📄 in_pack_c10.c
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/* Helper function for repacking arrays. Copyright 2003 Free Software Foundation, Inc. Contributed by Paul Brook <paul@nowt.org>This file is part of the GNU Fortran 95 runtime library (libgfortran).Libgfortran is free software; you can redistribute it and/ormodify it under the terms of the GNU General PublicLicense as published by the Free Software Foundation; eitherversion 2 of the License, or (at your option) any later version.In addition to the permissions in the GNU General Public License, theFree Software Foundation gives you unlimited permission to link thecompiled version of this file into combinations with other programs,and to distribute those combinations without any restriction comingfrom the use of this file. (The General Public License restrictionsdo apply in other respects; for example, they cover modification ofthe file, and distribution when not linked into a combineexecutable.)Libgfortran is distributed in the hope that it will be useful,but WITHOUT ANY WARRANTY; without even the implied warranty ofMERCHANTABILITY or FITNESS FOR A PARTICULAR PURPOSE. See theGNU General Public License for more details.You should have received a copy of the GNU General PublicLicense along with libgfortran; see the file COPYING. If not,write to the Free Software Foundation, Inc., 51 Franklin Street, Fifth Floor,Boston, MA 02110-1301, USA. */#include "config.h"#include <stdlib.h>#include <assert.h>#include "libgfortran.h"#if defined (HAVE_GFC_COMPLEX_10)/* Allocates a block of memory with internal_malloc if the array needs repacking. */GFC_COMPLEX_10 *internal_pack_c10 (gfc_array_c10 * source){ index_type count[GFC_MAX_DIMENSIONS]; index_type extent[GFC_MAX_DIMENSIONS]; index_type stride[GFC_MAX_DIMENSIONS]; index_type stride0; index_type dim; index_type ssize; const GFC_COMPLEX_10 *src; GFC_COMPLEX_10 *dest; GFC_COMPLEX_10 *destptr; int n; int packed; if (source->dim[0].stride == 0) { source->dim[0].stride = 1; return source->data; } dim = GFC_DESCRIPTOR_RANK (source); ssize = 1; packed = 1; for (n = 0; n < dim; n++) { count[n] = 0; stride[n] = source->dim[n].stride; extent[n] = source->dim[n].ubound + 1 - source->dim[n].lbound; if (extent[n] <= 0) { /* Do nothing. */ packed = 1; break; } if (ssize != stride[n]) packed = 0; ssize *= extent[n]; } if (packed) return source->data; /* Allocate storage for the destination. */ destptr = (GFC_COMPLEX_10 *)internal_malloc_size (ssize * sizeof (GFC_COMPLEX_10)); dest = destptr; src = source->data; stride0 = stride[0]; while (src) { /* Copy the data. */ *(dest++) = *src; /* Advance to the next element. */ src += stride0; count[0]++; /* Advance to the next source element. */ n = 0; while (count[n] == extent[n]) { /* When we get to the end of a dimension, reset it and increment the next dimension. */ count[n] = 0; /* We could precalculate these products, but this is a less frequently used path so proabably not worth it. */ src -= stride[n] * extent[n]; n++; if (n == dim) { src = NULL; break; } else { count[n]++; src += stride[n]; } } } return destptr;}#endif
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