freeze.c 78 KB

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  1. /*
  2. * Copyright (c) 1983-2023 Trevor Wishart and Composers Desktop Project Ltd
  3. * http://www.trevorwishart.co.uk
  4. * http://www.composersdesktop.com
  5. *
  6. This file is part of the CDP System.
  7. The CDP System is free software; you can redistribute it
  8. and/or modify it under the terms of the GNU Lesser General Public
  9. License as published by the Free Software Foundation; either
  10. version 2.1 of the License, or (at your option) any later version.
  11. The CDP System is distributed in the hope that it will be useful,
  12. but WITHOUT ANY WARRANTY; without even the implied warranty of
  13. MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the
  14. GNU Lesser General Public License for more details.
  15. You should have received a copy of the GNU Lesser General Public
  16. License along with the CDP System; if not, write to the Free Software
  17. Foundation, Inc., 59 Temple Place, Suite 330, Boston, MA
  18. 02111-1307 USA
  19. *
  20. */
  21. #include <stdio.h>
  22. #include <stdlib.h>
  23. #include <structures.h>
  24. #include <tkglobals.h>
  25. #include <pnames.h>
  26. #include <filetype.h>
  27. #include <processno.h>
  28. #include <modeno.h>
  29. #include <logic.h>
  30. #include <globcon.h>
  31. #include <cdpmain.h>
  32. #include <math.h>
  33. #include <mixxcon.h>
  34. #include <osbind.h>
  35. #include <standalone.h>
  36. #include <ctype.h>
  37. #include <sfsys.h>
  38. #include <string.h>
  39. #include <srates.h>
  40. #include <extdcon.h>
  41. #include <flags.h>
  42. //#if defined unix || defined __GNUC__
  43. #define round(x) lround((x))
  44. //#endif
  45. #ifndef HUGE
  46. #define HUGE 3.40282347e+38F
  47. #endif
  48. char errstr[2400];
  49. int anal_infiles = 1;
  50. int sloom = 0;
  51. int sloombatch = 0;
  52. const char* cdp_version = "7.1.0";
  53. //CDP LIB REPLACEMENTS
  54. static int setup_freeze_application(dataptr dz);
  55. static int parse_sloom_data(int argc,char *argv[],char ***cmdline,int *cmdlinecnt,dataptr dz);
  56. static int parse_infile_and_check_type(char **cmdline,dataptr dz);
  57. static int setup_freeze_param_ranges_and_defaults(dataptr dz);
  58. static int handle_the_outfile(int *cmdlinecnt,char ***cmdline,dataptr dz);
  59. static int setup_and_init_input_param_activity(dataptr dz,int tipc);
  60. static int setup_input_param_defaultval_stores(int tipc,aplptr ap);
  61. static int establish_application(dataptr dz);
  62. static int initialise_vflags(dataptr dz);
  63. static int setup_parameter_storage_and_constants(int storage_cnt,dataptr dz);
  64. static int initialise_is_int_and_no_brk_constants(int storage_cnt,dataptr dz);
  65. static int mark_parameter_types(dataptr dz,aplptr ap);
  66. static int assign_file_data_storage(int infilecnt,dataptr dz);
  67. static int get_tk_cmdline_word(int *cmdlinecnt,char ***cmdline,char *q);
  68. static int get_the_process_no(char *prog_identifier_from_cmdline,dataptr dz);
  69. static int setup_and_init_input_brktable_constants(dataptr dz,int brkcnt);
  70. static int read_the_input_snd(dataptr dz);
  71. static int get_next_writestart(int write_start,dataptr dz);
  72. static int iterate(int cnt,int pass,double *gain,double *pshift,
  73. int write_end,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz);
  74. static int iter(int cnt,int passno, double *gain,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz);
  75. static int iter_stereo(int cnt,int passno, double *gain,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz);
  76. static int iter_shift_interp(int cnt,int passno, double *gain,double *pshift,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz);
  77. static int iter_shift_interp_stereo(int cnt,int passno, double *gain,double *pshift,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz);
  78. static int fixa_iter(int cnt,int passno,double *gain,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz);
  79. static int fixa_iter_stereo(int cnt,int passno,double *gain,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz);
  80. static int fixa_iter_shift_interp(int cnt,int passno,double *gain,double *pshift,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz);
  81. static int fixa_iter_shift_interp_stereo(int cnt,int passno,double *gain,double *pshift,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz);
  82. static double get_gain(dataptr dz);
  83. static double get_pshift(dataptr dz);
  84. static void setup_iter_process_type(int is_unity_gain,dataptr dz);
  85. static void set_default_delays(dataptr dz);
  86. static int get_minvalue_of_delay(double *mindelay,dataptr dz);
  87. static int get_maxvalue_of_pscat(double *maxpscat,dataptr dz);
  88. static int get_maxvalue_of_rand(double *maxrand,dataptr dz);
  89. static int friterate_preprocess(dataptr dz);
  90. static int create_friterbufs(double maxpscat,dataptr dz);
  91. static double get_pshift(dataptr dz);
  92. static double get_gain(dataptr dz);
  93. static int fixa_iter_shift_interp_stereo(int cnt,int passno,double *gain,double *pshift,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz);
  94. static int fixa_iter_shift_interp(int cnt,int passno,double *gain,double *pshift,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz);
  95. static int fixa_iter_stereo(int cnt,int passno,double *gain,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz);
  96. static int fixa_iter(int cnt,int passno,double *gain,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz);
  97. static int iter_shift_interp_stereo(int cnt,int passno, double *gain,double *pshift,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz);
  98. static int iter_shift_interp(int cnt,int passno, double *gain,double *pshift,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz);
  99. static int iter_stereo(int cnt,int passno, double *gain,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz);
  100. static int iter(int cnt,int passno, double *gain,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz);
  101. static int iterate
  102. (int cnt,int pass,double *gain,double *pshift,int write_end,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz);
  103. static int get_next_writestart(int write_start,dataptr dz);
  104. static int read_the_input_snd(dataptr dz);
  105. static int do_friteration(dataptr dz);
  106. /**************************************** MAIN *********************************************/
  107. int main(int argc,char *argv[])
  108. {
  109. int exit_status;
  110. dataptr dz = NULL;
  111. char **cmdline;
  112. int cmdlinecnt;
  113. int n;
  114. //aplptr ap;
  115. int is_launched = FALSE;
  116. if(argc==2 && (strcmp(argv[1],"--version") == 0)) {
  117. fprintf(stdout,"%s\n",cdp_version);
  118. fflush(stdout);
  119. return 0;
  120. }
  121. /* CHECK FOR SOUNDLOOM */
  122. if((sloom = sound_loom_in_use(&argc,&argv)) > 1) {
  123. sloom = 0;
  124. sloombatch = 1;
  125. }
  126. if(sflinit("cdp")){
  127. sfperror("cdp: initialisation\n");
  128. return(FAILED);
  129. }
  130. /* SET UP THE PRINCIPLE DATASTRUCTURE */
  131. if((exit_status = establish_datastructure(&dz))<0) { // CDP LIB
  132. print_messages_and_close_sndfiles(exit_status,is_launched,dz);
  133. return(FAILED);
  134. }
  135. if(!sloom) {
  136. if(argc == 1) {
  137. usage1();
  138. return(FAILED);
  139. } else if(argc == 2) {
  140. usage2(argv[1]);
  141. return(FAILED);
  142. }
  143. }
  144. if(!sloom) {
  145. if((exit_status = make_initial_cmdline_check(&argc,&argv))<0) { // CDP LIB
  146. print_messages_and_close_sndfiles(exit_status,is_launched,dz);
  147. return(FAILED);
  148. }
  149. cmdline = argv;
  150. cmdlinecnt = argc;
  151. if((get_the_process_no(argv[0],dz))<0)
  152. return(FAILED);
  153. cmdline++;
  154. cmdlinecnt--;
  155. // setup_particular_application =
  156. if((exit_status = setup_freeze_application(dz))<0) {
  157. print_messages_and_close_sndfiles(exit_status,is_launched,dz);
  158. return(FAILED);
  159. }
  160. if((exit_status = count_and_allocate_for_infiles(cmdlinecnt,cmdline,dz))<0) { // CDP LIB
  161. print_messages_and_close_sndfiles(exit_status,is_launched,dz);
  162. return(FAILED);
  163. }
  164. } else {
  165. //parse_TK_data() =
  166. if((exit_status = parse_sloom_data(argc,argv,&cmdline,&cmdlinecnt,dz))<0) {
  167. exit_status = print_messages_and_close_sndfiles(exit_status,is_launched,dz);
  168. return(exit_status);
  169. }
  170. }
  171. //ap = dz->application;
  172. // parse_infile_and_hone_type() =
  173. if((exit_status = parse_infile_and_check_type(cmdline,dz))<0) {
  174. exit_status = print_messages_and_close_sndfiles(exit_status,is_launched,dz);
  175. return(FAILED);
  176. }
  177. // setup_param_ranges_and_defaults() =
  178. if((exit_status = setup_freeze_param_ranges_and_defaults(dz))<0) {
  179. exit_status = print_messages_and_close_sndfiles(exit_status,is_launched,dz);
  180. return(FAILED);
  181. }
  182. // open_first_infile CDP LIB
  183. if((exit_status = open_first_infile(cmdline[0],dz))<0) {
  184. print_messages_and_close_sndfiles(exit_status,is_launched,dz);
  185. return(FAILED);
  186. }
  187. cmdlinecnt--;
  188. cmdline++;
  189. // handle_extra_infiles() : redundant
  190. // handle_outfile() =
  191. if((exit_status = handle_the_outfile(&cmdlinecnt,&cmdline,dz))<0) {
  192. print_messages_and_close_sndfiles(exit_status,is_launched,dz);
  193. return(FAILED);
  194. }
  195. // handle_formants() redundant
  196. // handle_formant_quiksearch() redundant
  197. // handle_special_data() redundant
  198. if((exit_status = read_parameters_and_flags(&cmdline,&cmdlinecnt,dz))<0) { // CDP LIB
  199. print_messages_and_close_sndfiles(exit_status,is_launched,dz);
  200. return(FAILED);
  201. }
  202. // check_param_validity_and_consistency....
  203. is_launched = TRUE;
  204. dz->bufcnt = 2;
  205. if((dz->sampbuf = (float **)malloc(sizeof(float *) * (dz->bufcnt+1)))==NULL) {
  206. sprintf(errstr,"INSUFFICIENT MEMORY establishing sample buffers.\n");
  207. return(MEMORY_ERROR);
  208. }
  209. if((dz->sbufptr = (float **)malloc(sizeof(float *) * dz->bufcnt))==NULL) {
  210. sprintf(errstr,"INSUFFICIENT MEMORY establishing sample buffer pointers.\n");
  211. return(MEMORY_ERROR);
  212. }
  213. for(n = 0;n <dz->bufcnt; n++)
  214. dz->sampbuf[n] = dz->sbufptr[n] = (float *)0;
  215. dz->sampbuf[n] = (float *)0;
  216. //create bufs later
  217. //param_preprocess() redundant
  218. if((exit_status = friterate_preprocess(dz))<0) {
  219. print_messages_and_close_sndfiles(exit_status,is_launched,dz);
  220. return(FAILED);
  221. }
  222. if((exit_status = do_friteration(dz))<0) {
  223. print_messages_and_close_sndfiles(exit_status,is_launched,dz);
  224. return(FAILED);
  225. }
  226. if((exit_status = complete_output(dz))<0) { // CDP LIB
  227. print_messages_and_close_sndfiles(exit_status,is_launched,dz);
  228. return(FAILED);
  229. }
  230. exit_status = print_messages_and_close_sndfiles(FINISHED,is_launched,dz); // CDP LIB
  231. free(dz);
  232. return(SUCCEEDED);
  233. }
  234. /**********************************************
  235. REPLACED CDP LIB FUNCTIONS
  236. **********************************************/
  237. /****************************** SET_PARAM_DATA *********************************/
  238. int set_param_data(aplptr ap, int special_data,int maxparamcnt,int paramcnt,char *paramlist)
  239. {
  240. ap->special_data = (char)special_data;
  241. ap->param_cnt = (char)paramcnt;
  242. ap->max_param_cnt = (char)maxparamcnt;
  243. if(ap->max_param_cnt>0) {
  244. if((ap->param_list = (char *)malloc((size_t)(ap->max_param_cnt+1)))==NULL) {
  245. sprintf(errstr,"INSUFFICIENT MEMORY: for param_list\n");
  246. return(MEMORY_ERROR);
  247. }
  248. strcpy(ap->param_list,paramlist);
  249. }
  250. return(FINISHED);
  251. }
  252. /****************************** SET_VFLGS *********************************/
  253. int set_vflgs
  254. (aplptr ap,char *optflags,int optcnt,char *optlist,char *varflags,int vflagcnt, int vparamcnt,char *varlist)
  255. {
  256. ap->option_cnt = (char) optcnt; /*RWD added cast */
  257. if(optcnt) {
  258. if((ap->option_list = (char *)malloc((size_t)(optcnt+1)))==NULL) {
  259. sprintf(errstr,"INSUFFICIENT MEMORY: for option_list\n");
  260. return(MEMORY_ERROR);
  261. }
  262. strcpy(ap->option_list,optlist);
  263. if((ap->option_flags = (char *)malloc((size_t)(optcnt+1)))==NULL) {
  264. sprintf(errstr,"INSUFFICIENT MEMORY: for option_flags\n");
  265. return(MEMORY_ERROR);
  266. }
  267. strcpy(ap->option_flags,optflags);
  268. }
  269. ap->vflag_cnt = (char) vflagcnt;
  270. ap->variant_param_cnt = (char) vparamcnt;
  271. if(vflagcnt) {
  272. if((ap->variant_list = (char *)malloc((size_t)(vflagcnt+1)))==NULL) {
  273. sprintf(errstr,"INSUFFICIENT MEMORY: for variant_list\n");
  274. return(MEMORY_ERROR);
  275. }
  276. strcpy(ap->variant_list,varlist);
  277. if((ap->variant_flags = (char *)malloc((size_t)(vflagcnt+1)))==NULL) {
  278. sprintf(errstr,"INSUFFICIENT MEMORY: for variant_flags\n");
  279. return(MEMORY_ERROR);
  280. }
  281. strcpy(ap->variant_flags,varflags);
  282. }
  283. return(FINISHED);
  284. }
  285. /***************************** APPLICATION_INIT **************************/
  286. int application_init(dataptr dz)
  287. {
  288. int exit_status;
  289. int storage_cnt;
  290. int tipc, brkcnt;
  291. aplptr ap = dz->application;
  292. if(ap->vflag_cnt>0)
  293. initialise_vflags(dz);
  294. tipc = ap->max_param_cnt + ap->option_cnt + ap->variant_param_cnt;
  295. ap->total_input_param_cnt = (char)tipc;
  296. if(tipc>0) {
  297. if((exit_status = setup_input_param_range_stores(tipc,ap))<0)
  298. return(exit_status);
  299. if((exit_status = setup_input_param_defaultval_stores(tipc,ap))<0)
  300. return(exit_status);
  301. if((exit_status = setup_and_init_input_param_activity(dz,tipc))<0)
  302. return(exit_status);
  303. }
  304. brkcnt = tipc;
  305. //THERE ARE NO INPUTFILE brktables USED IN THIS PROCESS
  306. if(brkcnt>0) {
  307. if((exit_status = setup_and_init_input_brktable_constants(dz,brkcnt))<0)
  308. return(exit_status);
  309. }
  310. if((storage_cnt = tipc + ap->internal_param_cnt)>0) {
  311. if((exit_status = setup_parameter_storage_and_constants(storage_cnt,dz))<0)
  312. return(exit_status);
  313. if((exit_status = initialise_is_int_and_no_brk_constants(storage_cnt,dz))<0)
  314. return(exit_status);
  315. }
  316. if((exit_status = mark_parameter_types(dz,ap))<0)
  317. return(exit_status);
  318. // establish_infile_constants() replaced by
  319. dz->infilecnt = 1;
  320. //establish_bufptrs_and_extra_buffers():
  321. return(FINISHED);
  322. }
  323. /********************** SETUP_PARAMETER_STORAGE_AND_CONSTANTS ********************/
  324. /* RWD mallo changed to calloc; helps debug verison run as release! */
  325. int setup_parameter_storage_and_constants(int storage_cnt,dataptr dz)
  326. {
  327. if((dz->param = (double *)calloc(storage_cnt, sizeof(double)))==NULL) {
  328. sprintf(errstr,"setup_parameter_storage_and_constants(): 1\n");
  329. return(MEMORY_ERROR);
  330. }
  331. if((dz->iparam = (int *)calloc(storage_cnt, sizeof(int) ))==NULL) {
  332. sprintf(errstr,"setup_parameter_storage_and_constants(): 2\n");
  333. return(MEMORY_ERROR);
  334. }
  335. if((dz->is_int = (char *)calloc(storage_cnt, sizeof(char)))==NULL) {
  336. sprintf(errstr,"setup_parameter_storage_and_constants(): 3\n");
  337. return(MEMORY_ERROR);
  338. }
  339. if((dz->no_brk = (char *)calloc(storage_cnt, sizeof(char)))==NULL) {
  340. sprintf(errstr,"setup_parameter_storage_and_constants(): 5\n");
  341. return(MEMORY_ERROR);
  342. }
  343. return(FINISHED);
  344. }
  345. /************** INITIALISE_IS_INT_AND_NO_BRK_CONSTANTS *****************/
  346. int initialise_is_int_and_no_brk_constants(int storage_cnt,dataptr dz)
  347. {
  348. int n;
  349. for(n=0;n<storage_cnt;n++) {
  350. dz->is_int[n] = (char)0;
  351. dz->no_brk[n] = (char)0;
  352. }
  353. return(FINISHED);
  354. }
  355. /***************************** MARK_PARAMETER_TYPES **************************/
  356. int mark_parameter_types(dataptr dz,aplptr ap)
  357. {
  358. int n, m; /* PARAMS */
  359. for(n=0;n<ap->max_param_cnt;n++) {
  360. switch(ap->param_list[n]) {
  361. case('0'): break; /* dz->is_active[n] = 0 is default */
  362. case('i'): dz->is_active[n] = (char)1; dz->is_int[n] = (char)1;dz->no_brk[n] = (char)1; break;
  363. case('I'): dz->is_active[n] = (char)1; dz->is_int[n] = (char)1; break;
  364. case('d'): dz->is_active[n] = (char)1; dz->no_brk[n] = (char)1; break;
  365. case('D'): dz->is_active[n] = (char)1; /* normal case: double val or brkpnt file */ break;
  366. default:
  367. sprintf(errstr,"Programming error: invalid parameter type in mark_parameter_types()\n");
  368. return(PROGRAM_ERROR);
  369. }
  370. } /* OPTIONS */
  371. for(n=0,m=ap->max_param_cnt;n<ap->option_cnt;n++,m++) {
  372. switch(ap->option_list[n]) {
  373. case('i'): dz->is_active[m] = (char)1; dz->is_int[m] = (char)1; dz->no_brk[m] = (char)1; break;
  374. case('I'): dz->is_active[m] = (char)1; dz->is_int[m] = (char)1; break;
  375. case('d'): dz->is_active[m] = (char)1; dz->no_brk[m] = (char)1; break;
  376. case('D'): dz->is_active[m] = (char)1; /* normal case: double val or brkpnt file */ break;
  377. default:
  378. sprintf(errstr,"Programming error: invalid option type in mark_parameter_types()\n");
  379. return(PROGRAM_ERROR);
  380. }
  381. } /* VARIANTS */
  382. for(n=0,m=ap->max_param_cnt + ap->option_cnt;n < ap->variant_param_cnt; n++, m++) {
  383. switch(ap->variant_list[n]) {
  384. case('0'): break;
  385. case('i'): dz->is_active[m] = (char)1; dz->is_int[m] = (char)1; dz->no_brk[m] = (char)1; break;
  386. case('I'): dz->is_active[m] = (char)1; dz->is_int[m] = (char)1; break;
  387. case('d'): dz->is_active[m] = (char)1; dz->no_brk[m] = (char)1; break;
  388. case('D'): dz->is_active[m] = (char)1; /* normal case: double val or brkpnt file */ break;
  389. default:
  390. sprintf(errstr,"Programming error: invalid variant type in mark_parameter_types()\n");
  391. return(PROGRAM_ERROR);
  392. }
  393. } /* INTERNAL */
  394. for(n=0,
  395. m=ap->max_param_cnt + ap->option_cnt + ap->variant_param_cnt; n<ap->internal_param_cnt; n++,m++) {
  396. switch(ap->internal_param_list[n]) {
  397. case('0'): break; /* dummy variables: variables not used: but important for internal paream numbering!! */
  398. case('i'): dz->is_int[m] = (char)1; dz->no_brk[m] = (char)1; break;
  399. case('d'): dz->no_brk[m] = (char)1; break;
  400. default:
  401. sprintf(errstr,"Programming error: invalid internal param type in mark_parameter_types()\n");
  402. return(PROGRAM_ERROR);
  403. }
  404. }
  405. return(FINISHED);
  406. }
  407. /************************ HANDLE_THE_OUTFILE *********************/
  408. int handle_the_outfile(int *cmdlinecnt,char ***cmdline,dataptr dz)
  409. {
  410. int exit_status;
  411. char *filename = (*cmdline)[0];
  412. if(filename[0]=='-' && filename[1]=='f') {
  413. dz->floatsam_output = 1;
  414. dz->true_outfile_stype = SAMP_FLOAT;
  415. filename+= 2;
  416. }
  417. if(!sloom) {
  418. if(file_has_invalid_startchar(filename) || value_is_numeric(filename)) {
  419. sprintf(errstr,"Outfile name %s has invalid start character(s) or looks too much like a number.\n",filename);
  420. return(DATA_ERROR);
  421. }
  422. }
  423. strcpy(dz->outfilename,filename);
  424. if((exit_status = create_sized_outfile(filename,dz))<0)
  425. return(exit_status);
  426. (*cmdline)++;
  427. (*cmdlinecnt)--;
  428. return(FINISHED);
  429. }
  430. /***************************** ESTABLISH_APPLICATION **************************/
  431. int establish_application(dataptr dz)
  432. {
  433. aplptr ap;
  434. if((dz->application = (aplptr)malloc(sizeof (struct applic)))==NULL) {
  435. sprintf(errstr,"establish_application()\n");
  436. return(MEMORY_ERROR);
  437. }
  438. ap = dz->application;
  439. memset((char *)ap,0,sizeof(struct applic));
  440. return(FINISHED);
  441. }
  442. /************************* INITIALISE_VFLAGS *************************/
  443. int initialise_vflags(dataptr dz)
  444. {
  445. int n;
  446. if((dz->vflag = (char *)malloc(dz->application->vflag_cnt * sizeof(char)))==NULL) {
  447. sprintf(errstr,"INSUFFICIENT MEMORY: vflag store,\n");
  448. return(MEMORY_ERROR);
  449. }
  450. for(n=0;n<dz->application->vflag_cnt;n++)
  451. dz->vflag[n] = FALSE;
  452. return FINISHED;
  453. }
  454. /************************* SETUP_INPUT_PARAM_DEFAULTVALS *************************/
  455. int setup_input_param_defaultval_stores(int tipc,aplptr ap)
  456. {
  457. int n;
  458. if((ap->default_val = (double *)malloc(tipc * sizeof(double)))==NULL) {
  459. sprintf(errstr,"INSUFFICIENT MEMORY for application default values store\n");
  460. return(MEMORY_ERROR);
  461. }
  462. for(n=0;n<tipc;n++)
  463. ap->default_val[n] = 0.0;
  464. return(FINISHED);
  465. }
  466. /***************************** SETUP_AND_INIT_INPUT_PARAM_ACTIVITY **************************/
  467. int setup_and_init_input_param_activity(dataptr dz,int tipc)
  468. {
  469. int n;
  470. if((dz->is_active = (char *)malloc((size_t)tipc))==NULL) {
  471. sprintf(errstr,"setup_and_init_input_param_activity()\n");
  472. return(MEMORY_ERROR);
  473. }
  474. for(n=0;n<tipc;n++)
  475. dz->is_active[n] = (char)0;
  476. return(FINISHED);
  477. }
  478. /************************* SETUP_GATE_APPLICATION *******************/
  479. int setup_freeze_application(dataptr dz)
  480. {
  481. int exit_status;
  482. aplptr ap;
  483. if((exit_status = establish_application(dz))<0) // GLOBAL
  484. return(FAILED);
  485. ap = dz->application;
  486. // SEE parstruct FOR EXPLANATION of next 2 functions
  487. switch(dz->mode) {
  488. case(ITERATE_DUR):
  489. if((exit_status = set_param_data(ap,0 ,8,8,"dDDDDddd"))<0)
  490. return(FAILED);
  491. break;
  492. case(ITERATE_REPEATS):
  493. if((exit_status = set_param_data(ap,0 ,8,8,"iDDDDddD"))<0)
  494. break;
  495. }
  496. if((exit_status = set_vflgs(ap,"" ,0,"" ,"s" ,1,1,"i"))<0)
  497. return(FAILED);
  498. // set_legal_infile_structure -->
  499. dz->has_otherfile = FALSE;
  500. // assign_process_logic -->
  501. dz->input_data_type = SNDFILES_ONLY;
  502. dz->process_type = UNEQUAL_SNDFILE;
  503. dz->outfiletype = SNDFILE_OUT;
  504. return application_init(dz); //GLOBAL
  505. }
  506. /************************* PARSE_INFILE_AND_CHECK_TYPE *******************/
  507. int parse_infile_and_check_type(char **cmdline,dataptr dz)
  508. {
  509. int exit_status;
  510. infileptr infile_info;
  511. if(!sloom) {
  512. if((infile_info = (infileptr)malloc(sizeof(struct filedata)))==NULL) {
  513. sprintf(errstr,"INSUFFICIENT MEMORY for infile structure to test file data.");
  514. return(MEMORY_ERROR);
  515. } else if((exit_status = cdparse(cmdline[0],infile_info))<0) {
  516. sprintf(errstr,"Failed to parse input file %s\n",cmdline[0]);
  517. return(PROGRAM_ERROR);
  518. } else if(infile_info->filetype != SNDFILE) {
  519. sprintf(errstr,"File %s is not of correct type\n",cmdline[0]);
  520. return(DATA_ERROR);
  521. } else if(infile_info->channels != 1) {
  522. sprintf(errstr,"File %s is not of correct type (must be mono)\n",cmdline[0]);
  523. return(DATA_ERROR);
  524. } else if((exit_status = copy_parse_info_to_main_structure(infile_info,dz))<0) {
  525. sprintf(errstr,"Failed to copy file parsing information\n");
  526. return(PROGRAM_ERROR);
  527. }
  528. free(infile_info);
  529. }
  530. return(FINISHED);
  531. }
  532. /************************* SETUP_FREEZE_PARAM_RANGES_AND_DEFAULTS *******************/
  533. int setup_freeze_param_ranges_and_defaults(dataptr dz)
  534. {
  535. int exit_status;
  536. aplptr ap = dz->application;
  537. // set_param_ranges()
  538. ap->total_input_param_cnt = (char)(ap->max_param_cnt + ap->option_cnt + ap->variant_param_cnt);
  539. // NB total_input_param_cnt is > 0 !!!
  540. if((exit_status = setup_input_param_range_stores(ap->total_input_param_cnt,ap))<0)
  541. return(FAILED);
  542. // get_param_ranges()
  543. switch(dz->mode) {
  544. case(ITERATE_DUR):
  545. ap->lo[0] = dz->duration;
  546. ap->hi[0] = BIG_TIME;
  547. ap->default_val[ITER_DUR] = dz->duration * 2.0;
  548. break;
  549. case(ITERATE_REPEATS):
  550. ap->lo[ITER_REPEATS] = 1.0;
  551. ap->hi[ITER_REPEATS] = BIG_VALUE;
  552. ap->default_val[ITER_REPEATS] = 2.0;
  553. break;
  554. default:
  555. sprintf(errstr,"Unknown mode for ITERFREEZE: in setup_freeze_param_ranges_and_defaults()\n");
  556. return(PROGRAM_ERROR);
  557. }
  558. ap->lo[ITER_DELAY] = FLTERR;
  559. ap->hi[ITER_DELAY] = ITER_MAX_DELAY;
  560. ap->default_val[ITER_DELAY] = dz->duration;
  561. ap->lo[ITER_RANDOM] = 0.0;
  562. ap->hi[ITER_RANDOM] = 1.0;
  563. ap->default_val[ITER_RANDOM] = 0.0;
  564. ap->lo[ITER_PSCAT] = 0.0;
  565. ap->hi[ITER_PSCAT] = ITER_MAXPSHIFT;
  566. ap->default_val[ITER_PSCAT] = 0.0;
  567. ap->lo[ITER_ASCAT] = 0.0;
  568. ap->hi[ITER_ASCAT] = 1.0;
  569. ap->default_val[ITER_ASCAT] = 0.0;
  570. ap->lo[CHUNKSTART] = 0.0;
  571. ap->hi[CHUNKSTART] = dz->duration;
  572. ap->default_val[CHUNKSTART] = 0.0;
  573. ap->lo[CHUNKEND] = 0.0;
  574. ap->hi[CHUNKEND] = dz->duration;
  575. ap->default_val[CHUNKEND] = dz->duration;
  576. ap->lo[ITER_RRSEED] = 0.0;
  577. ap->hi[ITER_RRSEED] = MAXSHORT;
  578. ap->default_val[ITER_RRSEED] = 0.0;
  579. ap->lo[ITER_LGAIN] = 0.25;
  580. ap->hi[ITER_LGAIN] = 4.0;
  581. ap->default_val[ITER_LGAIN] = 1.0;
  582. dz->maxmode = 2;
  583. if(!sloom)
  584. put_default_vals_in_all_params(dz);
  585. return(FINISHED);
  586. }
  587. /********************************* PARSE_SLOOM_DATA *********************************/
  588. int parse_sloom_data(int argc,char *argv[],char ***cmdline,int *cmdlinecnt,dataptr dz)
  589. {
  590. int exit_status;
  591. int cnt = 1, infilecnt;
  592. int filesize, insams, inbrksize;
  593. double dummy;
  594. int true_cnt = 0;
  595. //aplptr ap;
  596. while(cnt<=PRE_CMDLINE_DATACNT) {
  597. if(cnt > argc) {
  598. sprintf(errstr,"Insufficient data sent from TK\n");
  599. return(DATA_ERROR);
  600. }
  601. switch(cnt) {
  602. case(1):
  603. if(sscanf(argv[cnt],"%d",&dz->process)!=1) {
  604. sprintf(errstr,"Cannot read process no. sent from TK\n");
  605. return(DATA_ERROR);
  606. }
  607. break;
  608. case(2):
  609. if(sscanf(argv[cnt],"%d",&dz->mode)!=1) {
  610. sprintf(errstr,"Cannot read mode no. sent from TK\n");
  611. return(DATA_ERROR);
  612. }
  613. if(dz->mode > 0)
  614. dz->mode--;
  615. //setup_particular_application() =
  616. if((exit_status = setup_freeze_application(dz))<0)
  617. return(exit_status);
  618. //ap = dz->application;
  619. break;
  620. case(3):
  621. if(sscanf(argv[cnt],"%d",&infilecnt)!=1) {
  622. sprintf(errstr,"Cannot read infilecnt sent from TK\n");
  623. return(DATA_ERROR);
  624. }
  625. if(infilecnt < 1) {
  626. true_cnt = cnt + 1;
  627. cnt = PRE_CMDLINE_DATACNT; /* force exit from loop after assign_file_data_storage */
  628. }
  629. if((exit_status = assign_file_data_storage(infilecnt,dz))<0)
  630. return(exit_status);
  631. break;
  632. case(INPUT_FILETYPE+4):
  633. if(sscanf(argv[cnt],"%d",&dz->infile->filetype)!=1) {
  634. sprintf(errstr,"Cannot read filetype sent from TK (%s)\n",argv[cnt]);
  635. return(DATA_ERROR);
  636. }
  637. break;
  638. case(INPUT_FILESIZE+4):
  639. if(sscanf(argv[cnt],"%d",&filesize)!=1) {
  640. sprintf(errstr,"Cannot read infilesize sent from TK\n");
  641. return(DATA_ERROR);
  642. }
  643. dz->insams[0] = filesize;
  644. break;
  645. case(INPUT_INSAMS+4):
  646. if(sscanf(argv[cnt],"%d",&insams)!=1) {
  647. sprintf(errstr,"Cannot read insams sent from TK\n");
  648. return(DATA_ERROR);
  649. }
  650. dz->insams[0] = insams;
  651. break;
  652. case(INPUT_SRATE+4):
  653. if(sscanf(argv[cnt],"%d",&dz->infile->srate)!=1) {
  654. sprintf(errstr,"Cannot read srate sent from TK\n");
  655. return(DATA_ERROR);
  656. }
  657. break;
  658. case(INPUT_CHANNELS+4):
  659. if(sscanf(argv[cnt],"%d",&dz->infile->channels)!=1) {
  660. sprintf(errstr,"Cannot read channels sent from TK\n");
  661. return(DATA_ERROR);
  662. }
  663. break;
  664. case(INPUT_STYPE+4):
  665. if(sscanf(argv[cnt],"%d",&dz->infile->stype)!=1) {
  666. sprintf(errstr,"Cannot read stype sent from TK\n");
  667. return(DATA_ERROR);
  668. }
  669. break;
  670. case(INPUT_ORIGSTYPE+4):
  671. if(sscanf(argv[cnt],"%d",&dz->infile->origstype)!=1) {
  672. sprintf(errstr,"Cannot read origstype sent from TK\n");
  673. return(DATA_ERROR);
  674. }
  675. break;
  676. case(INPUT_ORIGRATE+4):
  677. if(sscanf(argv[cnt],"%d",&dz->infile->origrate)!=1) {
  678. sprintf(errstr,"Cannot read origrate sent from TK\n");
  679. return(DATA_ERROR);
  680. }
  681. break;
  682. case(INPUT_MLEN+4):
  683. if(sscanf(argv[cnt],"%d",&dz->infile->Mlen)!=1) {
  684. sprintf(errstr,"Cannot read Mlen sent from TK\n");
  685. return(DATA_ERROR);
  686. }
  687. break;
  688. case(INPUT_DFAC+4):
  689. if(sscanf(argv[cnt],"%d",&dz->infile->Dfac)!=1) {
  690. sprintf(errstr,"Cannot read Dfac sent from TK\n");
  691. return(DATA_ERROR);
  692. }
  693. break;
  694. case(INPUT_ORIGCHANS+4):
  695. if(sscanf(argv[cnt],"%d",&dz->infile->origchans)!=1) {
  696. sprintf(errstr,"Cannot read origchans sent from TK\n");
  697. return(DATA_ERROR);
  698. }
  699. break;
  700. case(INPUT_SPECENVCNT+4):
  701. if(sscanf(argv[cnt],"%d",&dz->infile->specenvcnt)!=1) {
  702. sprintf(errstr,"Cannot read specenvcnt sent from TK\n");
  703. return(DATA_ERROR);
  704. }
  705. dz->specenvcnt = dz->infile->specenvcnt;
  706. break;
  707. case(INPUT_WANTED+4):
  708. if(sscanf(argv[cnt],"%d",&dz->wanted)!=1) {
  709. sprintf(errstr,"Cannot read wanted sent from TK\n");
  710. return(DATA_ERROR);
  711. }
  712. break;
  713. case(INPUT_WLENGTH+4):
  714. if(sscanf(argv[cnt],"%d",&dz->wlength)!=1) {
  715. sprintf(errstr,"Cannot read wlength sent from TK\n");
  716. return(DATA_ERROR);
  717. }
  718. break;
  719. case(INPUT_OUT_CHANS+4):
  720. if(sscanf(argv[cnt],"%d",&dz->out_chans)!=1) {
  721. sprintf(errstr,"Cannot read out_chans sent from TK\n");
  722. return(DATA_ERROR);
  723. }
  724. break;
  725. /* RWD these chanegs to samps - tk will have to deal with that! */
  726. case(INPUT_DESCRIPTOR_BYTES+4):
  727. if(sscanf(argv[cnt],"%d",&dz->descriptor_samps)!=1) {
  728. sprintf(errstr,"Cannot read descriptor_samps sent from TK\n");
  729. return(DATA_ERROR);
  730. }
  731. break;
  732. case(INPUT_IS_TRANSPOS+4):
  733. if(sscanf(argv[cnt],"%d",&dz->is_transpos)!=1) {
  734. sprintf(errstr,"Cannot read is_transpos sent from TK\n");
  735. return(DATA_ERROR);
  736. }
  737. break;
  738. case(INPUT_COULD_BE_TRANSPOS+4):
  739. if(sscanf(argv[cnt],"%d",&dz->could_be_transpos)!=1) {
  740. sprintf(errstr,"Cannot read could_be_transpos sent from TK\n");
  741. return(DATA_ERROR);
  742. }
  743. break;
  744. case(INPUT_COULD_BE_PITCH+4):
  745. if(sscanf(argv[cnt],"%d",&dz->could_be_pitch)!=1) {
  746. sprintf(errstr,"Cannot read could_be_pitch sent from TK\n");
  747. return(DATA_ERROR);
  748. }
  749. break;
  750. case(INPUT_DIFFERENT_SRATES+4):
  751. if(sscanf(argv[cnt],"%d",&dz->different_srates)!=1) {
  752. sprintf(errstr,"Cannot read different_srates sent from TK\n");
  753. return(DATA_ERROR);
  754. }
  755. break;
  756. case(INPUT_DUPLICATE_SNDS+4):
  757. if(sscanf(argv[cnt],"%d",&dz->duplicate_snds)!=1) {
  758. sprintf(errstr,"Cannot read duplicate_snds sent from TK\n");
  759. return(DATA_ERROR);
  760. }
  761. break;
  762. case(INPUT_BRKSIZE+4):
  763. if(sscanf(argv[cnt],"%d",&inbrksize)!=1) {
  764. sprintf(errstr,"Cannot read brksize sent from TK\n");
  765. return(DATA_ERROR);
  766. }
  767. if(inbrksize > 0) {
  768. switch(dz->input_data_type) {
  769. case(WORDLIST_ONLY):
  770. break;
  771. case(PITCH_AND_PITCH):
  772. case(PITCH_AND_TRANSPOS):
  773. case(TRANSPOS_AND_TRANSPOS):
  774. dz->tempsize = inbrksize;
  775. break;
  776. case(BRKFILES_ONLY):
  777. case(UNRANGED_BRKFILE_ONLY):
  778. case(DB_BRKFILES_ONLY):
  779. case(ALL_FILES):
  780. case(ANY_NUMBER_OF_ANY_FILES):
  781. if(dz->extrabrkno < 0) {
  782. sprintf(errstr,"Storage location number for brktable not established by CDP.\n");
  783. return(DATA_ERROR);
  784. }
  785. if(dz->brksize == NULL) {
  786. sprintf(errstr,"CDP has not established storage space for input brktable.\n");
  787. return(PROGRAM_ERROR);
  788. }
  789. dz->brksize[dz->extrabrkno] = inbrksize;
  790. break;
  791. default:
  792. sprintf(errstr,"TK sent brktablesize > 0 for input_data_type [%d] not using brktables.\n",
  793. dz->input_data_type);
  794. return(PROGRAM_ERROR);
  795. }
  796. break;
  797. }
  798. break;
  799. case(INPUT_NUMSIZE+4):
  800. if(sscanf(argv[cnt],"%d",&dz->numsize)!=1) {
  801. sprintf(errstr,"Cannot read numsize sent from TK\n");
  802. return(DATA_ERROR);
  803. }
  804. break;
  805. case(INPUT_LINECNT+4):
  806. if(sscanf(argv[cnt],"%d",&dz->linecnt)!=1) {
  807. sprintf(errstr,"Cannot read linecnt sent from TK\n");
  808. return(DATA_ERROR);
  809. }
  810. break;
  811. case(INPUT_ALL_WORDS+4):
  812. if(sscanf(argv[cnt],"%d",&dz->all_words)!=1) {
  813. sprintf(errstr,"Cannot read all_words sent from TK\n");
  814. return(DATA_ERROR);
  815. }
  816. break;
  817. case(INPUT_ARATE+4):
  818. if(sscanf(argv[cnt],"%f",&dz->infile->arate)!=1) {
  819. sprintf(errstr,"Cannot read arate sent from TK\n");
  820. return(DATA_ERROR);
  821. }
  822. break;
  823. case(INPUT_FRAMETIME+4):
  824. if(sscanf(argv[cnt],"%lf",&dummy)!=1) {
  825. sprintf(errstr,"Cannot read frametime sent from TK\n");
  826. return(DATA_ERROR);
  827. }
  828. dz->frametime = (float)dummy;
  829. break;
  830. case(INPUT_WINDOW_SIZE+4):
  831. if(sscanf(argv[cnt],"%f",&dz->infile->window_size)!=1) {
  832. sprintf(errstr,"Cannot read window_size sent from TK\n");
  833. return(DATA_ERROR);
  834. }
  835. break;
  836. case(INPUT_NYQUIST+4):
  837. if(sscanf(argv[cnt],"%lf",&dz->nyquist)!=1) {
  838. sprintf(errstr,"Cannot read nyquist sent from TK\n");
  839. return(DATA_ERROR);
  840. }
  841. break;
  842. case(INPUT_DURATION+4):
  843. if(sscanf(argv[cnt],"%lf",&dz->duration)!=1) {
  844. sprintf(errstr,"Cannot read duration sent from TK\n");
  845. return(DATA_ERROR);
  846. }
  847. break;
  848. case(INPUT_MINBRK+4):
  849. if(sscanf(argv[cnt],"%lf",&dz->minbrk)!=1) {
  850. sprintf(errstr,"Cannot read minbrk sent from TK\n");
  851. return(DATA_ERROR);
  852. }
  853. break;
  854. case(INPUT_MAXBRK+4):
  855. if(sscanf(argv[cnt],"%lf",&dz->maxbrk)!=1) {
  856. sprintf(errstr,"Cannot read maxbrk sent from TK\n");
  857. return(DATA_ERROR);
  858. }
  859. break;
  860. case(INPUT_MINNUM+4):
  861. if(sscanf(argv[cnt],"%lf",&dz->minnum)!=1) {
  862. sprintf(errstr,"Cannot read minnum sent from TK\n");
  863. return(DATA_ERROR);
  864. }
  865. break;
  866. case(INPUT_MAXNUM+4):
  867. if(sscanf(argv[cnt],"%lf",&dz->maxnum)!=1) {
  868. sprintf(errstr,"Cannot read maxnum sent from TK\n");
  869. return(DATA_ERROR);
  870. }
  871. break;
  872. default:
  873. sprintf(errstr,"case switch item missing: parse_sloom_data()\n");
  874. return(PROGRAM_ERROR);
  875. }
  876. cnt++;
  877. }
  878. if(cnt!=PRE_CMDLINE_DATACNT+1) {
  879. sprintf(errstr,"Insufficient pre-cmdline params sent from TK\n");
  880. return(DATA_ERROR);
  881. }
  882. if(true_cnt)
  883. cnt = true_cnt;
  884. *cmdlinecnt = 0;
  885. while(cnt < argc) {
  886. if((exit_status = get_tk_cmdline_word(cmdlinecnt,cmdline,argv[cnt]))<0)
  887. return(exit_status);
  888. cnt++;
  889. }
  890. return(FINISHED);
  891. }
  892. /********************************* GET_TK_CMDLINE_WORD *********************************/
  893. int get_tk_cmdline_word(int *cmdlinecnt,char ***cmdline,char *q)
  894. {
  895. if(*cmdlinecnt==0) {
  896. if((*cmdline = (char **)malloc(sizeof(char *)))==NULL) {
  897. sprintf(errstr,"INSUFFICIENT MEMORY for TK cmdline array.\n");
  898. return(MEMORY_ERROR);
  899. }
  900. } else {
  901. if((*cmdline = (char **)realloc(*cmdline,((*cmdlinecnt)+1) * sizeof(char *)))==NULL) {
  902. sprintf(errstr,"INSUFFICIENT MEMORY for TK cmdline array.\n");
  903. return(MEMORY_ERROR);
  904. }
  905. }
  906. if(((*cmdline)[*cmdlinecnt] = (char *)malloc((strlen(q) + 1) * sizeof(char)))==NULL) {
  907. sprintf(errstr,"INSUFFICIENT MEMORY for TK cmdline item %d.\n",(*cmdlinecnt)+1);
  908. return(MEMORY_ERROR);
  909. }
  910. strcpy((*cmdline)[*cmdlinecnt],q);
  911. (*cmdlinecnt)++;
  912. return(FINISHED);
  913. }
  914. /****************************** ASSIGN_FILE_DATA_STORAGE *********************************/
  915. int assign_file_data_storage(int infilecnt,dataptr dz)
  916. {
  917. int exit_status;
  918. int no_sndfile_system_files = FALSE;
  919. dz->infilecnt = infilecnt;
  920. if((exit_status = allocate_filespace(dz))<0)
  921. return(exit_status);
  922. if(no_sndfile_system_files)
  923. dz->infilecnt = 0;
  924. return(FINISHED);
  925. }
  926. /****************************** SET_LEGAL_INTERNALPARAM_STRUCTURE *********************************/
  927. int set_legal_internalparam_structure(int process,int mode,aplptr ap)
  928. {
  929. return set_internalparam_data("diiii", ap);
  930. }
  931. /************************* redundant functions: to ensure libs compile OK *******************/
  932. int assign_process_logic(dataptr dz)
  933. {
  934. return(FINISHED);
  935. }
  936. void set_legal_infile_structure(dataptr dz)
  937. {}
  938. int setup_internal_arrays_and_array_pointers(dataptr dz)
  939. {
  940. return(FINISHED);
  941. }
  942. int establish_bufptrs_and_extra_buffers(dataptr dz)
  943. {
  944. return(FINISHED);
  945. }
  946. int read_special_data(char *str,dataptr dz)
  947. {
  948. return(FINISHED);
  949. }
  950. int inner_loop
  951. (int *peakscore,int *descnt,int *in_start_portion,int *least,int *pitchcnt,int windows_in_buf,dataptr dz)
  952. {
  953. return(FINISHED);
  954. }
  955. int get_process_no(char *prog_identifier_from_cmdline,dataptr dz)
  956. {
  957. return(FINISHED);
  958. }
  959. /******************************** USAGE1 ********************************/
  960. int usage1(void)
  961. {
  962. usage2("freeze");
  963. return(USAGE_ONLY);
  964. }
  965. /******************************** DBTOLEVEL ***********************/
  966. double dbtolevel(double val)
  967. {
  968. int isneg = 0;
  969. if(flteq(val,0.0))
  970. return(1.0);
  971. if(val < 0.0) {
  972. val = -val;
  973. isneg = 1;
  974. }
  975. val /= 20.0;
  976. val = pow(10.0,val);
  977. if(isneg)
  978. val = 1.0/val;
  979. return(val);
  980. }
  981. /********************************************************************************************/
  982. int get_the_process_no(char *prog_identifier_from_cmdline,dataptr dz)
  983. {
  984. if(!strcmp(prog_identifier_from_cmdline,"freeze")) dz->process = ITERATE_EXTEND;
  985. else {
  986. sprintf(errstr,"Unknown program identification string '%s'\n",prog_identifier_from_cmdline);
  987. return(USAGE_ONLY);
  988. }
  989. return(FINISHED);
  990. }
  991. /******************************** SETUP_AND_INIT_INPUT_BRKTABLE_CONSTANTS ********************************/
  992. int setup_and_init_input_brktable_constants(dataptr dz,int brkcnt)
  993. {
  994. int n;
  995. if((dz->brk = (double **)malloc(brkcnt * sizeof(double *)))==NULL) {
  996. sprintf(errstr,"setup_and_init_input_brktable_constants(): 1\n");
  997. return(MEMORY_ERROR);
  998. }
  999. if((dz->brkptr = (double **)malloc(brkcnt * sizeof(double *)))==NULL) {
  1000. sprintf(errstr,"setup_and_init_input_brktable_constants(): 6\n");
  1001. return(MEMORY_ERROR);
  1002. }
  1003. if((dz->brksize = (int *)malloc(brkcnt * sizeof(int)))==NULL) {
  1004. sprintf(errstr,"setup_and_init_input_brktable_constants(): 2\n");
  1005. return(MEMORY_ERROR);
  1006. }
  1007. if((dz->firstval = (double *)malloc(brkcnt * sizeof(double)))==NULL) {
  1008. sprintf(errstr,"setup_and_init_input_brktable_constants(): 3\n");
  1009. return(MEMORY_ERROR);
  1010. }
  1011. if((dz->lastind = (double *)malloc(brkcnt * sizeof(double)))==NULL) {
  1012. sprintf(errstr,"setup_and_init_input_brktable_constants(): 4\n");
  1013. return(MEMORY_ERROR);
  1014. }
  1015. if((dz->lastval = (double *)malloc(brkcnt * sizeof(double)))==NULL) {
  1016. sprintf(errstr,"setup_and_init_input_brktable_constants(): 5\n");
  1017. return(MEMORY_ERROR);
  1018. }
  1019. if((dz->brkinit = (int *)malloc(brkcnt * sizeof(int)))==NULL) {
  1020. sprintf(errstr,"setup_and_init_input_brktable_constants(): 7\n");
  1021. return(MEMORY_ERROR);
  1022. }
  1023. for(n=0;n<brkcnt;n++) {
  1024. dz->brk[n] = NULL;
  1025. dz->brkptr[n] = NULL;
  1026. dz->brkinit[n] = 0;
  1027. dz->brksize[n] = 0;
  1028. }
  1029. return(FINISHED);
  1030. }
  1031. /******************************** USAGE2 ********************************/
  1032. int usage2(char *str)
  1033. {
  1034. if(!strcmp(str,"freeze")) {
  1035. fprintf(stdout,
  1036. "FREEZE A SEGMENT OF A SOUND BY ITERATION IN A FLUID MANNER\n\n"
  1037. "USAGE: freeze freeze 1 infil outfil outduration\n"
  1038. " delay rand pscat ampcut start end adjust [-sseed]\n"
  1039. "OR: freeze freeze 2 infil outfil repetitions\n"
  1040. " delay rand pscat ampcut start end adjust [-sseed]\n"
  1041. "delay (average) delay between iterations: <= length of frozen segement.\n"
  1042. "rand delaytime-randomisation: Range 0 - 1\n"
  1043. "pscat max of random pitchshift of each iter: Range 0 - %.0lf semitones\n"
  1044. " e.g. 2.5 = 2.5 semitones up or down.\n"
  1045. "ampcut max of random amp-reduction on each iter: Range 0-1\n"
  1046. "start Time where frozen segment begins in original sound.\n"
  1047. "end Time where frozen segment ends in original sound.\n"
  1048. "adjust Adjust gain of frozen segment.\n"
  1049. "seed the same seed-number will produce identical output on rerun,\n"
  1050. " (Default: (0) random sequence is different every time).\n",ITER_MAXPSHIFT);
  1051. } else
  1052. fprintf(stdout,"Unknown option '%s'\n",str);
  1053. return(USAGE_ONLY);
  1054. }
  1055. int usage3(char *str1,char *str2)
  1056. {
  1057. fprintf(stderr,"Insufficient parameters on command line.\n");
  1058. return(USAGE_ONLY);
  1059. }
  1060. /****************************** DO_ITERATION *************************
  1061. *
  1062. * (1) First event is always copy of original.
  1063. */
  1064. //TW COMPLETELY UPDATED FUNCTION : (flt-converted)
  1065. #define ACCEPTABLE_LEVEL 0.75
  1066. int do_friteration(dataptr dz)
  1067. {
  1068. int exit_status, iterating = 0;
  1069. int write_end, tail, cnt, arraysize = BIGARRAY;
  1070. float *tailend;
  1071. int bufs_written, finished;
  1072. double level, thistime, localmax = 0.0;
  1073. int out_sampdur = 0, inmsampsize;
  1074. int write_start, local_write_start;
  1075. double one_over_sr = 1.0/(double)dz->infile->srate, maxsamp = 0.0;
  1076. int passno, is_penult = 0;
  1077. int k, orig_sampdel = 0, ii, jj, kk;
  1078. double *gain, *pshift, gaingain;
  1079. int *wstart, chunkmsamps = 0, chunksampsize = 0;
  1080. float *orig_inbuf = dz->sampbuf[0];
  1081. int splicelen = ITX_SPLICELEN;
  1082. double spliceincr = 1.0/(double)ITX_SPLICELEN, splicer;
  1083. if ((gain = (double *)malloc(arraysize * sizeof(double)))==NULL) {
  1084. sprintf(errstr,"Insufficient memory to store gain values\n");
  1085. return(MEMORY_ERROR);
  1086. }
  1087. if ((pshift = (double *)malloc(arraysize * sizeof(double)))==NULL) {
  1088. sprintf(errstr,"Insufficient memory to store pitch shift values\n");
  1089. return(MEMORY_ERROR);
  1090. }
  1091. if ((wstart = (int *)malloc(arraysize * sizeof(int)))==NULL) {
  1092. sprintf(errstr,"Insufficient memory to store pitch shift values\n");
  1093. return(MEMORY_ERROR);
  1094. }
  1095. chunksampsize = dz->iparam[CHUNKEND] - dz->iparam[CHUNKSTART];
  1096. chunkmsamps = chunksampsize/dz->infile->channels;
  1097. if(dz->mode==ITERATE_DUR)
  1098. out_sampdur = round(dz->param[ITER_DUR] * (double)dz->infile->srate) * dz->infile->channels;
  1099. if(sloom) {
  1100. switch(dz->mode) {
  1101. case(ITERATE_DUR):
  1102. dz->tempsize = out_sampdur;
  1103. break;
  1104. case(ITERATE_REPEATS):
  1105. dz->tempsize = dz->insams[0] + (chunksampsize * dz->iparam[ITER_REPEATS]); /* approx */
  1106. break;
  1107. }
  1108. }
  1109. for(passno=0;passno<2;passno++) {
  1110. is_penult = 0;
  1111. cnt = 0;
  1112. bufs_written = 0;
  1113. write_start = 0;
  1114. maxsamp = 0.0;
  1115. memset((char *)dz->sampbuf[1],0,dz->buflen * sizeof(float));
  1116. level = 1.0;
  1117. sndseekEx(dz->ifd[0],0L,0);
  1118. display_virtual_time(0L,dz);
  1119. fflush(stdout);
  1120. dz->sampbuf[0] = orig_inbuf;
  1121. if(passno > 0) {
  1122. print_outmessage_flush("Second pass, for greater level\n");
  1123. dz->tempsize = dz->total_samps_written;
  1124. dz->total_samps_written = 0;
  1125. memset((char *)dz->sampbuf[0],0,(dz->sampbuf[3] - dz->sampbuf[0]) * sizeof(float));
  1126. }
  1127. if((exit_status = read_the_input_snd(dz))<0)
  1128. return(exit_status);
  1129. /* Make bakup copy of infile, with splice at start of iter section */
  1130. if(passno == 0) {
  1131. for(jj = dz->iparam[CHUNKSTART]; jj < dz->iparam[CHUNKEND];jj++)
  1132. localmax = max(localmax,dz->sampbuf[0][jj]);
  1133. memcpy((char *)dz->sampbuf[3],(char *)dz->sampbuf[0],(dz->insams[0] * sizeof(float)));
  1134. jj = dz->iparam[CHUNKSTART];
  1135. splicer = 0.0;
  1136. for(kk = 0; kk < splicelen; kk++) {
  1137. for(ii=0; ii <dz->infile->channels;ii++) {
  1138. dz->sampbuf[3][jj] = (float)(dz->sampbuf[3][jj] * splicer);
  1139. jj++;
  1140. }
  1141. splicer += spliceincr;
  1142. }
  1143. }
  1144. /*Put splice on END of iterated chunk in TRUE buffer */
  1145. jj = dz->iparam[CHUNKEND] + dz->infile->channels - 1;
  1146. for(ii=0; ii <dz->infile->channels;ii++) {
  1147. dz->sampbuf[0][jj] = (float)0; /* These are the wrap-around points */
  1148. jj--;
  1149. }
  1150. splicer = 0.0;
  1151. for(kk = 0; kk < splicelen; kk++) {
  1152. for(ii=0; ii <dz->infile->channels;ii++) {
  1153. dz->sampbuf[0][jj] = (float)(dz->sampbuf[0][jj] * splicer);
  1154. jj--;
  1155. }
  1156. splicer += spliceincr;
  1157. }
  1158. inmsampsize = dz->iparam[CHUNKEND]/dz->infile->channels;
  1159. /* 1 */
  1160. local_write_start = 0;
  1161. switch(dz->iparam[ITER_PROCESS]) {
  1162. case(MONO):
  1163. iter(0,passno,gain,local_write_start,inmsampsize,level,&maxsamp,iterating,dz);
  1164. break;
  1165. case(STEREO):
  1166. iter_stereo(0,passno,gain,local_write_start,inmsampsize,level,&maxsamp,iterating,dz);
  1167. break;
  1168. case(MN_INTP_SHIFT):
  1169. iter_shift_interp(0,passno,gain,pshift,local_write_start,inmsampsize,level,&maxsamp,iterating,dz);
  1170. break;
  1171. case(ST_INTP_SHIFT):
  1172. iter_shift_interp_stereo(0,passno,gain,pshift,local_write_start,inmsampsize,level,&maxsamp,iterating,dz);
  1173. break;
  1174. case(FIXA_MONO):
  1175. fixa_iter(0,passno,gain,local_write_start,inmsampsize,level,&maxsamp,iterating,dz);
  1176. break;
  1177. case(FIXA_STEREO):
  1178. fixa_iter_stereo(0,passno,gain,local_write_start,inmsampsize,level,&maxsamp,iterating,dz);
  1179. break;
  1180. case(FIXA_MN_INTP_SHIFT):
  1181. fixa_iter_shift_interp(0,passno,gain,pshift,local_write_start,inmsampsize,level,&maxsamp,iterating,dz);
  1182. break;
  1183. case(FIXA_ST_INTP_SHIFT):
  1184. fixa_iter_shift_interp_stereo(0,passno,gain,pshift,local_write_start,inmsampsize,level,&maxsamp,iterating,dz);
  1185. break;
  1186. }
  1187. write_end = dz->iparam[CHUNKEND];
  1188. jj = dz->iparam[CHUNKSTART]; /*Put splice on START of iterarted chunk */
  1189. splicer = 0.0;
  1190. for(kk = 0; kk < splicelen; kk++) {
  1191. for(ii=0; ii <dz->infile->channels;ii++) {
  1192. dz->sampbuf[0][jj] = (float)(dz->sampbuf[0][jj] * splicer);
  1193. jj++;
  1194. }
  1195. splicer += spliceincr;
  1196. }
  1197. thistime = 0.0;
  1198. if((exit_status = read_values_from_all_existing_brktables(thistime,dz))<0)
  1199. return(exit_status);
  1200. orig_sampdel = round(dz->param[ITER_DELAY] * (double)dz->infile->srate);
  1201. dz->iparam[ITER_MSAMPDEL] = dz->iparam[CHUNKSTART]/dz->infile->channels + orig_sampdel;
  1202. dz->iparam[ITER_MSAMPDEL] -= ITX_SPLICELEN * 2;
  1203. if(passno==0)
  1204. wstart[cnt] = dz->iparam[ITER_MSAMPDEL];
  1205. write_start = wstart[cnt];
  1206. local_write_start = write_start;
  1207. finished = FALSE;
  1208. for(;;) {
  1209. if(is_penult) { /* If previously got to end, break */
  1210. finished = 1;
  1211. break;
  1212. }
  1213. if(cnt==0) { /* If 1st iteration, set to read from start of iter-chunk */
  1214. dz->sampbuf[0] += dz->iparam[CHUNKSTART];
  1215. inmsampsize = chunkmsamps; /* and read just the iterated chunk */
  1216. /* And set to normal iteration delay for 2nd Iteration: */
  1217. if(!dz->brksize[ITER_DELAY])
  1218. dz->iparam[ITER_MSAMPDEL]= orig_sampdel;
  1219. iterating = 0;
  1220. } else {
  1221. iterating = 1;
  1222. }
  1223. switch(dz->mode) {
  1224. case(ITERATE_DUR):
  1225. if(write_start >= out_sampdur)
  1226. is_penult = 1;
  1227. break;
  1228. case(ITERATE_REPEATS):
  1229. if(cnt >= dz->iparam[ITER_REPEATS])
  1230. is_penult = 1;
  1231. break;
  1232. }
  1233. if(is_penult) { /* If last repeat, set to read to end of infile */
  1234. inmsampsize = (dz->insams[0] - dz->iparam[CHUNKSTART])/dz->infile->channels;
  1235. dz->sampbuf[0] -= dz->iparam[CHUNKSTART];
  1236. memcpy((char *)dz->sampbuf[0],(char *)dz->sampbuf[3],(dz->insams[0] * sizeof(float)));
  1237. dz->sampbuf[0] += dz->iparam[CHUNKSTART];
  1238. iterating = 0;
  1239. }
  1240. if(finished)
  1241. break;
  1242. while(local_write_start >= dz->buflen) {
  1243. if(passno > 0) {
  1244. if((exit_status = write_samps(dz->sampbuf[1],dz->buflen,dz))<0)
  1245. return(exit_status);
  1246. }
  1247. bufs_written++;
  1248. tail = write_end - dz->buflen;
  1249. memset((char *)dz->sampbuf[1],0,dz->buflen * sizeof(float));
  1250. if(tail > 0) {
  1251. memmove((char *)dz->sampbuf[1],(char *)dz->sampbuf[2],tail * sizeof(float));
  1252. tailend = dz->sampbuf[1] + tail;
  1253. } else
  1254. tailend = dz->sampbuf[2];
  1255. memset((char *)tailend,0,(dz->sampbuf[3] - tailend) * sizeof(float));
  1256. local_write_start -= dz->buflen;
  1257. write_end -= dz->buflen;
  1258. }
  1259. cnt++;
  1260. if((passno == 0) && (cnt >= arraysize)) {
  1261. arraysize += BIGARRAY;
  1262. if ((gain = (double *)realloc((char *)gain,arraysize * sizeof(double)))==NULL) {
  1263. sprintf(errstr,"Insufficient memory to store gain values (2)\n");
  1264. return(MEMORY_ERROR);
  1265. }
  1266. if ((pshift = (double *)realloc((char *)pshift,arraysize * sizeof(double)))==NULL) {
  1267. sprintf(errstr,"Insufficient memory to store pshift values (2)\n");
  1268. return(MEMORY_ERROR);
  1269. }
  1270. if ((wstart = (int *)realloc((char *)wstart,arraysize * sizeof(int)))==NULL) {
  1271. sprintf(errstr,"Insufficient memory to store wstart values (2)\n");
  1272. return(MEMORY_ERROR);
  1273. }
  1274. }
  1275. thistime = ((dz->buflen * bufs_written) + local_write_start) * one_over_sr;
  1276. if((exit_status = read_values_from_all_existing_brktables(thistime,dz))<0)
  1277. return(exit_status);
  1278. if(is_penult) {
  1279. dz->param[ITER_PSCAT] = 0.0;
  1280. dz->param[ITER_ASCAT] = 0.0;
  1281. }
  1282. if(dz->brksize[ITER_DELAY])
  1283. dz->iparam[ITER_MSAMPDEL] = round(dz->param[ITER_DELAY] * (double)dz->infile->srate);
  1284. write_end = iterate(cnt,passno,gain,pshift,write_end,local_write_start,inmsampsize,level,&maxsamp,iterating,dz);
  1285. if(passno==0)
  1286. wstart[cnt] = get_next_writestart(write_start,dz);
  1287. write_start = wstart[cnt];
  1288. local_write_start = write_start - (bufs_written * dz->buflen);
  1289. }
  1290. if(passno > 0) {
  1291. if(write_end > 0) {
  1292. if((exit_status = write_samps(dz->sampbuf[1],write_end,dz))<0)
  1293. return(exit_status);
  1294. }
  1295. } else {
  1296. gaingain = (localmax/maxsamp) * dz->param[ITER_LGAIN];
  1297. switch(dz->iparam[ITER_PROCESS]) {
  1298. case(MONO):
  1299. case(STEREO):
  1300. case(MN_INTP_SHIFT):
  1301. case(ST_INTP_SHIFT):
  1302. for(k=0;k<=cnt;k++)
  1303. gain[k] *= gaingain;
  1304. break;
  1305. case(FIXA_MONO):
  1306. case(FIXA_STEREO):
  1307. case(FIXA_MN_INTP_SHIFT):
  1308. case(FIXA_ST_INTP_SHIFT):
  1309. for(k=0;k<=cnt;k++)
  1310. gain[k] = gaingain;
  1311. break;
  1312. }
  1313. }
  1314. }
  1315. return FINISHED;
  1316. }
  1317. /*************************** READ_THE_INPUT_SND **************************/
  1318. int read_the_input_snd(dataptr dz)
  1319. {
  1320. int samps, k, samps_read;
  1321. int n;
  1322. if((samps_read = fgetfbufEx(dz->sampbuf[0], dz->insams[0]/* + SECSIZE*/,dz->ifd[0],0)) <= 0) {
  1323. sprintf(errstr,"Can't read samps from input soundfile\n");
  1324. if(samps_read<0)
  1325. return(SYSTEM_ERROR);
  1326. return(DATA_ERROR);
  1327. }
  1328. if(samps_read!=dz->insams[0]) {
  1329. sprintf(errstr, "Failed to read all of source file. read_the_input_snd()\n");
  1330. return(PROGRAM_ERROR);
  1331. }
  1332. samps = samps_read / dz->infile->channels;
  1333. if(dz->param[ITER_PSCAT] > 0.0) {
  1334. k = samps * dz->infile->channels;
  1335. for(n=0;n<dz->infile->channels;n++) {
  1336. dz->sampbuf[0][k] = (float)0;
  1337. k++; /* GUARD POINTS FOR INTERPOLATION */
  1338. }
  1339. }
  1340. return(FINISHED);
  1341. }
  1342. /*************************** GET_NEXT_WRITESTART ****************************/
  1343. int get_next_writestart(int write_start,dataptr dz)
  1344. {
  1345. int this_step;
  1346. double d;
  1347. int mwrite_start = write_start/dz->infile->channels;
  1348. if(dz->param[ITER_RANDOM] > 0.0) {
  1349. d = ((drand48() * 2.0) - 1.0) * dz->param[ITER_RANDOM];
  1350. d += 1.0;
  1351. this_step = (int)round((double)dz->iparam[ITER_MSAMPDEL] * d);
  1352. mwrite_start += this_step;
  1353. } else
  1354. mwrite_start += dz->iparam[ITER_MSAMPDEL];
  1355. write_start = mwrite_start * dz->infile->channels;
  1356. return(write_start);
  1357. }
  1358. /******************************* ITERATE *****************************/
  1359. //TW COMPLETELY UPDATED FUNCTION : (flt-converted)
  1360. int iterate
  1361. (int cnt,int pass,double *gain,double *pshift,int write_end,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz)
  1362. {
  1363. int wr_end = 0;
  1364. switch(dz->iparam[ITER_PROCESS]) {
  1365. case(MONO):
  1366. wr_end = iter(cnt,pass,gain,local_write_start,inmsampsize,level,maxsamp,iterating,dz);
  1367. break;
  1368. case(STEREO):
  1369. wr_end = iter_stereo(cnt,pass,gain,local_write_start,inmsampsize,level,maxsamp,iterating,dz);
  1370. break;
  1371. case(MN_INTP_SHIFT):
  1372. wr_end = iter_shift_interp(cnt,pass,gain,pshift,local_write_start,inmsampsize,level,maxsamp,iterating,dz);
  1373. break;
  1374. case(ST_INTP_SHIFT):
  1375. wr_end = iter_shift_interp_stereo(cnt,pass,gain,pshift,local_write_start,inmsampsize,level,maxsamp,iterating,dz);
  1376. break;
  1377. case(FIXA_MONO):
  1378. wr_end = fixa_iter(cnt,pass,gain,local_write_start,inmsampsize,level,maxsamp,iterating,dz);
  1379. break;
  1380. case(FIXA_STEREO):
  1381. wr_end = fixa_iter_stereo(cnt,pass,gain,local_write_start,inmsampsize,level,maxsamp,iterating,dz);
  1382. break;
  1383. case(FIXA_MN_INTP_SHIFT):
  1384. wr_end = fixa_iter_shift_interp(cnt,pass,gain,pshift,local_write_start,inmsampsize,level,maxsamp,iterating,dz);
  1385. break;
  1386. case(FIXA_ST_INTP_SHIFT):
  1387. wr_end = fixa_iter_shift_interp_stereo(cnt,pass,gain,pshift,local_write_start,inmsampsize,level,maxsamp,iterating,dz);
  1388. break;
  1389. }
  1390. return max(wr_end,write_end);
  1391. }
  1392. /**************************** ITER ***************************/
  1393. //TW COMPLETELY UPDATED FUNCTION : (flt-converted)
  1394. int iter(int cnt,int passno, double *gain,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz)
  1395. {
  1396. register int i, j = local_write_start;
  1397. float *outbuf = dz->sampbuf[1];
  1398. float *inbuf = dz->sampbuf[0];
  1399. double z;
  1400. double thisgain;
  1401. if(passno == 0) {
  1402. gain[cnt] = get_gain(dz);
  1403. thisgain = gain[cnt];
  1404. for(i=0; i < inmsampsize; i++) {
  1405. z = outbuf[j] + (inbuf[i] * thisgain);
  1406. *maxsamp = max(*maxsamp,fabs(z));
  1407. outbuf[j++] = (float)z;
  1408. }
  1409. } else {
  1410. thisgain = gain[cnt];
  1411. for(i=0; i < inmsampsize; i++) {
  1412. if(iterating)
  1413. z = outbuf[j] + (inbuf[i] * thisgain);
  1414. else
  1415. z = outbuf[j] + inbuf[i];
  1416. outbuf[j++] = (float)z;
  1417. }
  1418. }
  1419. return(j);
  1420. }
  1421. /**************************** ITER_STEREO ***************************/
  1422. //TW COMPLETELY UPDATED FUNCTION : (flt-converted)
  1423. int iter_stereo(int cnt,int passno, double *gain,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz)
  1424. {
  1425. register int i, j = local_write_start, k;
  1426. int n;
  1427. float *outbuf = dz->sampbuf[1];
  1428. float *inbuf = dz->sampbuf[0];
  1429. double z;
  1430. double thisgain;
  1431. if(passno == 0) {
  1432. gain[cnt] = get_gain(dz);
  1433. thisgain = gain[cnt];
  1434. for(i=0; i < inmsampsize; i++) {
  1435. k = i*dz->infile->channels;
  1436. for(n=0;n<dz->infile->channels;n++) {
  1437. z = outbuf[j] + (inbuf[k++] * thisgain);
  1438. // *maxsamp = max(*maxsamp,abs(z));
  1439. *maxsamp = max(*maxsamp,fabs(z));
  1440. outbuf[j++] = (float)z;
  1441. }
  1442. }
  1443. } else {
  1444. thisgain = gain[cnt];
  1445. for(i=0; i < inmsampsize; i++) {
  1446. k = i*dz->infile->channels;
  1447. for(n=0;n<dz->infile->channels;n++) {
  1448. if(iterating)
  1449. z = outbuf[j] + (inbuf[k++] * thisgain);
  1450. else
  1451. z = outbuf[j] + inbuf[k++];
  1452. }
  1453. }
  1454. }
  1455. return(j);
  1456. }
  1457. /**************************** ITER_SHIFT_INTERP ***************************/
  1458. //TW COMPLETELY UPDATED FUNCTION : (flt-converted)
  1459. int iter_shift_interp(int cnt,int passno, double *gain,double *pshift,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz)
  1460. {
  1461. register int i = 0, j = local_write_start;
  1462. double d = 0.0, part = 0.0;
  1463. float val, nextval, diff;
  1464. float *outbuf = dz->sampbuf[1];
  1465. float *inbuf = dz->sampbuf[0];
  1466. double z;
  1467. double thisgain;
  1468. if(passno == 0) {
  1469. gain[cnt] = get_gain(dz);
  1470. thisgain = gain[cnt];
  1471. while(i < inmsampsize) {
  1472. val = inbuf[i++];
  1473. nextval = inbuf[i];
  1474. diff = nextval - val;
  1475. z = val + ((double)diff * part);
  1476. z = (z * thisgain);
  1477. z += outbuf[j];
  1478. // *maxsamp = max(*maxsamp,abs(z));
  1479. *maxsamp = max(*maxsamp,fabs(z));
  1480. outbuf[j++] = (float)z;
  1481. d += dz->param[ITER_SSTEP];
  1482. i = (int)d; /* TRUNCATE */
  1483. part = d - (double)i;
  1484. }
  1485. pshift[cnt] = get_pshift(dz);
  1486. dz->param[ITER_SSTEP] = pshift[cnt];
  1487. } else {
  1488. thisgain = gain[cnt];
  1489. while(i < inmsampsize) {
  1490. val = inbuf[i++];
  1491. nextval = inbuf[i];
  1492. diff = nextval - val;
  1493. z = val + ((double)diff * part);
  1494. if(iterating)
  1495. z = (z * thisgain);
  1496. z += outbuf[j];
  1497. outbuf[j++] = (float)z;
  1498. d += dz->param[ITER_SSTEP];
  1499. i = (int)d; /* TRUNCATE */
  1500. part = d - (double)i;
  1501. }
  1502. dz->param[ITER_SSTEP] = pshift[cnt];
  1503. }
  1504. return(j);
  1505. }
  1506. /*********************** ITER_SHIFT_INTERP_STEREO *************************/
  1507. //TW COMPLETELY UPDATED FUNCTION : (flt-converted)
  1508. int iter_shift_interp_stereo(int cnt,int passno, double *gain,double *pshift,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz)
  1509. {
  1510. register int i = 0, j = local_write_start, k;
  1511. int n;
  1512. double d = 0.0, part = 0.0;
  1513. float val, nextval, diff;
  1514. float *outbuf = dz->sampbuf[1];
  1515. float *inbuf = dz->sampbuf[0];
  1516. double z;
  1517. double thisgain;
  1518. if(passno == 0) {
  1519. gain[cnt] = get_gain(dz);
  1520. thisgain = gain[cnt];
  1521. while(i < inmsampsize) {
  1522. k = i*dz->infile->channels;
  1523. for(n=0;n<dz->infile->channels;n++) {
  1524. val = inbuf[k];
  1525. nextval = inbuf[k+dz->infile->channels];
  1526. diff = nextval - val;
  1527. z = val + ((double)diff * part);
  1528. z = (z * thisgain);
  1529. z += outbuf[j];
  1530. // *maxsamp = max(*maxsamp,abs(z));
  1531. *maxsamp = max(*maxsamp,fabs(z));
  1532. outbuf[j++] = (float)z;
  1533. k++;
  1534. }
  1535. d += dz->param[ITER_SSTEP];
  1536. i = (int)d; /* TRUNCATE */
  1537. part = d - (double)i;
  1538. }
  1539. pshift[cnt] = get_pshift(dz);
  1540. dz->param[ITER_SSTEP] = pshift[cnt];
  1541. } else {
  1542. thisgain = gain[cnt];
  1543. while(i < inmsampsize) {
  1544. k = i*dz->infile->channels;
  1545. for(n=0;n<dz->infile->channels;n++) {
  1546. val = inbuf[k];
  1547. nextval = inbuf[k+dz->infile->channels];
  1548. diff = nextval - val;
  1549. z = val + ((double)diff * part);
  1550. if(iterating)
  1551. z = (z * thisgain);
  1552. z += outbuf[j];
  1553. outbuf[j++] = (float)z;
  1554. k++;
  1555. }
  1556. d += dz->param[ITER_SSTEP];
  1557. i = (int)d; /* TRUNCATE */
  1558. part = d - (double)i;
  1559. }
  1560. dz->param[ITER_SSTEP] = pshift[cnt];
  1561. }
  1562. return(j);
  1563. }
  1564. /**************************** FIXA_ITER ***************************/
  1565. //TW COMPLETELY UPDATED FUNCTION : (flt-converted)
  1566. int fixa_iter(int cnt,int passno,double *gain,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz)
  1567. {
  1568. register int i, j = local_write_start;
  1569. float *outbuf = dz->sampbuf[1];
  1570. float *inbuf = dz->sampbuf[0];
  1571. double z;
  1572. if(passno ==0) {
  1573. for(i=0; i < inmsampsize; i++) {
  1574. z = outbuf[j] + inbuf[i];
  1575. *maxsamp = max(*maxsamp,fabs(z));
  1576. outbuf[j] = (float)z;
  1577. j++;
  1578. }
  1579. } else {
  1580. for(i=0; i < inmsampsize; i++) {
  1581. if(iterating)
  1582. z = outbuf[j] + (inbuf[i] * gain[cnt]);
  1583. else
  1584. z = outbuf[j] + inbuf[i];
  1585. outbuf[j] = (float)z;
  1586. j++;
  1587. }
  1588. }
  1589. return(j);
  1590. }
  1591. /**************************** FIXA_ITER_STEREO ***************************/
  1592. //TW COMPLETELY UPDATED FUNCTION : (flt-converted)
  1593. int fixa_iter_stereo(int cnt,int passno,double *gain,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz)
  1594. {
  1595. register int i, j = local_write_start, k;
  1596. int n;
  1597. float *outbuf = dz->sampbuf[1];
  1598. float *inbuf = dz->sampbuf[0];
  1599. double z;
  1600. if(passno == 0) {
  1601. for(i=0; i < inmsampsize; i++) {
  1602. k = i*dz->infile->channels;
  1603. for(n=0;n<dz->infile->channels;n++) {
  1604. z = outbuf[j] + inbuf[k++];
  1605. *maxsamp = max(*maxsamp,fabs(z));
  1606. outbuf[j] = (float)z;
  1607. j++;
  1608. }
  1609. }
  1610. } else {
  1611. for(i=0; i < inmsampsize; i++) {
  1612. k = i*dz->infile->channels;
  1613. for(n=0;n<dz->infile->channels;n++) {
  1614. if(iterating)
  1615. z = outbuf[j] + (inbuf[k++] * gain[cnt]);
  1616. else
  1617. z = outbuf[j] + inbuf[k++];
  1618. outbuf[j] = (float)z;
  1619. j++;
  1620. }
  1621. }
  1622. }
  1623. return(j);
  1624. }
  1625. /**************************** FIXA_ITER_SHIFT_INTERP ***************************/
  1626. //TW COMPLETELY UPDATED FUNCTION : (flt-converted)
  1627. int fixa_iter_shift_interp(int cnt,int passno,double *gain,double *pshift,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz)
  1628. {
  1629. register int i = 0, j = local_write_start;
  1630. double d = 0.0, part = 0.0;
  1631. float val, nextval, diff;
  1632. float *outbuf = dz->sampbuf[1];
  1633. float *inbuf = dz->sampbuf[0];
  1634. double z;
  1635. if(passno == 0) {
  1636. while(i < inmsampsize) {
  1637. val = inbuf[i++];
  1638. nextval = inbuf[i];
  1639. diff = nextval - val;
  1640. z = val + ((double)diff * part);
  1641. z += outbuf[j];
  1642. *maxsamp = max(*maxsamp,fabs(z));
  1643. outbuf[j++] = (float)z;
  1644. d += dz->param[ITER_SSTEP];
  1645. i = (int)d; /* TRUNCATE */
  1646. part = d - (double)i;
  1647. }
  1648. pshift[cnt] = get_pshift(dz);
  1649. } else {
  1650. while(i < inmsampsize) {
  1651. val = inbuf[i++];
  1652. nextval = inbuf[i];
  1653. diff = nextval - val;
  1654. z = val + ((double)diff * part);
  1655. if(iterating)
  1656. z = (z * gain[cnt]);
  1657. z += outbuf[j];
  1658. outbuf[j++] = (float)z;
  1659. d += dz->param[ITER_SSTEP];
  1660. i = (int)d; /* TRUNCATE */
  1661. part = d - (double)i;
  1662. }
  1663. }
  1664. dz->param[ITER_SSTEP] = pshift[cnt];
  1665. return(j);
  1666. }
  1667. /*********************** FIXA_ITER_SHIFT_INTERP_STEREO *************************/
  1668. //TW COMPLETELY UPDATED FUNCTION : (flt-converted)
  1669. int fixa_iter_shift_interp_stereo(int cnt,int passno,double *gain,double *pshift,int local_write_start,int inmsampsize,double level,double *maxsamp,int iterating,dataptr dz)
  1670. {
  1671. register int i = 0, j = local_write_start, k;
  1672. int n;
  1673. double d = 0.0, part = 0.0;
  1674. float val, nextval, diff;
  1675. float *outbuf = dz->sampbuf[1];
  1676. float *inbuf = dz->sampbuf[0];
  1677. double z;
  1678. if(passno == 0) {
  1679. while(i < inmsampsize) {
  1680. k = i*dz->infile->channels;
  1681. for(n=0;n<dz->infile->channels;n++) {
  1682. val = inbuf[k];
  1683. nextval = inbuf[k+dz->infile->channels];
  1684. diff = nextval - val;
  1685. z = val + ((double)diff * part);
  1686. z += outbuf[j];
  1687. *maxsamp = max(*maxsamp,fabs(z));
  1688. outbuf[j++] = (float)z;
  1689. k++;
  1690. }
  1691. d += dz->param[ITER_SSTEP];
  1692. i = (int)d; /* TRUNCATE */
  1693. part = d - (double)i;
  1694. }
  1695. pshift[cnt] = get_pshift(dz);
  1696. } else {
  1697. while(i < inmsampsize) {
  1698. k = i*dz->infile->channels;
  1699. for(n=0;n<dz->infile->channels;n++) {
  1700. val = inbuf[k];
  1701. nextval = inbuf[k+dz->infile->channels];
  1702. diff = nextval - val;
  1703. z = val + ((double)diff * part);
  1704. if(iterating)
  1705. z = (z * gain[cnt]);
  1706. z += outbuf[j];
  1707. outbuf[j++] = (float)z;
  1708. k++;
  1709. }
  1710. d += dz->param[ITER_SSTEP];
  1711. i = (int)d; /* TRUNCATE */
  1712. part = d - (double)i;
  1713. }
  1714. }
  1715. dz->param[ITER_SSTEP] = pshift[cnt];
  1716. return(j);
  1717. }
  1718. /******************************** GET_GAIN *****************************/
  1719. double get_gain(dataptr dz)
  1720. {
  1721. double scatter;
  1722. double newlgain = dz->param[ITER_GAIN];
  1723. if (dz->param[ITER_ASCAT] > 0.0) {
  1724. scatter = drand48() * dz->param[ITER_ASCAT];
  1725. scatter = 1.0 - scatter;
  1726. newlgain = scatter * (double)dz->param[ITER_GAIN];
  1727. }
  1728. return(newlgain);
  1729. }
  1730. /******************************** GET_PSHIFT *****************************/
  1731. double get_pshift(dataptr dz)
  1732. {
  1733. double scatter;
  1734. scatter = (drand48() * 2.0) - 1.0;
  1735. scatter *= dz->param[ITER_PSCAT];
  1736. return(pow(2.0,scatter * OCTAVES_PER_SEMITONE));
  1737. }
  1738. /*************************** CREATE_FRITERBUFS ***************************/
  1739. int create_friterbufs(double maxpscat,dataptr dz)
  1740. {
  1741. size_t bigbufsize, seccnt;
  1742. double k;
  1743. /* int */ size_t extra_space, infile_space = dz->insams[0], big_buffer_size;
  1744. int overflowsize /*, seccnt*/;
  1745. size_t framesize = F_SECSIZE * sizeof(float) * dz->infile->channels;
  1746. size_t bigchunk, min_bufsize;
  1747. if(dz->param[ITER_PSCAT] > 0.0) {
  1748. infile_space += dz->infile->channels; /* 1 */
  1749. k = pow(2.0,maxpscat * OCTAVES_PER_SEMITONE);
  1750. overflowsize = (round((double)(dz->insams[0] * k)+1.0));
  1751. overflowsize += ITER_SAFETY; /* 2 */
  1752. } else
  1753. overflowsize = dz->insams[0];
  1754. if((seccnt = infile_space/F_SECSIZE) * F_SECSIZE < infile_space)
  1755. seccnt++;
  1756. infile_space = F_SECSIZE * seccnt;
  1757. extra_space = infile_space + overflowsize;
  1758. extra_space += infile_space;
  1759. min_bufsize = (extra_space * sizeof(float)) + framesize;
  1760. bigchunk = (size_t)Malloc(-1);
  1761. if(bigchunk < min_bufsize)
  1762. bigbufsize = framesize;
  1763. else {
  1764. bigbufsize = bigchunk - extra_space*sizeof(float);
  1765. bigbufsize = (bigbufsize/framesize) * framesize;
  1766. }
  1767. dz->buflen = (int)(bigbufsize/sizeof(float));
  1768. big_buffer_size = (size_t)(dz->buflen + extra_space);
  1769. if((dz->bigbuf = (float *)Malloc(big_buffer_size * sizeof(float)))==NULL) {
  1770. sprintf(errstr, "INSUFFICIENT MEMORY to create sound buffers.\n");
  1771. return(MEMORY_ERROR);
  1772. }
  1773. dz->sbufptr[0] = dz->sampbuf[0] = dz->bigbuf;
  1774. dz->sbufptr[1] = dz->sampbuf[1] = dz->sampbuf[0] + infile_space;
  1775. dz->sbufptr[2] = dz->sampbuf[2] = dz->sampbuf[1] + dz->buflen;
  1776. dz->sbufptr[3] = dz->sampbuf[3] = dz->sampbuf[2] + overflowsize;
  1777. memset((char *)dz->sampbuf[0],0,(size_t)(infile_space * sizeof(float)));
  1778. memset((char *)dz->sampbuf[1],0,(size_t)(dz->buflen * sizeof(float)));
  1779. memset((char *)dz->sampbuf[2],0,(size_t)(overflowsize * sizeof(float)));
  1780. memset((char *)dz->sampbuf[3],0,(size_t)infile_space * sizeof(float));
  1781. return(FINISHED);
  1782. }
  1783. /**************************** FRITERATE_PREPROCESS ******************************/
  1784. int friterate_preprocess(dataptr dz)
  1785. {
  1786. int exit_status;
  1787. double maxrand, maxpscat, mindelay, temp;
  1788. int is_unity_gain = FALSE;
  1789. int mindelay_samps;
  1790. if(dz->iparam[ITER_RRSEED] > 0)
  1791. srand((int)dz->iparam[ITER_RRSEED]);
  1792. else
  1793. initrand48();
  1794. if((exit_status = get_maxvalue_of_rand(&maxrand,dz))<0)
  1795. return(exit_status);
  1796. if((exit_status = get_maxvalue_of_pscat(&maxpscat,dz))<0)
  1797. return(exit_status);
  1798. if((exit_status = get_minvalue_of_delay(&mindelay,dz))<0)
  1799. return(exit_status);
  1800. mindelay_samps = round(mindelay * (double)dz->infile->srate);
  1801. dz->iparam[CHUNKSTART] = (int)round(dz->param[CHUNKSTART] * dz->infile->srate) * dz->infile->channels;
  1802. dz->iparam[CHUNKEND] = (int)round(dz->param[CHUNKEND] * dz->infile->srate) * dz->infile->channels;
  1803. if(dz->param[CHUNKSTART] > dz->param[CHUNKEND]) {
  1804. temp = dz->param[CHUNKSTART];
  1805. dz->param[CHUNKSTART] = dz->param[CHUNKEND];
  1806. dz->param[CHUNKEND] = temp;
  1807. }
  1808. if(dz->iparam[CHUNKEND] - dz->iparam[CHUNKSTART] <= ITX_SPLICELEN * dz->infile->channels * 2) {
  1809. sprintf(errstr,"FROZEN SEGMENT (%d samples) TOO SHORT FOR SPLICING (needs %d samples)\n",
  1810. dz->iparam[CHUNKEND] - dz->iparam[CHUNKSTART],ITX_SPLICELEN * dz->infile->channels * 2);
  1811. return(DATA_ERROR);
  1812. }
  1813. if(dz->iparam[CHUNKEND] - dz->iparam[CHUNKSTART] < mindelay_samps * dz->infile->channels) {
  1814. sprintf(errstr,"FROZEN SEGMENT (%d samples) TOO SHORT FOR (MINIMUM) DELAY TIME SPECIFIED (%d samples)\n",
  1815. dz->iparam[CHUNKEND] - dz->iparam[CHUNKSTART],mindelay_samps * dz->infile->channels);
  1816. return(DATA_ERROR);
  1817. }
  1818. set_default_delays(dz);
  1819. dz->param[ITER_SSTEP] = 1.0; /* 1st sound is exact copy of orig */
  1820. is_unity_gain = TRUE;
  1821. setup_iter_process_type(is_unity_gain,dz);
  1822. return create_friterbufs(maxpscat,dz);
  1823. }
  1824. /*************************** GET_MAXVALUE_OF_RAND ****************************/
  1825. int get_maxvalue_of_rand(double *maxrand,dataptr dz)
  1826. {
  1827. int exit_status;
  1828. if(dz->brksize[ITER_RANDOM]) {
  1829. if((exit_status = get_maxvalue_in_brktable(maxrand,ITER_RANDOM,dz))<0)
  1830. return(exit_status);
  1831. } else
  1832. *maxrand = dz->param[ITER_RANDOM];
  1833. return(FINISHED);
  1834. }
  1835. /************************* GET_MAXVALUE_OF_PSCAT ****************************/
  1836. int get_maxvalue_of_pscat(double *maxpscat,dataptr dz)
  1837. {
  1838. int exit_status;
  1839. if(dz->brksize[ITER_PSCAT]) {
  1840. if((exit_status = get_maxvalue_in_brktable(maxpscat,ITER_PSCAT,dz))<0)
  1841. return(exit_status);
  1842. } else
  1843. *maxpscat = dz->param[ITER_PSCAT];
  1844. return(FINISHED);
  1845. }
  1846. /************************* GET_MINVALUE_OF_DELAY ****************************/
  1847. int get_minvalue_of_delay(double *mindelay,dataptr dz)
  1848. {
  1849. int exit_status;
  1850. if(dz->brksize[ITER_DELAY]) {
  1851. if((exit_status = get_minvalue_in_brktable(mindelay,ITER_DELAY,dz))<0)
  1852. return(exit_status);
  1853. } else
  1854. *mindelay = dz->param[ITER_DELAY];
  1855. return(FINISHED);
  1856. }
  1857. /*********************** SET_DEFAULT_DELAYS ****************************/
  1858. void set_default_delays(dataptr dz)
  1859. {
  1860. if(!dz->brksize[ITER_DELAY])
  1861. dz->iparam[ITER_MSAMPDEL] = round(dz->param[ITER_DELAY] * (double)dz->infile->srate);
  1862. }
  1863. /********************* SETUP_ITER_PROCESS_TYPE ********************************/
  1864. void setup_iter_process_type(int is_unity_gain,dataptr dz)
  1865. {
  1866. if(dz->param[ITER_PSCAT] > 0.0) {
  1867. if(dz->infile->channels>1)
  1868. dz->iparam[ITER_PROCESS] = ST_INTP_SHIFT;
  1869. else
  1870. dz->iparam[ITER_PROCESS] = MN_INTP_SHIFT;
  1871. } else {
  1872. if(dz->infile->channels>1)
  1873. dz->iparam[ITER_PROCESS] = STEREO;
  1874. else
  1875. dz->iparam[ITER_PROCESS] = MONO;
  1876. }
  1877. if(flteq(dz->param[ITER_ASCAT],0.0))
  1878. dz->iparam[ITER_PROCESS] += FIXED_AMP;
  1879. return;
  1880. }
  1881. #if 0
  1882. #ifndef round
  1883. int round(double a) {
  1884. return (int)floor(a + 0.5);
  1885. }
  1886. #endif
  1887. #endif