str.length - 1, reversedIndex = 0;
  124. mainIndex < str.length;
  125. mainIndex--, reversedIndex++
  126. ) {
  127. reversed.str[reversedIndex] = str.str[mainIndex];
  128. }
  129. return reversed;
  130. }
  131. string strPrintfv(Arena *arena, const char *fmt, va_list args) {
  132. string result = {0};
  133. va_list argsCopy;
  134. va_copy(argsCopy, args);
  135. uint64 bufSize = stb_vsnprintf(0, 0, fmt, args) + 1;
  136. result.str = PushArray(arena, char, bufSize);
  137. result.length = bufSize - 1;
  138. stb_vsnprintf((char *)result.str, (int)bufSize, fmt, argsCopy);
  139. return result;
  140. }
  141. string strPrintf(Arena *arena, const char *fmt, ...) {
  142. string result = {0};
  143. va_list args;
  144. va_start(args, fmt);
  145. result = strPrintfv(arena, fmt, args);
  146. va_end(args);
  147. return result;
  148. }
  149. template <typename T>
  150. list<T> listSlice(list<T> l, size_t start, size_t stop) {
  151. if (stop == 0) {
  152. stop = l.head;
  153. }
  154. // TODO(djledda): maybe assert instead
  155. if (stop > l.head || start > stop) {
  156. return {0};
  157. }
  158. return {
  159. l.data + start,
  160. stop - start,
  161. stop - start,
  162. };
  163. }
  164. string strSlice(string str, size_t start, size_t stop) {
  165. if (stop == 0) {
  166. stop = str.length;
  167. }
  168. // TODO(djledda): maybe assert instead
  169. if (stop > str.length || start > stop) {
  170. return {0};
  171. }
  172. return {
  173. str.str + start,
  174. stop - start,
  175. };
  176. }
  177. string strSlice(char *data, size_t start, size_t stop) {
  178. return {
  179. data + start,
  180. stop - start,
  181. };
  182. }
  183. bool stringContains(string str, char c) {
  184. for (size_t i = 0; i < str.length; i++) {
  185. if (str.str[i] == c) {
  186. return true;
  187. }
  188. }
  189. return false;
  190. }
  191. string NUMERIC_CHARS = "0123456789"_s;
  192. inline bool isNumeric(char c) {
  193. return stringContains(NUMERIC_CHARS, c);
  194. }
  195. list<string> strSplit(Arena *arena, string splitStr, string inputStr) {
  196. list<string> result = {0};
  197. if (inputStr.length > 0) {
  198. size_t splitCount = 0;
  199. size_t c = 0;
  200. size_t start = 0;
  201. void *beginning = (char *)arena->memory + arena->head;
  202. while (c < inputStr.length - splitStr.length) {
  203. if (strEql(strSlice(inputStr, c, c + splitStr.length), splitStr)) {
  204. string *splitString = PushStruct(arena, string);
  205. splitString->str = inputStr.str + start;
  206. splitString->length = c - start;
  207. splitCount++;
  208. start = c + 1;
  209. }
  210. c++;
  211. }
  212. string *splitString = PushStruct(arena, string);
  213. splitString->str = inputStr.str + start;
  214. splitString->length = inputStr.length - start;
  215. splitCount++;
  216. result.data = (string *)beginning,
  217. result.head = splitCount,
  218. result.length = splitCount;
  219. }
  220. return result;
  221. }
  222. int8 parsePositiveInt(string str, size_t *lengthPointer) {
  223. size_t numEnd = 0;
  224. char currChar = str.str[numEnd];
  225. while (numEnd < str.length && isNumeric(currChar)) {
  226. currChar = str.str[++numEnd];
  227. *lengthPointer += 1;
  228. }
  229. *lengthPointer -= 1;
  230. if (numEnd > 0) {
  231. uint8 result = 0;
  232. for (size_t i = 0; i < numEnd; i++) {
  233. result *= 10;
  234. result += str.str[i] - '0';
  235. }
  236. return result;
  237. } else {
  238. return -1;
  239. }
  240. }
  241. real32 parsePositiveReal32(string str, size_t *lengthPointer) {
  242. real32 result = NAN;
  243. string wholePartStr = string{0};
  244. string fractionalPartStr = string{0};
  245. bool split = false;
  246. size_t c = 0;
  247. while (c < str.length) {
  248. if (str.str[c] == '.') {
  249. wholePartStr.str = str.str;
  250. wholePartStr.length = c;
  251. fractionalPartStr.str = str.str + c + 1;
  252. fractionalPartStr.length = str.length - c - 1;
  253. split = true;
  254. break;
  255. }
  256. c++;
  257. }
  258. if (split) {
  259. int wholePart = parsePositiveInt(wholePartStr, lengthPointer);
  260. *lengthPointer += 1;
  261. int fractionalPart = parsePositiveInt(fractionalPartStr, lengthPointer);
  262. if (wholePart >= 0 && fractionalPart >= 0) {
  263. real32 fractionalPartMultiplier = 1.0f / powf(10.0f, (real32)fractionalPartStr.length);
  264. result = (real32)wholePart + (real32)fractionalPart * (real32)fractionalPartMultiplier;
  265. }
  266. } else if (c > 0) {
  267. result = (real32)parsePositiveInt(str, lengthPointer);
  268. }
  269. return result;
  270. }
  271. string readEntireFile(Arena *arena, string filename) {
  272. #if OS_WINDOWS
  273. string result = {0};
  274. HANDLE fileHandle = CreateFileA(cstring(arena, filename), GENERIC_READ, FILE_SHARE_READ, NULL, OPEN_EXISTING, NULL, NULL);
  275. if (fileHandle != INVALID_HANDLE_VALUE) {
  276. LARGE_INTEGER fileSize;
  277. if (GetFileSizeEx(fileHandle, &fileSize)) {
  278. string readfile = PushString(arena, (size_t)fileSize.QuadPart);
  279. if (readfile.str) {
  280. DWORD bytesRead;
  281. if (ReadFile(fileHandle, readfile.str, (DWORD)fileSize.QuadPart, &bytesRead, NULL) && (fileSize.QuadPart == bytesRead)) {
  282. result = readfile;
  283. }
  284. }
  285. }
  286. CloseHandle(fileHandle);
  287. }
  288. return result;
  289. #elif OS_LINUX
  290. FILE *input = fopen((char *)filename.str, "r");
  291. struct stat st;
  292. stat((char *)filename.str, &st);
  293. size_t fsize = st.st_size;
  294. string readBuffer = PushString(arena, fsize);
  295. fread(readBuffer.str, sizeof(byte), readBuffer.length, input);
  296. fclose(input);
  297. return readBuffer;
  298. #endif
  299. }
  300. bool writeEntireFile(Arena *arena, string filename, const byte *contents, size_t contentsLength) {
  301. bool result = false;
  302. #if OS_WINDOWS
  303. HANDLE fileHandle = CreateFileA(cstring(arena, filename), GENERIC_WRITE, FILE_SHARE_READ, NULL, CREATE_ALWAYS, NULL, NULL);
  304. if (fileHandle != INVALID_HANDLE_VALUE) {
  305. DWORD bytesWritten;
  306. if (WriteFile(fileHandle, contents, (DWORD)contentsLength, &bytesWritten, NULL)) {
  307. // file written successfully
  308. result = bytesWritten == contentsLength;
  309. }
  310. CloseHandle(fileHandle);
  311. }
  312. #elif OS_LINUX
  313. Assert(false);
  314. #endif
  315. return result;
  316. }
  317. bool fileAppend(Arena *arena, string filename, const byte *contents, size_t contentsLength) {
  318. bool result = false;
  319. #if OS_WINDOWS
  320. HANDLE fileHandle = CreateFileA(cstring(arena, filename), FILE_APPEND_DATA | FILE_GENERIC_READ, FILE_SHARE_READ, NULL, OPEN_ALWAYS, FILE_ATTRIBUTE_NORMAL, NULL);
  321. if (fileHandle != INVALID_HANDLE_VALUE) {
  322. DWORD bytesWritten;
  323. DWORD position = SetFilePointer(fileHandle, 0, NULL, FILE_END);
  324. if (WriteFile(fileHandle, contents, (DWORD)contentsLength, &bytesWritten, NULL)) {
  325. // file written successfully
  326. result = bytesWritten == contentsLength;
  327. }
  328. CloseHandle(fileHandle);
  329. }
  330. #elif OS_LINUX
  331. Assert(false);
  332. #endif
  333. return result;
  334. }
  335. list<string> getArgs(Arena *arena, int argc, char **argv) {
  336. list<string> args = PushList(arena, string, (size_t)argc);
  337. for (int i = 1; i < argc; i++) {
  338. appendList(&args, strFromCString(arena, argv[i]));
  339. }
  340. return args;
  341. }
  342. UnixTimestamp getSystemUnixTime() {
  343. time_t now;
  344. time(&now);
  345. return (UnixTimestamp)now;
  346. }
  347. Timestamp timestampFromUnixTime(UnixTimestamp *unixTimestamp) {
  348. tm *timestamp = gmtime((time_t *)&time);
  349. return *timestamp;
  350. }
  351. string formatTimeHms(Arena *arena, UnixTimestamp time) {
  352. local_persist const string format = "HH-MM-SS"_s;
  353. string buf = PushString(arena, format.length);
  354. tm *timestamp = gmtime((time_t *)&time);
  355. strftime(buf.str, buf.length + 1, "%T", timestamp);
  356. return buf;
  357. }
  358. string formatTimeHms(Arena *arena, Timestamp *time) {
  359. local_persist const string format = "HH-MM-SS"_s;
  360. string buf = PushString(arena, format.length);
  361. strftime(buf.str, buf.length + 1, "%T", (tm *)time);
  362. return buf;
  363. }
  364. string formatTimeYmd(Arena *arena, UnixTimestamp time) {
  365. local_persist const string format = "YYYY-mm-dd"_s;
  366. string buf = PushString(arena, format.length);
  367. tm *timestamp = gmtime((time_t *)&time);
  368. strftime(buf.str, buf.length + 1, "%Y-%m-%d", timestamp);
  369. return buf;
  370. }
  371. string formatTimeYmd(Arena *arena, Timestamp *time) {
  372. local_persist const string format = "YYYY-mm-dd"_s;
  373. string buf = PushString(arena, format.length);
  374. strftime(buf.str, buf.length + 1, "%Y-%m-%d", (tm *)time);
  375. return buf;
  376. }
  377. function void __core_log(LogTarget target, const char *fmt, va_list argList) {
  378. Scratch scratch = scratchStart(0, 0);
  379. string result = strPrintfv(scratch.arena, fmt, argList);
  380. #if OS_WINDOWS
  381. DWORD done;
  382. HANDLE stdHandle;
  383. switch (target) {
  384. case LogTarget_stdin:
  385. stdHandle = GetStdHandle(STD_INPUT_HANDLE);
  386. break;
  387. case LogTarget_stdout:
  388. stdHandle = GetStdHandle(STD_ERROR_HANDLE);
  389. break;
  390. case LogTarget_stderr:
  391. stdHandle = GetStdHandle(STD_OUTPUT_HANDLE);
  392. break;
  393. default:
  394. stdHandle = GetStdHandle(STD_OUTPUT_HANDLE);
  395. break;
  396. }
  397. WriteFile(stdHandle, result.str, (DWORD)result.length, &done, 0);
  398. #elif OS_LINUX
  399. // TODO(djledda): finish implementation without cstdlib
  400. switch (target) {
  401. case LogTarget_stdin:
  402. write(0, (const void *)result.str, result.length);
  403. break;
  404. case LogTarget_stderr:
  405. fflush(stderr);
  406. write(2, (const void *)result.str, result.length);
  407. break;
  408. case LogTarget_stdout:
  409. default:
  410. fflush(stdout);
  411. write(1, (const void *)result.str, result.length);
  412. break;
  413. }
  414. #endif
  415. scratchEnd(scratch);
  416. }
  417. void logErr(const char *fmt, ...) {
  418. va_list argList;
  419. va_start(argList, fmt);
  420. __core_log(LogTarget_stdout, fmt, argList);
  421. va_end(argList);
  422. }
  423. function void logStdout(const char *fmt, ...) {
  424. va_list argList;
  425. va_start(argList, fmt);
  426. __core_log(LogTarget_stdout, fmt, argList);
  427. va_end(argList);
  428. }
  429. void log(const char *fmt, ...) {
  430. va_list argList;
  431. va_start(argList, fmt);
  432. __core_log(LogTarget_stdout, fmt, argList);
  433. va_end(argList);
  434. }
  435. void log(list<int> l, LogTarget target) {
  436. void (*logFn)(const char *fmt, ...) = target == LogTarget_stdout ? &logStdout : &logErr;
  437. logFn("{ ");
  438. for (size_t i = 0; i < l.length; i++) {
  439. if (i != 0) {
  440. logFn(", ");
  441. }
  442. logFn("%i", l.data[i]);
  443. }
  444. logFn(" } length: %zu, head: %zu\n", l.length, l.head);
  445. }
  446. void log(list<string> l, LogTarget target) {
  447. void (*logFn)(const char *fmt, ...) = target == LogTarget_stdout ? &logStdout : &logErr;
  448. logFn("{ ");
  449. for (size_t i = 0; i < l.length; i++) {
  450. if (i != 0) {
  451. logFn(", ");
  452. }
  453. logFn("\"%S\"", l.data[i]);
  454. }
  455. logFn(" } length: %zu, head: %zu\n", l.length, l.head);
  456. }
  457. int intCompare(const void *a, const void *b) {
  458. int *x = (int *)a;
  459. int *y = (int *)b;
  460. return (*x > *y) - (*x < *y);
  461. }