1 | /* glphbm.c */ |
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2 | |
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3 | /*********************************************************************** |
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4 | * This code is part of GLPK (GNU Linear Programming Kit). |
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5 | * |
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6 | * Copyright (C) 2000, 2001, 2002, 2003, 2004, 2005, 2006, 2007, 2008, |
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7 | * 2009, 2010 Andrew Makhorin, Department for Applied Informatics, |
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8 | * Moscow Aviation Institute, Moscow, Russia. All rights reserved. |
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9 | * E-mail: <mao@gnu.org>. |
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10 | * |
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11 | * GLPK is free software: you can redistribute it and/or modify it |
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12 | * under the terms of the GNU General Public License as published by |
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13 | * the Free Software Foundation, either version 3 of the License, or |
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14 | * (at your option) any later version. |
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15 | * |
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16 | * GLPK is distributed in the hope that it will be useful, but WITHOUT |
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17 | * ANY WARRANTY; without even the implied warranty of MERCHANTABILITY |
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18 | * or FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public |
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19 | * License for more details. |
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20 | * |
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21 | * You should have received a copy of the GNU General Public License |
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22 | * along with GLPK. If not, see <http://www.gnu.org/licenses/>. |
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23 | ***********************************************************************/ |
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24 | |
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25 | #define _GLPSTD_ERRNO |
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26 | #define _GLPSTD_STDIO |
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27 | #include "glphbm.h" |
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28 | #include "glpenv.h" |
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29 | |
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30 | /*********************************************************************** |
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31 | * NAME |
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32 | * |
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33 | * hbm_read_mat - read sparse matrix in Harwell-Boeing format |
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34 | * |
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35 | * SYNOPSIS |
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36 | * |
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37 | * #include "glphbm.h" |
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38 | * HBM *hbm_read_mat(const char *fname); |
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39 | * |
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40 | * DESCRIPTION |
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41 | * |
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42 | * The routine hbm_read_mat reads a sparse matrix in the Harwell-Boeing |
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43 | * format from a text file whose name is the character string fname. |
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44 | * |
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45 | * Detailed description of the Harwell-Boeing format recognised by this |
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46 | * routine is given in the following report: |
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47 | * |
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48 | * I.S.Duff, R.G.Grimes, J.G.Lewis. User's Guide for the Harwell-Boeing |
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49 | * Sparse Matrix Collection (Release I), TR/PA/92/86, October 1992. |
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50 | * |
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51 | * RETURNS |
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52 | * |
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53 | * If no error occured, the routine hbm_read_mat returns a pointer to |
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54 | * a data structure containing the matrix. In case of error the routine |
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55 | * prints an appropriate error message and returns NULL. */ |
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56 | |
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57 | struct dsa |
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58 | { /* working area used by routine hbm_read_mat */ |
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59 | const char *fname; |
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60 | /* name of input text file */ |
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61 | FILE *fp; |
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62 | /* stream assigned to input text file */ |
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63 | int seqn; |
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64 | /* card sequential number */ |
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65 | char card[80+1]; |
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66 | /* card image buffer */ |
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67 | int fmt_p; |
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68 | /* scale factor */ |
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69 | int fmt_k; |
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70 | /* iterator */ |
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71 | int fmt_f; |
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72 | /* format code */ |
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73 | int fmt_w; |
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74 | /* field width */ |
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75 | int fmt_d; |
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76 | /* number of decimal places after point */ |
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77 | }; |
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78 | |
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79 | /*********************************************************************** |
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80 | * read_card - read next data card |
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81 | * |
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82 | * This routine reads the next 80-column card from the input text file |
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83 | * and stores its image into the character string card. If the card was |
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84 | * read successfully, the routine returns zero, otherwise non-zero. */ |
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85 | |
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86 | static int read_card(struct dsa *dsa) |
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87 | { int k, c; |
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88 | dsa->seqn++; |
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89 | memset(dsa->card, ' ', 80), dsa->card[80] = '\0'; |
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90 | k = 0; |
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91 | for (;;) |
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92 | { c = fgetc(dsa->fp); |
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93 | if (ferror(dsa->fp)) |
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94 | { xprintf("%s:%d: read error - %s\n", dsa->fname, dsa->seqn, |
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95 | strerror(errno)); |
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96 | return 1; |
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97 | } |
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98 | if (feof(dsa->fp)) |
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99 | { if (k == 0) |
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100 | xprintf("%s:%d: unexpected EOF\n", dsa->fname, |
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101 | dsa->seqn); |
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102 | else |
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103 | xprintf("%s:%d: missing final LF\n", dsa->fname, |
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104 | dsa->seqn); |
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105 | return 1; |
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106 | } |
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107 | if (c == '\r') continue; |
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108 | if (c == '\n') break; |
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109 | if (iscntrl(c)) |
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110 | { xprintf("%s:%d: invalid control character 0x%02X\n", |
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111 | dsa->fname, dsa->seqn, c); |
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112 | return 1; |
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113 | } |
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114 | if (k == 80) |
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115 | { xprintf("%s:%d: card image too long\n", dsa->fname, |
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116 | dsa->seqn); |
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117 | return 1; |
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118 | } |
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119 | dsa->card[k++] = (char)c; |
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120 | } |
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121 | return 0; |
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122 | } |
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123 | |
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124 | /*********************************************************************** |
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125 | * scan_int - scan integer value from the current card |
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126 | * |
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127 | * This routine scans an integer value from the current card, where fld |
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128 | * is the name of the field, pos is the position of the field, width is |
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129 | * the width of the field, val points to a location to which the scanned |
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130 | * value should be stored. If the value was scanned successfully, the |
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131 | * routine returns zero, otherwise non-zero. */ |
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132 | |
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133 | static int scan_int(struct dsa *dsa, char *fld, int pos, int width, |
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134 | int *val) |
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135 | { char str[80+1]; |
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136 | xassert(1 <= width && width <= 80); |
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137 | memcpy(str, dsa->card + pos, width), str[width] = '\0'; |
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138 | if (str2int(strspx(str), val)) |
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139 | { xprintf("%s:%d: field `%s' contains invalid value `%s'\n", |
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140 | dsa->fname, dsa->seqn, fld, str); |
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141 | return 1; |
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142 | } |
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143 | return 0; |
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144 | } |
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145 | |
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146 | /*********************************************************************** |
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147 | * parse_fmt - parse Fortran format specification |
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148 | * |
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149 | * This routine parses the Fortran format specification represented as |
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150 | * character string which fmt points to and stores format elements into |
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151 | * appropriate static locations. Should note that not all valid Fortran |
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152 | * format specifications may be recognised. If the format specification |
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153 | * was recognised, the routine returns zero, otherwise non-zero. */ |
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154 | |
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155 | static int parse_fmt(struct dsa *dsa, char *fmt) |
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156 | { int k, s, val; |
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157 | char str[80+1]; |
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158 | /* first character should be left parenthesis */ |
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159 | if (fmt[0] != '(') |
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160 | fail: { xprintf("hbm_read_mat: format `%s' not recognised\n", fmt); |
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161 | return 1; |
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162 | } |
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163 | k = 1; |
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164 | /* optional scale factor */ |
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165 | dsa->fmt_p = 0; |
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166 | if (isdigit((unsigned char)fmt[k])) |
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167 | { s = 0; |
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168 | while (isdigit((unsigned char)fmt[k])) |
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169 | { if (s == 80) goto fail; |
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170 | str[s++] = fmt[k++]; |
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171 | } |
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172 | str[s] = '\0'; |
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173 | if (str2int(str, &val)) goto fail; |
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174 | if (toupper((unsigned char)fmt[k]) != 'P') goto iter; |
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175 | dsa->fmt_p = val, k++; |
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176 | if (!(0 <= dsa->fmt_p && dsa->fmt_p <= 255)) goto fail; |
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177 | /* optional comma may follow scale factor */ |
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178 | if (fmt[k] == ',') k++; |
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179 | } |
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180 | /* optional iterator */ |
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181 | dsa->fmt_k = 1; |
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182 | if (isdigit((unsigned char)fmt[k])) |
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183 | { s = 0; |
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184 | while (isdigit((unsigned char)fmt[k])) |
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185 | { if (s == 80) goto fail; |
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186 | str[s++] = fmt[k++]; |
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187 | } |
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188 | str[s] = '\0'; |
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189 | if (str2int(str, &val)) goto fail; |
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190 | iter: dsa->fmt_k = val; |
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191 | if (!(1 <= dsa->fmt_k && dsa->fmt_k <= 255)) goto fail; |
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192 | } |
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193 | /* format code */ |
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194 | dsa->fmt_f = toupper((unsigned char)fmt[k++]); |
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195 | if (!(dsa->fmt_f == 'D' || dsa->fmt_f == 'E' || |
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196 | dsa->fmt_f == 'F' || dsa->fmt_f == 'G' || |
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197 | dsa->fmt_f == 'I')) goto fail; |
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198 | /* field width */ |
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199 | if (!isdigit((unsigned char)fmt[k])) goto fail; |
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200 | s = 0; |
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201 | while (isdigit((unsigned char)fmt[k])) |
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202 | { if (s == 80) goto fail; |
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203 | str[s++] = fmt[k++]; |
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204 | } |
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205 | str[s] = '\0'; |
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206 | if (str2int(str, &dsa->fmt_w)) goto fail; |
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207 | if (!(1 <= dsa->fmt_w && dsa->fmt_w <= 255)) goto fail; |
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208 | /* optional number of decimal places after point */ |
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209 | dsa->fmt_d = 0; |
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210 | if (fmt[k] == '.') |
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211 | { k++; |
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212 | if (!isdigit((unsigned char)fmt[k])) goto fail; |
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213 | s = 0; |
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214 | while (isdigit((unsigned char)fmt[k])) |
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215 | { if (s == 80) goto fail; |
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216 | str[s++] = fmt[k++]; |
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217 | } |
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218 | str[s] = '\0'; |
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219 | if (str2int(str, &dsa->fmt_d)) goto fail; |
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220 | if (!(0 <= dsa->fmt_d && dsa->fmt_d <= 255)) goto fail; |
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221 | } |
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222 | /* last character should be right parenthesis */ |
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223 | if (!(fmt[k] == ')' && fmt[k+1] == '\0')) goto fail; |
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224 | return 0; |
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225 | } |
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226 | |
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227 | /*********************************************************************** |
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228 | * read_int_array - read array of integer type |
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229 | * |
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230 | * This routine reads an integer array from the input text file, where |
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231 | * name is array name, fmt is Fortran format specification that controls |
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232 | * reading, n is number of array elements, val is array of integer type. |
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233 | * If the array was read successful, the routine returns zero, otherwise |
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234 | * non-zero. */ |
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235 | |
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236 | static int read_int_array(struct dsa *dsa, char *name, char *fmt, |
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237 | int n, int val[]) |
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238 | { int k, pos; |
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239 | char str[80+1]; |
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240 | if (parse_fmt(dsa, fmt)) return 1; |
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241 | if (!(dsa->fmt_f == 'I' && dsa->fmt_w <= 80 && |
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242 | dsa->fmt_k * dsa->fmt_w <= 80)) |
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243 | { xprintf( |
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244 | "%s:%d: can't read array `%s' - invalid format `%s'\n", |
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245 | dsa->fname, dsa->seqn, name, fmt); |
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246 | return 1; |
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247 | } |
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248 | for (k = 1, pos = INT_MAX; k <= n; k++, pos++) |
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249 | { if (pos >= dsa->fmt_k) |
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250 | { if (read_card(dsa)) return 1; |
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251 | pos = 0; |
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252 | } |
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253 | memcpy(str, dsa->card + dsa->fmt_w * pos, dsa->fmt_w); |
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254 | str[dsa->fmt_w] = '\0'; |
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255 | strspx(str); |
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256 | if (str2int(str, &val[k])) |
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257 | { xprintf( |
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258 | "%s:%d: can't read array `%s' - invalid value `%s'\n", |
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259 | dsa->fname, dsa->seqn, name, str); |
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260 | return 1; |
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261 | } |
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262 | } |
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263 | return 0; |
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264 | } |
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265 | |
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266 | /*********************************************************************** |
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267 | * read_real_array - read array of real type |
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268 | * |
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269 | * This routine reads a real array from the input text file, where name |
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270 | * is array name, fmt is Fortran format specification that controls |
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271 | * reading, n is number of array elements, val is array of real type. |
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272 | * If the array was read successful, the routine returns zero, otherwise |
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273 | * non-zero. */ |
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274 | |
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275 | static int read_real_array(struct dsa *dsa, char *name, char *fmt, |
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276 | int n, double val[]) |
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277 | { int k, pos; |
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278 | char str[80+1], *ptr; |
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279 | if (parse_fmt(dsa, fmt)) return 1; |
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280 | if (!(dsa->fmt_f != 'I' && dsa->fmt_w <= 80 && |
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281 | dsa->fmt_k * dsa->fmt_w <= 80)) |
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282 | { xprintf( |
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283 | "%s:%d: can't read array `%s' - invalid format `%s'\n", |
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284 | dsa->fname, dsa->seqn, name, fmt); |
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285 | return 1; |
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286 | } |
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287 | for (k = 1, pos = INT_MAX; k <= n; k++, pos++) |
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288 | { if (pos >= dsa->fmt_k) |
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289 | { if (read_card(dsa)) return 1; |
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290 | pos = 0; |
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291 | } |
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292 | memcpy(str, dsa->card + dsa->fmt_w * pos, dsa->fmt_w); |
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293 | str[dsa->fmt_w] = '\0'; |
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294 | strspx(str); |
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295 | if (strchr(str, '.') == NULL && strcmp(str, "0")) |
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296 | { xprintf("%s(%d): can't read array `%s' - value `%s' has no " |
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297 | "decimal point\n", dsa->fname, dsa->seqn, name, str); |
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298 | return 1; |
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299 | } |
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300 | /* sometimes lower case letters appear */ |
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301 | for (ptr = str; *ptr; ptr++) |
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302 | *ptr = (char)toupper((unsigned char)*ptr); |
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303 | ptr = strchr(str, 'D'); |
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304 | if (ptr != NULL) *ptr = 'E'; |
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305 | /* value may appear with decimal exponent but without letters |
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306 | E or D (for example, -123.456-012), so missing letter should |
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307 | be inserted */ |
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308 | ptr = strchr(str+1, '+'); |
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309 | if (ptr == NULL) ptr = strchr(str+1, '-'); |
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310 | if (ptr != NULL && *(ptr-1) != 'E') |
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311 | { xassert(strlen(str) < 80); |
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312 | memmove(ptr+1, ptr, strlen(ptr)+1); |
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313 | *ptr = 'E'; |
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314 | } |
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315 | if (str2num(str, &val[k])) |
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316 | { xprintf( |
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317 | "%s:%d: can't read array `%s' - invalid value `%s'\n", |
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318 | dsa->fname, dsa->seqn, name, str); |
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319 | return 1; |
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320 | } |
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321 | } |
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322 | return 0; |
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323 | } |
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324 | |
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325 | HBM *hbm_read_mat(const char *fname) |
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326 | { struct dsa _dsa, *dsa = &_dsa; |
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327 | HBM *hbm = NULL; |
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328 | dsa->fname = fname; |
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329 | xprintf("hbm_read_mat: reading matrix from `%s'...\n", |
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330 | dsa->fname); |
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331 | dsa->fp = fopen(dsa->fname, "r"); |
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332 | if (dsa->fp == NULL) |
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333 | { xprintf("hbm_read_mat: unable to open `%s' - %s\n", |
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334 | dsa->fname, strerror(errno)); |
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335 | goto fail; |
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336 | } |
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337 | dsa->seqn = 0; |
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338 | hbm = xmalloc(sizeof(HBM)); |
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339 | memset(hbm, 0, sizeof(HBM)); |
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340 | /* read the first heading card */ |
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341 | if (read_card(dsa)) goto fail; |
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342 | memcpy(hbm->title, dsa->card, 72), hbm->title[72] = '\0'; |
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343 | strtrim(hbm->title); |
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344 | xprintf("%s\n", hbm->title); |
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345 | memcpy(hbm->key, dsa->card+72, 8), hbm->key[8] = '\0'; |
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346 | strspx(hbm->key); |
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347 | xprintf("key = %s\n", hbm->key); |
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348 | /* read the second heading card */ |
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349 | if (read_card(dsa)) goto fail; |
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350 | if (scan_int(dsa, "totcrd", 0, 14, &hbm->totcrd)) goto fail; |
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351 | if (scan_int(dsa, "ptrcrd", 14, 14, &hbm->ptrcrd)) goto fail; |
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352 | if (scan_int(dsa, "indcrd", 28, 14, &hbm->indcrd)) goto fail; |
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353 | if (scan_int(dsa, "valcrd", 42, 14, &hbm->valcrd)) goto fail; |
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354 | if (scan_int(dsa, "rhscrd", 56, 14, &hbm->rhscrd)) goto fail; |
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355 | xprintf("totcrd = %d; ptrcrd = %d; indcrd = %d; valcrd = %d; rhsc" |
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356 | "rd = %d\n", hbm->totcrd, hbm->ptrcrd, hbm->indcrd, |
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357 | hbm->valcrd, hbm->rhscrd); |
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358 | /* read the third heading card */ |
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359 | if (read_card(dsa)) goto fail; |
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360 | memcpy(hbm->mxtype, dsa->card, 3), hbm->mxtype[3] = '\0'; |
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361 | if (strchr("RCP", hbm->mxtype[0]) == NULL || |
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362 | strchr("SUHZR", hbm->mxtype[1]) == NULL || |
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363 | strchr("AE", hbm->mxtype[2]) == NULL) |
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364 | { xprintf("%s:%d: matrix type `%s' not recognised\n", |
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365 | dsa->fname, dsa->seqn, hbm->mxtype); |
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366 | goto fail; |
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367 | } |
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368 | if (scan_int(dsa, "nrow", 14, 14, &hbm->nrow)) goto fail; |
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369 | if (scan_int(dsa, "ncol", 28, 14, &hbm->ncol)) goto fail; |
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370 | if (scan_int(dsa, "nnzero", 42, 14, &hbm->nnzero)) goto fail; |
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371 | if (scan_int(dsa, "neltvl", 56, 14, &hbm->neltvl)) goto fail; |
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372 | xprintf("mxtype = %s; nrow = %d; ncol = %d; nnzero = %d; neltvl =" |
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373 | " %d\n", hbm->mxtype, hbm->nrow, hbm->ncol, hbm->nnzero, |
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374 | hbm->neltvl); |
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375 | /* read the fourth heading card */ |
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376 | if (read_card(dsa)) goto fail; |
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377 | memcpy(hbm->ptrfmt, dsa->card, 16), hbm->ptrfmt[16] = '\0'; |
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378 | strspx(hbm->ptrfmt); |
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379 | memcpy(hbm->indfmt, dsa->card+16, 16), hbm->indfmt[16] = '\0'; |
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380 | strspx(hbm->indfmt); |
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381 | memcpy(hbm->valfmt, dsa->card+32, 20), hbm->valfmt[20] = '\0'; |
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382 | strspx(hbm->valfmt); |
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383 | memcpy(hbm->rhsfmt, dsa->card+52, 20), hbm->rhsfmt[20] = '\0'; |
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384 | strspx(hbm->rhsfmt); |
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385 | xprintf("ptrfmt = %s; indfmt = %s; valfmt = %s; rhsfmt = %s\n", |
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386 | hbm->ptrfmt, hbm->indfmt, hbm->valfmt, hbm->rhsfmt); |
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387 | /* read the fifth heading card (optional) */ |
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388 | if (hbm->rhscrd <= 0) |
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389 | { strcpy(hbm->rhstyp, "???"); |
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390 | hbm->nrhs = 0; |
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391 | hbm->nrhsix = 0; |
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392 | } |
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393 | else |
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394 | { if (read_card(dsa)) goto fail; |
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395 | memcpy(hbm->rhstyp, dsa->card, 3), hbm->rhstyp[3] = '\0'; |
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396 | if (scan_int(dsa, "nrhs", 14, 14, &hbm->nrhs)) goto fail; |
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397 | if (scan_int(dsa, "nrhsix", 28, 14, &hbm->nrhsix)) goto fail; |
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398 | xprintf("rhstyp = `%s'; nrhs = %d; nrhsix = %d\n", |
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399 | hbm->rhstyp, hbm->nrhs, hbm->nrhsix); |
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400 | } |
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401 | /* read matrix structure */ |
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402 | hbm->colptr = xcalloc(1+hbm->ncol+1, sizeof(int)); |
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403 | if (read_int_array(dsa, "colptr", hbm->ptrfmt, hbm->ncol+1, |
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404 | hbm->colptr)) goto fail; |
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405 | hbm->rowind = xcalloc(1+hbm->nnzero, sizeof(int)); |
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406 | if (read_int_array(dsa, "rowind", hbm->indfmt, hbm->nnzero, |
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407 | hbm->rowind)) goto fail; |
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408 | /* read matrix values */ |
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409 | if (hbm->valcrd <= 0) goto done; |
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410 | if (hbm->mxtype[2] == 'A') |
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411 | { /* assembled matrix */ |
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412 | hbm->values = xcalloc(1+hbm->nnzero, sizeof(double)); |
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413 | if (read_real_array(dsa, "values", hbm->valfmt, hbm->nnzero, |
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414 | hbm->values)) goto fail; |
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415 | } |
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416 | else |
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417 | { /* elemental (unassembled) matrix */ |
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418 | hbm->values = xcalloc(1+hbm->neltvl, sizeof(double)); |
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419 | if (read_real_array(dsa, "values", hbm->valfmt, hbm->neltvl, |
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420 | hbm->values)) goto fail; |
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421 | } |
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422 | /* read right-hand sides */ |
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423 | if (hbm->nrhs <= 0) goto done; |
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424 | if (hbm->rhstyp[0] == 'F') |
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425 | { /* dense format */ |
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426 | hbm->nrhsvl = hbm->nrow * hbm->nrhs; |
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427 | hbm->rhsval = xcalloc(1+hbm->nrhsvl, sizeof(double)); |
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428 | if (read_real_array(dsa, "rhsval", hbm->rhsfmt, hbm->nrhsvl, |
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429 | hbm->rhsval)) goto fail; |
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430 | } |
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431 | else if (hbm->rhstyp[0] == 'M' && hbm->mxtype[2] == 'A') |
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432 | { /* sparse format */ |
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433 | /* read pointers */ |
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434 | hbm->rhsptr = xcalloc(1+hbm->nrhs+1, sizeof(int)); |
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435 | if (read_int_array(dsa, "rhsptr", hbm->ptrfmt, hbm->nrhs+1, |
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436 | hbm->rhsptr)) goto fail; |
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437 | /* read sparsity pattern */ |
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438 | hbm->rhsind = xcalloc(1+hbm->nrhsix, sizeof(int)); |
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439 | if (read_int_array(dsa, "rhsind", hbm->indfmt, hbm->nrhsix, |
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440 | hbm->rhsind)) goto fail; |
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441 | /* read values */ |
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442 | hbm->rhsval = xcalloc(1+hbm->nrhsix, sizeof(double)); |
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443 | if (read_real_array(dsa, "rhsval", hbm->rhsfmt, hbm->nrhsix, |
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444 | hbm->rhsval)) goto fail; |
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445 | } |
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446 | else if (hbm->rhstyp[0] == 'M' && hbm->mxtype[2] == 'E') |
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447 | { /* elemental format */ |
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448 | hbm->rhsval = xcalloc(1+hbm->nrhsvl, sizeof(double)); |
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449 | if (read_real_array(dsa, "rhsval", hbm->rhsfmt, hbm->nrhsvl, |
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450 | hbm->rhsval)) goto fail; |
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451 | } |
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452 | else |
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453 | { xprintf("%s:%d: right-hand side type `%c' not recognised\n", |
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454 | dsa->fname, dsa->seqn, hbm->rhstyp[0]); |
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455 | goto fail; |
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456 | } |
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457 | /* read starting guesses */ |
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458 | if (hbm->rhstyp[1] == 'G') |
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459 | { hbm->nguess = hbm->nrow * hbm->nrhs; |
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460 | hbm->sguess = xcalloc(1+hbm->nguess, sizeof(double)); |
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461 | if (read_real_array(dsa, "sguess", hbm->rhsfmt, hbm->nguess, |
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462 | hbm->sguess)) goto fail; |
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463 | } |
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464 | /* read solution vectors */ |
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465 | if (hbm->rhstyp[2] == 'X') |
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466 | { hbm->nexact = hbm->nrow * hbm->nrhs; |
---|
467 | hbm->xexact = xcalloc(1+hbm->nexact, sizeof(double)); |
---|
468 | if (read_real_array(dsa, "xexact", hbm->rhsfmt, hbm->nexact, |
---|
469 | hbm->xexact)) goto fail; |
---|
470 | } |
---|
471 | done: /* reading has been completed */ |
---|
472 | xprintf("hbm_read_mat: %d cards were read\n", dsa->seqn); |
---|
473 | fclose(dsa->fp); |
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474 | return hbm; |
---|
475 | fail: /* something wrong in Danish kingdom */ |
---|
476 | if (hbm != NULL) |
---|
477 | { if (hbm->colptr != NULL) xfree(hbm->colptr); |
---|
478 | if (hbm->rowind != NULL) xfree(hbm->rowind); |
---|
479 | if (hbm->rhsptr != NULL) xfree(hbm->rhsptr); |
---|
480 | if (hbm->rhsind != NULL) xfree(hbm->rhsind); |
---|
481 | if (hbm->values != NULL) xfree(hbm->values); |
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482 | if (hbm->rhsval != NULL) xfree(hbm->rhsval); |
---|
483 | if (hbm->sguess != NULL) xfree(hbm->sguess); |
---|
484 | if (hbm->xexact != NULL) xfree(hbm->xexact); |
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485 | xfree(hbm); |
---|
486 | } |
---|
487 | if (dsa->fp != NULL) fclose(dsa->fp); |
---|
488 | return NULL; |
---|
489 | } |
---|
490 | |
---|
491 | /*********************************************************************** |
---|
492 | * NAME |
---|
493 | * |
---|
494 | * hbm_free_mat - free sparse matrix in Harwell-Boeing format |
---|
495 | * |
---|
496 | * SYNOPSIS |
---|
497 | * |
---|
498 | * #include "glphbm.h" |
---|
499 | * void hbm_free_mat(HBM *hbm); |
---|
500 | * |
---|
501 | * DESCRIPTION |
---|
502 | * |
---|
503 | * The hbm_free_mat routine frees all the memory allocated to the data |
---|
504 | * structure containing a sparse matrix in the Harwell-Boeing format. */ |
---|
505 | |
---|
506 | void hbm_free_mat(HBM *hbm) |
---|
507 | { if (hbm->colptr != NULL) xfree(hbm->colptr); |
---|
508 | if (hbm->rowind != NULL) xfree(hbm->rowind); |
---|
509 | if (hbm->rhsptr != NULL) xfree(hbm->rhsptr); |
---|
510 | if (hbm->rhsind != NULL) xfree(hbm->rhsind); |
---|
511 | if (hbm->values != NULL) xfree(hbm->values); |
---|
512 | if (hbm->rhsval != NULL) xfree(hbm->rhsval); |
---|
513 | if (hbm->sguess != NULL) xfree(hbm->sguess); |
---|
514 | if (hbm->xexact != NULL) xfree(hbm->xexact); |
---|
515 | xfree(hbm); |
---|
516 | return; |
---|
517 | } |
---|
518 | |
---|
519 | /* eof */ |
---|