1 1.1 mrg /* Implementation of the MINLOC intrinsic 2 1.1.1.4 mrg Copyright (C) 2002-2024 Free Software Foundation, Inc. 3 1.1 mrg Contributed by Paul Brook <paul (at) nowt.org> 4 1.1 mrg 5 1.1 mrg This file is part of the GNU Fortran runtime library (libgfortran). 6 1.1 mrg 7 1.1 mrg Libgfortran is free software; you can redistribute it and/or 8 1.1 mrg modify it under the terms of the GNU General Public 9 1.1 mrg License as published by the Free Software Foundation; either 10 1.1 mrg version 3 of the License, or (at your option) any later version. 11 1.1 mrg 12 1.1 mrg Libgfortran is distributed in the hope that it will be useful, 13 1.1 mrg but WITHOUT ANY WARRANTY; without even the implied warranty of 14 1.1 mrg MERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See the 15 1.1 mrg GNU General Public License for more details. 16 1.1 mrg 17 1.1 mrg Under Section 7 of GPL version 3, you are granted additional 18 1.1 mrg permissions described in the GCC Runtime Library Exception, version 19 1.1 mrg 3.1, as published by the Free Software Foundation. 20 1.1 mrg 21 1.1 mrg You should have received a copy of the GNU General Public License and 22 1.1 mrg a copy of the GCC Runtime Library Exception along with this program; 23 1.1 mrg see the files COPYING3 and COPYING.RUNTIME respectively. If not, see 24 1.1 mrg <http://www.gnu.org/licenses/>. */ 25 1.1 mrg 26 1.1 mrg #include "libgfortran.h" 27 1.1 mrg #include <assert.h> 28 1.1 mrg 29 1.1 mrg 30 1.1 mrg #if defined (HAVE_GFC_REAL_16) && defined (HAVE_GFC_INTEGER_8) 31 1.1 mrg 32 1.1 mrg #define HAVE_BACK_ARG 1 33 1.1 mrg 34 1.1 mrg 35 1.1 mrg extern void minloc1_8_r16 (gfc_array_i8 * const restrict, 36 1.1 mrg gfc_array_r16 * const restrict, const index_type * const restrict, GFC_LOGICAL_4 back); 37 1.1 mrg export_proto(minloc1_8_r16); 38 1.1 mrg 39 1.1 mrg void 40 1.1 mrg minloc1_8_r16 (gfc_array_i8 * const restrict retarray, 41 1.1 mrg gfc_array_r16 * const restrict array, 42 1.1 mrg const index_type * const restrict pdim, GFC_LOGICAL_4 back) 43 1.1 mrg { 44 1.1 mrg index_type count[GFC_MAX_DIMENSIONS]; 45 1.1 mrg index_type extent[GFC_MAX_DIMENSIONS]; 46 1.1 mrg index_type sstride[GFC_MAX_DIMENSIONS]; 47 1.1 mrg index_type dstride[GFC_MAX_DIMENSIONS]; 48 1.1 mrg const GFC_REAL_16 * restrict base; 49 1.1 mrg GFC_INTEGER_8 * restrict dest; 50 1.1 mrg index_type rank; 51 1.1 mrg index_type n; 52 1.1 mrg index_type len; 53 1.1 mrg index_type delta; 54 1.1 mrg index_type dim; 55 1.1 mrg int continue_loop; 56 1.1 mrg 57 1.1 mrg /* Make dim zero based to avoid confusion. */ 58 1.1 mrg rank = GFC_DESCRIPTOR_RANK (array) - 1; 59 1.1 mrg dim = (*pdim) - 1; 60 1.1 mrg 61 1.1 mrg if (unlikely (dim < 0 || dim > rank)) 62 1.1 mrg { 63 1.1 mrg runtime_error ("Dim argument incorrect in MINLOC intrinsic: " 64 1.1 mrg "is %ld, should be between 1 and %ld", 65 1.1 mrg (long int) dim + 1, (long int) rank + 1); 66 1.1 mrg } 67 1.1 mrg 68 1.1 mrg len = GFC_DESCRIPTOR_EXTENT(array,dim); 69 1.1 mrg if (len < 0) 70 1.1 mrg len = 0; 71 1.1 mrg delta = GFC_DESCRIPTOR_STRIDE(array,dim); 72 1.1 mrg 73 1.1 mrg for (n = 0; n < dim; n++) 74 1.1 mrg { 75 1.1 mrg sstride[n] = GFC_DESCRIPTOR_STRIDE(array,n); 76 1.1 mrg extent[n] = GFC_DESCRIPTOR_EXTENT(array,n); 77 1.1 mrg 78 1.1 mrg if (extent[n] < 0) 79 1.1 mrg extent[n] = 0; 80 1.1 mrg } 81 1.1 mrg for (n = dim; n < rank; n++) 82 1.1 mrg { 83 1.1 mrg sstride[n] = GFC_DESCRIPTOR_STRIDE(array, n + 1); 84 1.1 mrg extent[n] = GFC_DESCRIPTOR_EXTENT(array, n + 1); 85 1.1 mrg 86 1.1 mrg if (extent[n] < 0) 87 1.1 mrg extent[n] = 0; 88 1.1 mrg } 89 1.1 mrg 90 1.1 mrg if (retarray->base_addr == NULL) 91 1.1 mrg { 92 1.1 mrg size_t alloc_size, str; 93 1.1 mrg 94 1.1 mrg for (n = 0; n < rank; n++) 95 1.1 mrg { 96 1.1 mrg if (n == 0) 97 1.1 mrg str = 1; 98 1.1 mrg else 99 1.1 mrg str = GFC_DESCRIPTOR_STRIDE(retarray,n-1) * extent[n-1]; 100 1.1 mrg 101 1.1 mrg GFC_DIMENSION_SET(retarray->dim[n], 0, extent[n] - 1, str); 102 1.1 mrg 103 1.1 mrg } 104 1.1 mrg 105 1.1 mrg retarray->offset = 0; 106 1.1 mrg retarray->dtype.rank = rank; 107 1.1 mrg 108 1.1 mrg alloc_size = GFC_DESCRIPTOR_STRIDE(retarray,rank-1) * extent[rank-1]; 109 1.1 mrg 110 1.1 mrg retarray->base_addr = xmallocarray (alloc_size, sizeof (GFC_INTEGER_8)); 111 1.1 mrg if (alloc_size == 0) 112 1.1.1.4 mrg return; 113 1.1 mrg } 114 1.1 mrg else 115 1.1 mrg { 116 1.1 mrg if (rank != GFC_DESCRIPTOR_RANK (retarray)) 117 1.1 mrg runtime_error ("rank of return array incorrect in" 118 1.1 mrg " MINLOC intrinsic: is %ld, should be %ld", 119 1.1 mrg (long int) (GFC_DESCRIPTOR_RANK (retarray)), 120 1.1 mrg (long int) rank); 121 1.1 mrg 122 1.1 mrg if (unlikely (compile_options.bounds_check)) 123 1.1 mrg bounds_ifunction_return ((array_t *) retarray, extent, 124 1.1 mrg "return value", "MINLOC"); 125 1.1 mrg } 126 1.1 mrg 127 1.1 mrg for (n = 0; n < rank; n++) 128 1.1 mrg { 129 1.1 mrg count[n] = 0; 130 1.1 mrg dstride[n] = GFC_DESCRIPTOR_STRIDE(retarray,n); 131 1.1 mrg if (extent[n] <= 0) 132 1.1 mrg return; 133 1.1 mrg } 134 1.1 mrg 135 1.1 mrg base = array->base_addr; 136 1.1 mrg dest = retarray->base_addr; 137 1.1 mrg 138 1.1 mrg continue_loop = 1; 139 1.1 mrg while (continue_loop) 140 1.1 mrg { 141 1.1 mrg const GFC_REAL_16 * restrict src; 142 1.1 mrg GFC_INTEGER_8 result; 143 1.1 mrg src = base; 144 1.1 mrg { 145 1.1 mrg 146 1.1 mrg GFC_REAL_16 minval; 147 1.1 mrg #if defined (GFC_REAL_16_INFINITY) 148 1.1 mrg minval = GFC_REAL_16_INFINITY; 149 1.1 mrg #else 150 1.1 mrg minval = GFC_REAL_16_HUGE; 151 1.1 mrg #endif 152 1.1 mrg result = 1; 153 1.1 mrg if (len <= 0) 154 1.1 mrg *dest = 0; 155 1.1 mrg else 156 1.1 mrg { 157 1.1 mrg #if ! defined HAVE_BACK_ARG 158 1.1 mrg for (n = 0; n < len; n++, src += delta) 159 1.1 mrg { 160 1.1 mrg #endif 161 1.1 mrg 162 1.1 mrg #if defined (GFC_REAL_16_QUIET_NAN) 163 1.1 mrg for (n = 0; n < len; n++, src += delta) 164 1.1 mrg { 165 1.1 mrg if (*src <= minval) 166 1.1 mrg { 167 1.1 mrg minval = *src; 168 1.1 mrg result = (GFC_INTEGER_8)n + 1; 169 1.1 mrg break; 170 1.1 mrg } 171 1.1 mrg } 172 1.1 mrg #else 173 1.1 mrg n = 0; 174 1.1 mrg #endif 175 1.1 mrg if (back) 176 1.1 mrg for (; n < len; n++, src += delta) 177 1.1 mrg { 178 1.1 mrg if (unlikely (*src <= minval)) 179 1.1 mrg { 180 1.1 mrg minval = *src; 181 1.1 mrg result = (GFC_INTEGER_8)n + 1; 182 1.1 mrg } 183 1.1 mrg } 184 1.1 mrg else 185 1.1 mrg for (; n < len; n++, src += delta) 186 1.1 mrg { 187 1.1 mrg if (unlikely (*src < minval)) 188 1.1 mrg { 189 1.1 mrg minval = *src; 190 1.1 mrg result = (GFC_INTEGER_8) n + 1; 191 1.1 mrg } 192 1.1 mrg } 193 1.1 mrg 194 1.1 mrg *dest = result; 195 1.1 mrg } 196 1.1 mrg } 197 1.1 mrg /* Advance to the next element. */ 198 1.1 mrg count[0]++; 199 1.1 mrg base += sstride[0]; 200 1.1 mrg dest += dstride[0]; 201 1.1 mrg n = 0; 202 1.1 mrg while (count[n] == extent[n]) 203 1.1 mrg { 204 1.1 mrg /* When we get to the end of a dimension, reset it and increment 205 1.1 mrg the next dimension. */ 206 1.1 mrg count[n] = 0; 207 1.1 mrg /* We could precalculate these products, but this is a less 208 1.1 mrg frequently used path so probably not worth it. */ 209 1.1 mrg base -= sstride[n] * extent[n]; 210 1.1 mrg dest -= dstride[n] * extent[n]; 211 1.1 mrg n++; 212 1.1 mrg if (n >= rank) 213 1.1 mrg { 214 1.1 mrg /* Break out of the loop. */ 215 1.1 mrg continue_loop = 0; 216 1.1 mrg break; 217 1.1 mrg } 218 1.1 mrg else 219 1.1 mrg { 220 1.1 mrg count[n]++; 221 1.1 mrg base += sstride[n]; 222 1.1 mrg dest += dstride[n]; 223 1.1 mrg } 224 1.1 mrg } 225 1.1 mrg } 226 1.1 mrg } 227 1.1 mrg 228 1.1 mrg 229 1.1 mrg extern void mminloc1_8_r16 (gfc_array_i8 * const restrict, 230 1.1 mrg gfc_array_r16 * const restrict, const index_type * const restrict, 231 1.1 mrg gfc_array_l1 * const restrict, GFC_LOGICAL_4 back); 232 1.1 mrg export_proto(mminloc1_8_r16); 233 1.1 mrg 234 1.1 mrg void 235 1.1 mrg mminloc1_8_r16 (gfc_array_i8 * const restrict retarray, 236 1.1 mrg gfc_array_r16 * const restrict array, 237 1.1 mrg const index_type * const restrict pdim, 238 1.1 mrg gfc_array_l1 * const restrict mask, GFC_LOGICAL_4 back) 239 1.1 mrg { 240 1.1 mrg index_type count[GFC_MAX_DIMENSIONS]; 241 1.1 mrg index_type extent[GFC_MAX_DIMENSIONS]; 242 1.1 mrg index_type sstride[GFC_MAX_DIMENSIONS]; 243 1.1 mrg index_type dstride[GFC_MAX_DIMENSIONS]; 244 1.1 mrg index_type mstride[GFC_MAX_DIMENSIONS]; 245 1.1 mrg GFC_INTEGER_8 * restrict dest; 246 1.1 mrg const GFC_REAL_16 * restrict base; 247 1.1 mrg const GFC_LOGICAL_1 * restrict mbase; 248 1.1 mrg index_type rank; 249 1.1 mrg index_type dim; 250 1.1 mrg index_type n; 251 1.1 mrg index_type len; 252 1.1 mrg index_type delta; 253 1.1 mrg index_type mdelta; 254 1.1 mrg int mask_kind; 255 1.1 mrg 256 1.1 mrg if (mask == NULL) 257 1.1 mrg { 258 1.1 mrg #ifdef HAVE_BACK_ARG 259 1.1 mrg minloc1_8_r16 (retarray, array, pdim, back); 260 1.1 mrg #else 261 1.1 mrg minloc1_8_r16 (retarray, array, pdim); 262 1.1 mrg #endif 263 1.1 mrg return; 264 1.1 mrg } 265 1.1 mrg 266 1.1 mrg dim = (*pdim) - 1; 267 1.1 mrg rank = GFC_DESCRIPTOR_RANK (array) - 1; 268 1.1 mrg 269 1.1 mrg 270 1.1 mrg if (unlikely (dim < 0 || dim > rank)) 271 1.1 mrg { 272 1.1 mrg runtime_error ("Dim argument incorrect in MINLOC intrinsic: " 273 1.1 mrg "is %ld, should be between 1 and %ld", 274 1.1 mrg (long int) dim + 1, (long int) rank + 1); 275 1.1 mrg } 276 1.1 mrg 277 1.1 mrg len = GFC_DESCRIPTOR_EXTENT(array,dim); 278 1.1.1.4 mrg if (len < 0) 279 1.1.1.4 mrg len = 0; 280 1.1 mrg 281 1.1 mrg mbase = mask->base_addr; 282 1.1 mrg 283 1.1 mrg mask_kind = GFC_DESCRIPTOR_SIZE (mask); 284 1.1 mrg 285 1.1 mrg if (mask_kind == 1 || mask_kind == 2 || mask_kind == 4 || mask_kind == 8 286 1.1 mrg #ifdef HAVE_GFC_LOGICAL_16 287 1.1 mrg || mask_kind == 16 288 1.1 mrg #endif 289 1.1 mrg ) 290 1.1 mrg mbase = GFOR_POINTER_TO_L1 (mbase, mask_kind); 291 1.1 mrg else 292 1.1 mrg runtime_error ("Funny sized logical array"); 293 1.1 mrg 294 1.1 mrg delta = GFC_DESCRIPTOR_STRIDE(array,dim); 295 1.1 mrg mdelta = GFC_DESCRIPTOR_STRIDE_BYTES(mask,dim); 296 1.1 mrg 297 1.1 mrg for (n = 0; n < dim; n++) 298 1.1 mrg { 299 1.1 mrg sstride[n] = GFC_DESCRIPTOR_STRIDE(array,n); 300 1.1 mrg mstride[n] = GFC_DESCRIPTOR_STRIDE_BYTES(mask,n); 301 1.1 mrg extent[n] = GFC_DESCRIPTOR_EXTENT(array,n); 302 1.1 mrg 303 1.1 mrg if (extent[n] < 0) 304 1.1 mrg extent[n] = 0; 305 1.1 mrg 306 1.1 mrg } 307 1.1 mrg for (n = dim; n < rank; n++) 308 1.1 mrg { 309 1.1 mrg sstride[n] = GFC_DESCRIPTOR_STRIDE(array,n + 1); 310 1.1 mrg mstride[n] = GFC_DESCRIPTOR_STRIDE_BYTES(mask, n + 1); 311 1.1 mrg extent[n] = GFC_DESCRIPTOR_EXTENT(array, n + 1); 312 1.1 mrg 313 1.1 mrg if (extent[n] < 0) 314 1.1 mrg extent[n] = 0; 315 1.1 mrg } 316 1.1 mrg 317 1.1 mrg if (retarray->base_addr == NULL) 318 1.1 mrg { 319 1.1 mrg size_t alloc_size, str; 320 1.1 mrg 321 1.1 mrg for (n = 0; n < rank; n++) 322 1.1 mrg { 323 1.1 mrg if (n == 0) 324 1.1 mrg str = 1; 325 1.1 mrg else 326 1.1 mrg str= GFC_DESCRIPTOR_STRIDE(retarray,n-1) * extent[n-1]; 327 1.1 mrg 328 1.1 mrg GFC_DIMENSION_SET(retarray->dim[n], 0, extent[n] - 1, str); 329 1.1 mrg 330 1.1 mrg } 331 1.1 mrg 332 1.1 mrg alloc_size = GFC_DESCRIPTOR_STRIDE(retarray,rank-1) * extent[rank-1]; 333 1.1 mrg 334 1.1 mrg retarray->offset = 0; 335 1.1 mrg retarray->dtype.rank = rank; 336 1.1 mrg 337 1.1.1.4 mrg retarray->base_addr = xmallocarray (alloc_size, sizeof (GFC_INTEGER_8)); 338 1.1 mrg if (alloc_size == 0) 339 1.1.1.4 mrg return; 340 1.1 mrg } 341 1.1 mrg else 342 1.1 mrg { 343 1.1 mrg if (rank != GFC_DESCRIPTOR_RANK (retarray)) 344 1.1 mrg runtime_error ("rank of return array incorrect in MINLOC intrinsic"); 345 1.1 mrg 346 1.1 mrg if (unlikely (compile_options.bounds_check)) 347 1.1 mrg { 348 1.1 mrg bounds_ifunction_return ((array_t *) retarray, extent, 349 1.1 mrg "return value", "MINLOC"); 350 1.1 mrg bounds_equal_extents ((array_t *) mask, (array_t *) array, 351 1.1 mrg "MASK argument", "MINLOC"); 352 1.1 mrg } 353 1.1 mrg } 354 1.1 mrg 355 1.1 mrg for (n = 0; n < rank; n++) 356 1.1 mrg { 357 1.1 mrg count[n] = 0; 358 1.1 mrg dstride[n] = GFC_DESCRIPTOR_STRIDE(retarray,n); 359 1.1 mrg if (extent[n] <= 0) 360 1.1 mrg return; 361 1.1 mrg } 362 1.1 mrg 363 1.1 mrg dest = retarray->base_addr; 364 1.1 mrg base = array->base_addr; 365 1.1 mrg 366 1.1 mrg while (base) 367 1.1 mrg { 368 1.1 mrg const GFC_REAL_16 * restrict src; 369 1.1 mrg const GFC_LOGICAL_1 * restrict msrc; 370 1.1 mrg GFC_INTEGER_8 result; 371 1.1 mrg src = base; 372 1.1 mrg msrc = mbase; 373 1.1 mrg { 374 1.1 mrg 375 1.1 mrg GFC_REAL_16 minval; 376 1.1 mrg #if defined (GFC_REAL_16_INFINITY) 377 1.1 mrg minval = GFC_REAL_16_INFINITY; 378 1.1 mrg #else 379 1.1 mrg minval = GFC_REAL_16_HUGE; 380 1.1 mrg #endif 381 1.1 mrg #if defined (GFC_REAL_16_QUIET_NAN) 382 1.1 mrg GFC_INTEGER_8 result2 = 0; 383 1.1 mrg #endif 384 1.1 mrg result = 0; 385 1.1 mrg for (n = 0; n < len; n++, src += delta, msrc += mdelta) 386 1.1 mrg { 387 1.1 mrg 388 1.1 mrg if (*msrc) 389 1.1 mrg { 390 1.1 mrg #if defined (GFC_REAL_16_QUIET_NAN) 391 1.1 mrg if (!result2) 392 1.1 mrg result2 = (GFC_INTEGER_8)n + 1; 393 1.1 mrg if (*src <= minval) 394 1.1 mrg #endif 395 1.1 mrg { 396 1.1 mrg minval = *src; 397 1.1 mrg result = (GFC_INTEGER_8)n + 1; 398 1.1 mrg break; 399 1.1 mrg } 400 1.1 mrg } 401 1.1 mrg } 402 1.1 mrg #if defined (GFC_REAL_16_QUIET_NAN) 403 1.1 mrg if (unlikely (n >= len)) 404 1.1 mrg result = result2; 405 1.1 mrg else 406 1.1 mrg #endif 407 1.1 mrg if (back) 408 1.1 mrg for (; n < len; n++, src += delta, msrc += mdelta) 409 1.1 mrg { 410 1.1 mrg if (*msrc && unlikely (*src <= minval)) 411 1.1 mrg { 412 1.1 mrg minval = *src; 413 1.1 mrg result = (GFC_INTEGER_8)n + 1; 414 1.1 mrg } 415 1.1 mrg } 416 1.1 mrg else 417 1.1 mrg for (; n < len; n++, src += delta, msrc += mdelta) 418 1.1 mrg { 419 1.1 mrg if (*msrc && unlikely (*src < minval)) 420 1.1 mrg { 421 1.1 mrg minval = *src; 422 1.1 mrg result = (GFC_INTEGER_8) n + 1; 423 1.1 mrg } 424 1.1 mrg } 425 1.1 mrg *dest = result; 426 1.1 mrg } 427 1.1 mrg /* Advance to the next element. */ 428 1.1 mrg count[0]++; 429 1.1 mrg base += sstride[0]; 430 1.1 mrg mbase += mstride[0]; 431 1.1 mrg dest += dstride[0]; 432 1.1 mrg n = 0; 433 1.1 mrg while (count[n] == extent[n]) 434 1.1 mrg { 435 1.1 mrg /* When we get to the end of a dimension, reset it and increment 436 1.1 mrg the next dimension. */ 437 1.1 mrg count[n] = 0; 438 1.1 mrg /* We could precalculate these products, but this is a less 439 1.1 mrg frequently used path so probably not worth it. */ 440 1.1 mrg base -= sstride[n] * extent[n]; 441 1.1 mrg mbase -= mstride[n] * extent[n]; 442 1.1 mrg dest -= dstride[n] * extent[n]; 443 1.1 mrg n++; 444 1.1 mrg if (n >= rank) 445 1.1 mrg { 446 1.1 mrg /* Break out of the loop. */ 447 1.1 mrg base = NULL; 448 1.1 mrg break; 449 1.1 mrg } 450 1.1 mrg else 451 1.1 mrg { 452 1.1 mrg count[n]++; 453 1.1 mrg base += sstride[n]; 454 1.1 mrg mbase += mstride[n]; 455 1.1 mrg dest += dstride[n]; 456 1.1 mrg } 457 1.1 mrg } 458 1.1 mrg } 459 1.1 mrg } 460 1.1 mrg 461 1.1 mrg 462 1.1 mrg extern void sminloc1_8_r16 (gfc_array_i8 * const restrict, 463 1.1 mrg gfc_array_r16 * const restrict, const index_type * const restrict, 464 1.1 mrg GFC_LOGICAL_4 *, GFC_LOGICAL_4 back); 465 1.1 mrg export_proto(sminloc1_8_r16); 466 1.1 mrg 467 1.1 mrg void 468 1.1 mrg sminloc1_8_r16 (gfc_array_i8 * const restrict retarray, 469 1.1 mrg gfc_array_r16 * const restrict array, 470 1.1 mrg const index_type * const restrict pdim, 471 1.1 mrg GFC_LOGICAL_4 * mask, GFC_LOGICAL_4 back) 472 1.1 mrg { 473 1.1 mrg index_type count[GFC_MAX_DIMENSIONS]; 474 1.1 mrg index_type extent[GFC_MAX_DIMENSIONS]; 475 1.1 mrg index_type dstride[GFC_MAX_DIMENSIONS]; 476 1.1 mrg GFC_INTEGER_8 * restrict dest; 477 1.1 mrg index_type rank; 478 1.1 mrg index_type n; 479 1.1 mrg index_type dim; 480 1.1 mrg 481 1.1 mrg 482 1.1 mrg if (mask == NULL || *mask) 483 1.1 mrg { 484 1.1 mrg #ifdef HAVE_BACK_ARG 485 1.1 mrg minloc1_8_r16 (retarray, array, pdim, back); 486 1.1 mrg #else 487 1.1 mrg minloc1_8_r16 (retarray, array, pdim); 488 1.1 mrg #endif 489 1.1 mrg return; 490 1.1 mrg } 491 1.1 mrg /* Make dim zero based to avoid confusion. */ 492 1.1 mrg dim = (*pdim) - 1; 493 1.1 mrg rank = GFC_DESCRIPTOR_RANK (array) - 1; 494 1.1 mrg 495 1.1 mrg if (unlikely (dim < 0 || dim > rank)) 496 1.1 mrg { 497 1.1 mrg runtime_error ("Dim argument incorrect in MINLOC intrinsic: " 498 1.1 mrg "is %ld, should be between 1 and %ld", 499 1.1 mrg (long int) dim + 1, (long int) rank + 1); 500 1.1 mrg } 501 1.1 mrg 502 1.1 mrg for (n = 0; n < dim; n++) 503 1.1 mrg { 504 1.1 mrg extent[n] = GFC_DESCRIPTOR_EXTENT(array,n); 505 1.1 mrg 506 1.1 mrg if (extent[n] <= 0) 507 1.1 mrg extent[n] = 0; 508 1.1 mrg } 509 1.1 mrg 510 1.1 mrg for (n = dim; n < rank; n++) 511 1.1 mrg { 512 1.1 mrg extent[n] = 513 1.1 mrg GFC_DESCRIPTOR_EXTENT(array,n + 1); 514 1.1 mrg 515 1.1 mrg if (extent[n] <= 0) 516 1.1 mrg extent[n] = 0; 517 1.1 mrg } 518 1.1 mrg 519 1.1 mrg if (retarray->base_addr == NULL) 520 1.1 mrg { 521 1.1 mrg size_t alloc_size, str; 522 1.1 mrg 523 1.1 mrg for (n = 0; n < rank; n++) 524 1.1 mrg { 525 1.1 mrg if (n == 0) 526 1.1 mrg str = 1; 527 1.1 mrg else 528 1.1 mrg str = GFC_DESCRIPTOR_STRIDE(retarray,n-1) * extent[n-1]; 529 1.1 mrg 530 1.1 mrg GFC_DIMENSION_SET(retarray->dim[n], 0, extent[n] - 1, str); 531 1.1 mrg 532 1.1 mrg } 533 1.1 mrg 534 1.1 mrg retarray->offset = 0; 535 1.1 mrg retarray->dtype.rank = rank; 536 1.1 mrg 537 1.1 mrg alloc_size = GFC_DESCRIPTOR_STRIDE(retarray,rank-1) * extent[rank-1]; 538 1.1 mrg 539 1.1.1.4 mrg retarray->base_addr = xmallocarray (alloc_size, sizeof (GFC_INTEGER_8)); 540 1.1 mrg if (alloc_size == 0) 541 1.1.1.4 mrg return; 542 1.1 mrg } 543 1.1 mrg else 544 1.1 mrg { 545 1.1 mrg if (rank != GFC_DESCRIPTOR_RANK (retarray)) 546 1.1 mrg runtime_error ("rank of return array incorrect in" 547 1.1 mrg " MINLOC intrinsic: is %ld, should be %ld", 548 1.1 mrg (long int) (GFC_DESCRIPTOR_RANK (retarray)), 549 1.1 mrg (long int) rank); 550 1.1 mrg 551 1.1 mrg if (unlikely (compile_options.bounds_check)) 552 1.1 mrg { 553 1.1 mrg for (n=0; n < rank; n++) 554 1.1 mrg { 555 1.1 mrg index_type ret_extent; 556 1.1 mrg 557 1.1 mrg ret_extent = GFC_DESCRIPTOR_EXTENT(retarray,n); 558 1.1 mrg if (extent[n] != ret_extent) 559 1.1 mrg runtime_error ("Incorrect extent in return value of" 560 1.1 mrg " MINLOC intrinsic in dimension %ld:" 561 1.1 mrg " is %ld, should be %ld", (long int) n + 1, 562 1.1 mrg (long int) ret_extent, (long int) extent[n]); 563 1.1 mrg } 564 1.1 mrg } 565 1.1 mrg } 566 1.1 mrg 567 1.1 mrg for (n = 0; n < rank; n++) 568 1.1 mrg { 569 1.1 mrg count[n] = 0; 570 1.1 mrg dstride[n] = GFC_DESCRIPTOR_STRIDE(retarray,n); 571 1.1 mrg } 572 1.1 mrg 573 1.1 mrg dest = retarray->base_addr; 574 1.1 mrg 575 1.1 mrg while(1) 576 1.1 mrg { 577 1.1 mrg *dest = 0; 578 1.1 mrg count[0]++; 579 1.1 mrg dest += dstride[0]; 580 1.1 mrg n = 0; 581 1.1 mrg while (count[n] == extent[n]) 582 1.1 mrg { 583 1.1 mrg /* When we get to the end of a dimension, reset it and increment 584 1.1 mrg the next dimension. */ 585 1.1 mrg count[n] = 0; 586 1.1 mrg /* We could precalculate these products, but this is a less 587 1.1 mrg frequently used path so probably not worth it. */ 588 1.1 mrg dest -= dstride[n] * extent[n]; 589 1.1 mrg n++; 590 1.1 mrg if (n >= rank) 591 1.1 mrg return; 592 1.1 mrg else 593 1.1 mrg { 594 1.1 mrg count[n]++; 595 1.1 mrg dest += dstride[n]; 596 1.1 mrg } 597 1.1 mrg } 598 1.1 mrg } 599 1.1 mrg } 600 1.1 mrg 601 1.1 mrg #endif 602