mysh.c 12 KB

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  1. /*
  2. * File: mysh.c
  3. * Author: Arthur Brandao
  4. *
  5. * Created on 31 octobre 2018, 12:43
  6. */
  7. #define _POSIX_C_SOURCE 2
  8. #include <stdio.h>
  9. #include <stdlib.h>
  10. #include <unistd.h>
  11. #include <fcntl.h>
  12. #include <sys/stat.h>
  13. #include <sys/types.h>
  14. #include <wait.h>
  15. #include <signal.h>
  16. #include "error.h"
  17. #include "str.h"
  18. #include "parser.h"
  19. #include "command.h"
  20. #include "execute.h"
  21. #include "ipc.h"
  22. #include "mysh.h"
  23. /* --- Extern --- */
  24. extern Error error;
  25. extern boolean exitsh;
  26. extern pid_t active;
  27. int status_cmd = -1;
  28. int result_cmd = -1;
  29. /* --- Global --- */
  30. pid_list pidlist;
  31. boolean fond = false;
  32. int job = 1;
  33. /* --- Fonctions privées --- */
  34. void test_write() {
  35. char* a = "azerty\n";
  36. int tmp = write(1, a, strlen(a));
  37. printf("%d\n", tmp);
  38. }
  39. void test_tmp_file(){
  40. int a;
  41. FILE* f = tmpfile();
  42. printf("F : %d\n", f == NULL);
  43. int fd = fileno(f);
  44. printf("%d : %ld\n", fd, write(fd, "bonjour", 8));
  45. a = lseek(fd, 0L, SEEK_SET);
  46. sleep(2);
  47. char buf[10];
  48. memset(buf, 0 , 10);
  49. a = read(fd, buf, 10);
  50. printf("%d : %s\n", a, buf);
  51. close(fd);
  52. }
  53. void test(){
  54. CommandTab ct;
  55. char str[BUFFER_SIZE];
  56. int a;
  57. //Initialisation structures
  58. error_finit("mysh.log");
  59. ini_pid_list(&pidlist);
  60. //Recup ligne
  61. //printf("%s\n", fgets(str, 500, stdin));&
  62. memset(str, 0, 500);
  63. a = read(STDIN, str, 500);
  64. printf("%s\n", str);
  65. //Separe les commandes
  66. a = parse_line(&ct, str);
  67. if(a == SHELL_ERR){
  68. addserror("Erreur lors du parse de la ligne");
  69. error.exit_err();
  70. }
  71. //Parse les commandes
  72. a = parse_all_command(&ct);
  73. if(a == SHELL_FAIL){
  74. addserror("Erreur lors du parse des commandes");
  75. error.exit_err();
  76. }
  77. //Affiche resultat
  78. for (int i = 0; i < ct.length; i++) {
  79. Command* c = ct.cmd[i];
  80. printf("Commande %d (%s) : \n", i, c->name);
  81. for (int j = 0; j < c->argc; j++) {
  82. printf(" Argument %d : %s\n", j, c->argv[j]);
  83. }
  84. printf("Commande en fond : %d\n\n", ct.bck);
  85. //Si c'est une commande interne on l'execute
  86. if(is_internal_cmd(ct.cmd[i]->name)){
  87. show_current_dir(NULL, "\n");
  88. printf("Result : %d\n", launch_internal_command(ct.cmd[i]));
  89. show_current_dir(NULL, "\n");
  90. }
  91. }
  92. //Nettoyage structures
  93. clean_command(&ct);
  94. clean_pid(&pidlist);
  95. error.exit();
  96. }
  97. /* --- Fonctions utilitaires --- */
  98. void show_current_dir(const char* before, const char* after) {
  99. char buffer[BUFFER_SIZE];
  100. if (getcwd(buffer, sizeof (buffer)) == NULL) {
  101. addperror("Erreur getcwd()");
  102. } else {
  103. if(before == NULL && after == NULL){
  104. printf("%s", buffer);
  105. } else if(before == NULL){
  106. printf("%s%s", buffer, after);
  107. } else if(after == NULL){
  108. printf("%s%s", before, buffer);
  109. } else {
  110. printf("%s%s%s", before, buffer, after);
  111. }
  112. }
  113. fflush(stdout);
  114. }
  115. int get_line(char* buffer){
  116. memset(buffer, 0, BUFFER_SIZE);
  117. if(read(STDIN, buffer, BUFFER_SIZE) == ERR){
  118. addperror("Impossible de lire dans STDIN");
  119. return SHELL_ERR;
  120. }
  121. return SHELL_OK;
  122. }
  123. int get_tmp_file(){
  124. FILE* f = tmpfile();
  125. if(f == NULL){
  126. adderror("Impossible de créer un fichier temporaire");
  127. return SHELL_ERR;
  128. }
  129. return fileno(f);
  130. }
  131. /* --- Main --- */
  132. int main(int argc, char* argv[], char* envp[]) {
  133. //Declaration variables
  134. CommandTab ct;
  135. int result;
  136. char line[BUFFER_SIZE], before[BUFFER_SIZE];
  137. sigset_t sigs_new, sigs_old, sigs_block;
  138. //Initialisation structures
  139. error_init();
  140. ini_pid_list(&pidlist);
  141. //Lancement ipc
  142. if(!setup_ipc(envp)){
  143. error.print("Erreur pendant l'initialisation\n");
  144. clean_pid(&pidlist);
  145. error.exit_err();
  146. }
  147. //Preparation affichage
  148. sprintf(before, "\x1b[32m%s:\x1b[36m", getlogin());
  149. //Traitement des signeaux
  150. result = sigemptyset(&sigs_new);
  151. if(result == ERR){
  152. addperror("Impossible de récuperer un ensemble de signaux vide");
  153. error.print("Erreur pendant l'initialisation\n");
  154. clean_pid(&pidlist);
  155. error.exit_err();
  156. }
  157. //On bloque que sigchld
  158. result = sigaddset(&sigs_new, SIGCHLD);
  159. if(result == ERR){
  160. addperror("Impossible d'ajouter SIGCHLD à l'ensemble de signaux");
  161. error.print("Erreur pendant l'initialisation\n");
  162. clean_pid(&pidlist);
  163. error.exit_err();
  164. }
  165. result = sigprocmask(SIG_BLOCK, &sigs_new, &sigs_old);
  166. if(result == -ERR){
  167. addperror("Impossible de bloquer les signaux de l'ensemble");
  168. error.print("Erreur pendant l'initialisation\n");
  169. clean_pid(&pidlist);
  170. error.exit_err();
  171. }
  172. //Gestion interuption
  173. signal(SIGINT, handler);
  174. //Boucle infini de lecture
  175. while(!exitsh){
  176. //On regarde si un fils en fond est mort
  177. if(sigpending(&sigs_block) == ERR){
  178. addperror("Impossible de recuperer les signaux en attentes");
  179. } else if(sigismember(&sigs_block, SIGCHLD)){
  180. job--;
  181. }
  182. //Affichage repertoire
  183. show_current_dir(before, ">\x1b[0m ");
  184. //Lecture ligne
  185. if(get_line(line) == SHELL_ERR){
  186. //error.print("Impossible de lire les commandes\n");
  187. continue;
  188. }
  189. //Parse la ligne et commandes
  190. result = parse_line(&ct, line);
  191. if(result == SHELL_ERR){
  192. error.print("Impossible d'analyser la ligne\n");
  193. addserror("Erreur lors du parse de la ligne");
  194. continue;
  195. }
  196. //Si aucune commande on passe
  197. printf("Nb cmd : %d\n", ct.length);
  198. if(ct.length == 0){
  199. clean_command(&ct);
  200. continue;
  201. }
  202. //Parse les commandes
  203. result = parse_all_command(&ct);
  204. if(result == SHELL_FAIL){
  205. error.print("Impossible d'analyser la commande\n");
  206. addserror("Erreur lors du parse des commandes");
  207. continue;
  208. }
  209. //Execute
  210. result_cmd = run(ct, &status_cmd);
  211. printf("Result : %d\n", result_cmd);
  212. //Vide le resultat du parse de la ligne de commande
  213. clean_command(&ct);
  214. }
  215. //Nettoyage
  216. end_ipc();
  217. clean_pid(&pidlist);
  218. error.end();
  219. return EXIT_SUCCESS;
  220. }
  221. int run(CommandTab ct, int* status){
  222. pid_t pid;
  223. int result = 0;
  224. //Si en fond creation d'un fork pour executer les commandes
  225. printf("bck : %d\n", ct.bck);
  226. if(ct.bck){
  227. pid = fork();
  228. if(pid == ERR){
  229. addperror("Erreur lors du fork pour l'execution des commandes");
  230. error.print("Erreur systeme, impossible de continuer\n");
  231. return SHELL_ERR;
  232. }
  233. //Fils
  234. if(pid == 0){
  235. int stat = 0;
  236. ct.bck = 0;
  237. fond = true;
  238. result = run(ct, &stat);
  239. //Message de fin + retour
  240. if(result == SHELL_FAIL){
  241. printf("\n%s (jobs=[%d], pid=%d) terminée avec status=-1\n", ct.line, job, getpid());
  242. exit(EXIT_FAILURE);
  243. }
  244. printf("\n%s (jobs=[%d], pid=%d) terminée avec status=%d\n", ct.line, job, getpid(), stat);
  245. exit(EXIT_SUCCESS);
  246. }
  247. printf("[%d] %d\n", job, pid);
  248. //Ajout du fils dans la liste des pid
  249. add_pid(&pidlist, pid, job++);
  250. //Pour le pere c'est fini
  251. return SHELL_OK;
  252. }
  253. //Sinon execution de chaque commande
  254. Command* c;
  255. int tube[ct.length][2];
  256. int tubepos = 0;
  257. int infd = -1, outfd = -1, errfd = -1;
  258. boolean bpipe = false, skippipe = false, skip = false;
  259. //Parcours les commandes
  260. for(int i = 0; i < ct.length; i++){
  261. c = ct.cmd[i];
  262. //Si on skip
  263. if(skip){
  264. skip = false;
  265. continue;
  266. }
  267. //Si pipe avant
  268. if(skippipe){
  269. //Si fin chaine pipe
  270. if(c->next != SHELL_PIPE){
  271. skippipe = false;
  272. }
  273. //Passe la commande
  274. continue;
  275. }
  276. //Si pipe creation d'un fichier commun
  277. skippipe = c->next == SHELL_PIPE ;
  278. if(c->next == SHELL_PIPE && c->output == STDOUT){
  279. skippipe = false;
  280. bpipe = true;
  281. //Creation tube
  282. if(pipe(tube[tubepos]) == ERR){
  283. addperror("Impossible de créer un tube");
  284. return SHELL_FAIL;
  285. }
  286. //Redirection
  287. c->output = tube[tubepos][TUBE_ECRITURE];
  288. if(ct.cmd[i + 1]->input == STDIN){
  289. ct.cmd[i + 1]->input = tube[tubepos][TUBE_LECTURE];
  290. }
  291. }
  292. //Effectue les redirections IO
  293. if(c->input != STDIN){
  294. infd = redirect_fd2(STDIN, c->input);
  295. if(infd == ERR){
  296. return SHELL_FAIL;
  297. }
  298. }
  299. if(c->output != STDOUT){
  300. outfd = redirect_fd2(STDOUT, c->output);
  301. if(outfd == ERR){
  302. return SHELL_FAIL;
  303. }
  304. }
  305. if(c->error != STDERR){
  306. errfd = redirect_fd2(STDERR, c->error);
  307. if(errfd == ERR){
  308. return SHELL_FAIL;
  309. }
  310. }
  311. //Execute la commande
  312. if(is_internal_cmd(c->name)){
  313. result = launch_internal_command(c);
  314. } else if(is_executable_file(c->name)){
  315. result = exec_file(c->name, c->argv);
  316. } else {
  317. result = exec_shell(c->name, c->argv);
  318. }
  319. //Si on a une variable pour stocker le status de retoure
  320. if(status != NULL){
  321. *status = result;
  322. }
  323. //Reset IO
  324. if(c->input != STDIN){
  325. infd = redirect_fd(STDIN, infd);
  326. if(infd == ERR){
  327. return SHELL_FAIL;
  328. }
  329. }
  330. if(c->output != STDOUT){
  331. outfd = redirect_fd(STDOUT, outfd);
  332. if(outfd == ERR){
  333. return SHELL_FAIL;
  334. }
  335. }
  336. if(c->error != STDERR){
  337. errfd = redirect_fd(STDERR, errfd);
  338. if(errfd == ERR){
  339. return SHELL_FAIL;
  340. }
  341. }
  342. //Fermeture tube
  343. if(bpipe){
  344. bpipe = false;
  345. if(close(outfd) == ERR){
  346. addperror("Impossible de fermer tube ecriture");
  347. return SHELL_FAIL;
  348. }
  349. if(close(c->output) == ERR){
  350. addperror("Impossible de fermer tube ecriture");
  351. return SHELL_FAIL;
  352. }
  353. c->output = STDOUT;
  354. }
  355. //Agit en fonction de la jointure avec la prochaine commande
  356. if(c->next == SHELL_IF){
  357. if(result != EXIT_SUCCESS){
  358. skip = true;
  359. }
  360. } else if(c->next == SHELL_ELSE){
  361. if(result == EXIT_SUCCESS){
  362. skip = true;
  363. }
  364. }
  365. }
  366. if(result != EXIT_SUCCESS){
  367. return SHELL_FAIL;
  368. }
  369. return SHELL_OK;
  370. }
  371. void handler(int sig){
  372. char reponse = ' ';
  373. pid_node* pn;
  374. //Repositionne le gestionnaire (Ne marche plus apres 1 utilisation)
  375. signal(SIGINT, handler);
  376. //Si on est en fond on est non concerné
  377. if(fond){
  378. return;
  379. }
  380. //Si il y a un process actif on le coupe
  381. printf("Active : %d\n", active);
  382. if(active != -1){
  383. if(kill(active, SIGINT) == ERR){
  384. addperror("Impossible de tuer le processus en cours");
  385. }
  386. active = -1;
  387. return;
  388. }
  389. //Sinon demande comfirmation pour finir le programme
  390. while(reponse != 'o' && reponse != 'O' && reponse != 'n' && reponse != 'N'){
  391. //Recup la valeur
  392. printf("Voulez vous vraiment quitter ? [O/N] ");
  393. if((reponse = getchar()) == EOF){
  394. reponse = ' ';
  395. }
  396. //Vide l'entrée standard
  397. while(getchar() != '\n');
  398. }
  399. //Si oui
  400. if(reponse == 'n' || reponse == 'N'){
  401. return;
  402. }
  403. //Coupe tous les processus en fond
  404. pn = pidlist.first;
  405. while(pn != NULL){
  406. if(kill(pn->pid, SIGINT) == ERR){
  407. addperror("Impossible de tuer le processus en fond");
  408. }
  409. pn = pn->next;
  410. }
  411. //Termine l'execution
  412. end_ipc();
  413. clean_pid(&pidlist);
  414. error.exit();
  415. }