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1 /* |
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2 |
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3 Copyright (C) 2004 David Bateman |
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4 Copyright (C) 1998-2004 Andy Adler |
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5 |
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6 Octave is free software; you can redistribute it and/or modify it |
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7 under the terms of the GNU General Public License as published by the |
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8 Free Software Foundation; either version 2, or (at your option) any |
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9 later version. |
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10 |
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11 Octave is distributed in the hope that it will be useful, but WITHOUT |
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12 ANY WARRANTY; without even the implied warranty of MERCHANTABILITY or |
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13 FITNESS FOR A PARTICULAR PURPOSE. See the GNU General Public License |
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14 for more details. |
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15 |
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16 You should have received a copy of the GNU General Public License |
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17 along with this program; see the file COPYING. If not, write to the |
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18 Free Software Foundation, Inc., 51 Franklin Street, Fifth Floor, |
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19 Boston, MA 02110-1301, USA. |
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20 |
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21 */ |
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22 |
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23 #ifdef HAVE_CONFIG_H |
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24 #include <config.h> |
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25 #endif |
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26 |
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27 #include <climits> |
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28 |
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29 #include <iostream> |
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30 #include <vector> |
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31 |
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32 #include "ov-base.h" |
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33 #include "ov-scalar.h" |
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34 #include "gripes.h" |
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35 |
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36 #include "ls-hdf5.h" |
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37 |
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38 #include "ov-re-sparse.h" |
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39 |
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40 #include "ov-base-sparse.h" |
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41 #include "ov-base-sparse.cc" |
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42 |
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43 #include "ov-bool-sparse.h" |
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44 |
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45 template class octave_base_sparse<SparseMatrix>; |
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46 |
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47 DEFINE_OCTAVE_ALLOCATOR (octave_sparse_matrix); |
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48 |
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49 DEFINE_OV_TYPEID_FUNCTIONS_AND_DATA (octave_sparse_matrix, "sparse matrix", "sparse"); |
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50 |
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51 idx_vector |
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52 octave_sparse_matrix::index_vector (void) const |
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53 { |
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54 if (matrix.numel () == matrix.nnz ()) |
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55 return idx_vector (array_value ()); |
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56 else |
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57 { |
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58 std::string nm = type_name (); |
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59 error ("%s type invalid as index value", nm.c_str ()); |
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60 return idx_vector (); |
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61 } |
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62 } |
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63 |
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64 octave_base_value * |
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65 octave_sparse_matrix::try_narrowing_conversion (void) |
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66 { |
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67 octave_base_value *retval = 0; |
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68 |
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69 // Don't use numel, since it can overflow for very large matrices |
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70 // Note that for the second test, this means it becomes approximative |
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71 // since it involves a cast to double to avoid issues of overflow |
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72 if (matrix.rows () == 1 && matrix.cols () == 1) |
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73 { |
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74 // Const copy of the matrix, so the right version of () operator used |
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75 const SparseMatrix tmp (matrix); |
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76 |
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77 retval = new octave_scalar (tmp (0)); |
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78 } |
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79 else if (matrix.cols () > 0 && matrix.rows () > 0 && |
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80 double (matrix.byte_size ()) > double (matrix.rows ()) * |
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81 double (matrix.cols ()) * sizeof (double)) |
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82 retval = new octave_matrix (matrix.matrix_value ()); |
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83 |
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84 return retval; |
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85 } |
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86 |
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87 bool |
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88 octave_sparse_matrix::valid_as_scalar_index (void) const |
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89 { |
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90 // FIXME |
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91 return false; |
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92 } |
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93 |
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94 double |
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95 octave_sparse_matrix::double_value (bool) const |
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96 { |
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97 double retval = lo_ieee_nan_value (); |
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98 |
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99 if (numel () > 0) |
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100 { |
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101 gripe_implicit_conversion ("Octave:array-as-scalar", |
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102 "real sparse matrix", "real scalar"); |
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103 |
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104 retval = matrix (0, 0); |
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105 } |
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106 else |
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107 gripe_invalid_conversion ("real sparse matrix", "real scalar"); |
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108 |
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109 return retval; |
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110 } |
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111 |
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112 Complex |
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113 octave_sparse_matrix::complex_value (bool) const |
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114 { |
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115 double tmp = lo_ieee_nan_value (); |
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116 |
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117 Complex retval (tmp, tmp); |
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118 |
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119 // FIXME -- maybe this should be a function, valid_as_scalar() |
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120 if (rows () > 0 && columns () > 0) |
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121 { |
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122 gripe_implicit_conversion ("Octave:array-as-scalar", |
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123 "real sparse matrix", "complex scalar"); |
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124 |
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125 retval = matrix (0, 0); |
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126 } |
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127 else |
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128 gripe_invalid_conversion ("real sparse matrix", "complex scalar"); |
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129 |
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130 return retval; |
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131 } |
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132 |
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133 Matrix |
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134 octave_sparse_matrix::matrix_value (bool) const |
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135 { |
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136 return matrix.matrix_value (); |
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137 } |
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138 |
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139 ComplexMatrix |
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140 octave_sparse_matrix::complex_matrix_value (bool) const |
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141 { |
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142 return ComplexMatrix (matrix.matrix_value ()); |
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143 } |
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144 |
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145 ComplexNDArray |
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146 octave_sparse_matrix::complex_array_value (bool) const |
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147 { |
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148 return ComplexNDArray (ComplexMatrix (matrix.matrix_value ())); |
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149 } |
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150 |
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151 NDArray |
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152 octave_sparse_matrix::array_value (bool) const |
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153 { |
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154 return NDArray (matrix.matrix_value ()); |
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155 } |
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156 |
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157 streamoff_array |
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158 octave_sparse_matrix::streamoff_array_value (void) const |
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159 { |
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160 streamoff_array retval (dims ()); |
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161 octave_idx_type nc = matrix.cols (); |
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162 octave_idx_type nr = matrix.rows (); |
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163 |
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164 for (octave_idx_type j = 0; j < nc; j++) |
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165 for (octave_idx_type i = matrix.cidx(j); i < matrix.cidx(j+1); i++) |
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166 { |
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167 double d = matrix.data(i); |
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168 |
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169 if (D_NINT (d) == d) |
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170 { |
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171 retval(matrix.ridx(i) + nr * j) = |
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172 std::streamoff (static_cast<long> (d)); |
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173 } |
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174 else |
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175 { |
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176 error ("conversion to streamoff_array value failed"); |
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177 break; |
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178 } |
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179 } |
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180 |
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181 return retval; |
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182 } |
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183 |
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184 octave_value |
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185 octave_sparse_matrix::convert_to_str_internal (bool, bool, char type) const |
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186 { |
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187 octave_value retval; |
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188 dim_vector dv = dims (); |
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189 octave_idx_type nel = dv.numel (); |
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190 |
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191 if (nel == 0) |
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192 { |
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193 char s = '\0'; |
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194 retval = octave_value (&s, type); |
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195 } |
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196 else |
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197 { |
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198 octave_idx_type nr = matrix.rows (); |
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199 octave_idx_type nc = matrix.cols (); |
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200 charNDArray chm (dv, static_cast<char> (0)); |
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201 |
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202 bool warned = false; |
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203 |
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204 for (octave_idx_type j = 0; j < nc; j++) |
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205 for (octave_idx_type i = matrix.cidx(j); |
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206 i < matrix.cidx(j+1); i++) |
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207 { |
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208 OCTAVE_QUIT; |
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209 |
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210 double d = matrix.data (i); |
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211 |
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212 if (xisnan (d)) |
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213 { |
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214 ::error ("invalid conversion from NaN to character"); |
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215 return retval; |
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216 } |
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217 else |
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218 { |
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219 int ival = NINT (d); |
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220 |
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221 if (ival < 0 || ival > UCHAR_MAX) |
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222 { |
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223 // FIXME -- is there something |
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224 // better we could do? |
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225 |
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226 ival = 0; |
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227 |
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228 if (! warned) |
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229 { |
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230 ::warning ("range error for conversion to character value"); |
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231 warned = true; |
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232 } |
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233 } |
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234 |
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235 chm (matrix.ridx(i) + j * nr) = |
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236 static_cast<char> (ival); |
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237 } |
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238 } |
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239 retval = octave_value (chm, true, type); |
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240 } |
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241 |
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242 return retval; |
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243 } |
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244 |
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245 bool |
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246 octave_sparse_matrix::save_binary (std::ostream& os, bool&save_as_floats) |
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247 { |
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248 dim_vector d = this->dims (); |
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249 if (d.length() < 1) |
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250 return false; |
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251 |
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252 // Ensure that additional memory is deallocated |
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253 matrix.maybe_compress (); |
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254 |
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255 int nr = d(0); |
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256 int nc = d(1); |
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257 int nz = nzmax (); |
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258 |
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259 FOUR_BYTE_INT itmp; |
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260 // Use negative value for ndims to be consistent with other formats |
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261 itmp= -2; |
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262 os.write (reinterpret_cast<char *> (&itmp), 4); |
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263 |
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264 itmp= nr; |
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265 os.write (reinterpret_cast<char *> (&itmp), 4); |
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266 |
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267 itmp= nc; |
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268 os.write (reinterpret_cast<char *> (&itmp), 4); |
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269 |
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270 itmp= nz; |
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271 os.write (reinterpret_cast<char *> (&itmp), 4); |
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272 |
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273 save_type st = LS_DOUBLE; |
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274 if (save_as_floats) |
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275 { |
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276 if (matrix.too_large_for_float ()) |
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277 { |
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278 warning ("save: some values too large to save as floats --"); |
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279 warning ("save: saving as doubles instead"); |
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280 } |
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281 else |
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282 st = LS_FLOAT; |
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283 } |
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284 else if (matrix.nzmax () > 8192) // FIXME -- make this configurable. |
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285 { |
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286 double max_val, min_val; |
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287 if (matrix.all_integers (max_val, min_val)) |
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288 st = get_save_type (max_val, min_val); |
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289 } |
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290 |
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291 // add one to the printed indices to go from |
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292 // zero-based to one-based arrays |
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293 for (int i = 0; i < nc+1; i++) |
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294 { |
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295 OCTAVE_QUIT; |
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296 itmp = matrix.cidx(i); |
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297 os.write (reinterpret_cast<char *> (&itmp), 4); |
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298 } |
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299 |
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300 for (int i = 0; i < nz; i++) |
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301 { |
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302 OCTAVE_QUIT; |
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303 itmp = matrix.ridx(i); |
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304 os.write (reinterpret_cast<char *> (&itmp), 4); |
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305 } |
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306 |
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307 write_doubles (os, matrix.data(), st, nz); |
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308 |
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309 return true; |
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310 } |
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311 |
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312 bool |
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313 octave_sparse_matrix::load_binary (std::istream& is, bool swap, |
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314 oct_mach_info::float_format fmt) |
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315 { |
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316 FOUR_BYTE_INT nz, nc, nr, tmp; |
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317 char ctmp; |
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318 |
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319 if (! is.read (reinterpret_cast<char *> (&tmp), 4)) |
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320 return false; |
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321 |
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322 if (swap) |
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323 swap_bytes<4> (&tmp); |
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324 |
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325 if (tmp != -2) { |
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326 error("load: only 2D sparse matrices are supported"); |
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327 return false; |
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328 } |
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329 |
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330 if (! is.read (reinterpret_cast<char *> (&nr), 4)) |
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331 return false; |
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332 if (! is.read (reinterpret_cast<char *> (&nc), 4)) |
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333 return false; |
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334 if (! is.read (reinterpret_cast<char *> (&nz), 4)) |
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335 return false; |
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336 |
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337 if (swap) |
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338 { |
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339 swap_bytes<4> (&nr); |
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340 swap_bytes<4> (&nc); |
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341 swap_bytes<4> (&nz); |
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342 } |
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343 |
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344 SparseMatrix m (static_cast<octave_idx_type> (nr), |
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345 static_cast<octave_idx_type> (nc), |
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346 static_cast<octave_idx_type> (nz)); |
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347 |
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348 for (int i = 0; i < nc+1; i++) |
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349 { |
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350 OCTAVE_QUIT; |
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351 if (! is.read (reinterpret_cast<char *> (&tmp), 4)) |
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352 return false; |
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353 if (swap) |
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354 swap_bytes<4> (&tmp); |
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355 m.xcidx(i) = tmp; |
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356 } |
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357 |
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358 for (int i = 0; i < nz; i++) |
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359 { |
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360 OCTAVE_QUIT; |
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361 if (! is.read (reinterpret_cast<char *> (&tmp), 4)) |
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362 return false; |
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363 if (swap) |
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364 swap_bytes<4> (&tmp); |
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365 m.xridx(i) = tmp; |
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366 } |
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367 |
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368 if (! is.read (reinterpret_cast<char *> (&ctmp), 1)) |
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369 return false; |
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370 |
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371 read_doubles (is, m.xdata (), static_cast<save_type> (ctmp), nz, swap, fmt); |
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372 |
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373 if (error_state || ! is) |
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374 return false; |
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375 matrix = m; |
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376 |
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377 return true; |
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378 } |
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379 |
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380 #if defined (HAVE_HDF5) |
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381 bool |
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382 octave_sparse_matrix::save_hdf5 (hid_t loc_id, const char *name, |
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383 bool save_as_floats) |
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384 { |
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385 dim_vector dv = dims (); |
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386 int empty = save_hdf5_empty (loc_id, name, dv); |
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387 if (empty) |
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388 return (empty > 0); |
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389 |
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390 // Ensure that additional memory is deallocated |
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391 matrix.maybe_compress (); |
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392 |
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393 hid_t group_hid = H5Gcreate (loc_id, name, 0); |
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394 if (group_hid < 0) |
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395 return false; |
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396 |
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397 hid_t space_hid = -1, data_hid = -1; |
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398 bool retval = true; |
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399 SparseMatrix m = sparse_matrix_value (); |
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400 octave_idx_type tmp; |
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401 hsize_t hdims[2]; |
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402 |
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403 space_hid = H5Screate_simple (0, hdims, 0); |
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404 if (space_hid < 0) |
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405 { |
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406 H5Gclose (group_hid); |
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407 return false; |
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408 } |
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409 |
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410 data_hid = H5Dcreate (group_hid, "nr", H5T_NATIVE_IDX, space_hid, |
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411 H5P_DEFAULT); |
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412 if (data_hid < 0) |
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413 { |
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414 H5Sclose (space_hid); |
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415 H5Gclose (group_hid); |
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416 return false; |
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417 } |
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418 |
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419 tmp = m.rows (); |
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420 retval = H5Dwrite (data_hid, H5T_NATIVE_IDX, H5S_ALL, H5S_ALL, H5P_DEFAULT, |
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421 &tmp) >= 0; |
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422 H5Dclose (data_hid); |
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423 if (!retval) |
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424 { |
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425 H5Sclose (space_hid); |
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426 H5Gclose (group_hid); |
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427 return false; |
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428 } |
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429 |
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430 data_hid = H5Dcreate (group_hid, "nc", H5T_NATIVE_IDX, space_hid, |
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431 H5P_DEFAULT); |
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432 if (data_hid < 0) |
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433 { |
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434 H5Sclose (space_hid); |
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435 H5Gclose (group_hid); |
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436 return false; |
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437 } |
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438 |
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439 tmp = m.cols (); |
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440 retval = H5Dwrite (data_hid, H5T_NATIVE_IDX, H5S_ALL, H5S_ALL, H5P_DEFAULT, |
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441 &tmp) >= 0; |
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442 H5Dclose (data_hid); |
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443 if (!retval) |
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444 { |
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445 H5Sclose (space_hid); |
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446 H5Gclose (group_hid); |
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447 return false; |
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448 } |
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449 |
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450 data_hid = H5Dcreate (group_hid, "nz", H5T_NATIVE_IDX, space_hid, |
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451 H5P_DEFAULT); |
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452 if (data_hid < 0) |
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453 { |
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454 H5Sclose (space_hid); |
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455 H5Gclose (group_hid); |
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456 return false; |
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457 } |
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458 |
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459 tmp = m.nzmax (); |
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460 retval = H5Dwrite (data_hid, H5T_NATIVE_IDX, H5S_ALL, H5S_ALL, H5P_DEFAULT, |
5760
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461 &tmp) >= 0; |
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462 H5Dclose (data_hid); |
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463 if (!retval) |
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464 { |
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465 H5Sclose (space_hid); |
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466 H5Gclose (group_hid); |
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467 return false; |
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468 } |
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469 |
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470 H5Sclose (space_hid); |
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471 |
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472 hdims[0] = m.cols() + 1; |
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473 hdims[1] = 1; |
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474 |
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475 space_hid = H5Screate_simple (2, hdims, 0); |
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476 |
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477 if (space_hid < 0) |
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478 { |
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479 H5Gclose (group_hid); |
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480 return false; |
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481 } |
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482 |
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483 data_hid = H5Dcreate (group_hid, "cidx", H5T_NATIVE_IDX, space_hid, |
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484 H5P_DEFAULT); |
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485 if (data_hid < 0) |
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486 { |
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487 H5Sclose (space_hid); |
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488 H5Gclose (group_hid); |
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489 return false; |
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490 } |
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491 |
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492 octave_idx_type * itmp = m.xcidx (); |
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493 retval = H5Dwrite (data_hid, H5T_NATIVE_IDX, H5S_ALL, H5S_ALL, H5P_DEFAULT, |
5760
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494 itmp) >= 0; |
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495 H5Dclose (data_hid); |
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496 if (!retval) |
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497 { |
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498 H5Sclose (space_hid); |
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499 H5Gclose (group_hid); |
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500 return false; |
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501 } |
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502 |
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503 H5Sclose (space_hid); |
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504 |
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505 hdims[0] = m.nzmax (); |
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506 hdims[1] = 1; |
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507 |
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508 space_hid = H5Screate_simple (2, hdims, 0); |
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509 |
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510 if (space_hid < 0) |
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511 { |
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512 H5Gclose (group_hid); |
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513 return false; |
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514 } |
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515 |
5351
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516 data_hid = H5Dcreate (group_hid, "ridx", H5T_NATIVE_IDX, space_hid, |
5164
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517 H5P_DEFAULT); |
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518 if (data_hid < 0) |
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519 { |
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520 H5Sclose (space_hid); |
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521 H5Gclose (group_hid); |
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522 return false; |
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523 } |
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524 |
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525 itmp = m.xridx (); |
5351
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526 retval = H5Dwrite (data_hid, H5T_NATIVE_IDX, H5S_ALL, H5S_ALL, H5P_DEFAULT, |
5760
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527 itmp) >= 0; |
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528 H5Dclose (data_hid); |
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529 if (!retval) |
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530 { |
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531 H5Sclose (space_hid); |
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532 H5Gclose (group_hid); |
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533 return false; |
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534 } |
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535 |
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536 hid_t save_type_hid = H5T_NATIVE_DOUBLE; |
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537 |
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538 if (save_as_floats) |
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539 { |
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540 if (m.too_large_for_float ()) |
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541 { |
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542 warning ("save: some values too large to save as floats --"); |
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543 warning ("save: saving as doubles instead"); |
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544 } |
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545 else |
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546 save_type_hid = H5T_NATIVE_FLOAT; |
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547 } |
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548 #if HAVE_HDF5_INT2FLOAT_CONVERSIONS |
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549 // hdf5 currently doesn't support float/integer conversions |
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550 else |
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551 { |
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552 double max_val, min_val; |
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553 |
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554 if (m.all_integers (max_val, min_val)) |
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555 save_type_hid |
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556 = save_type_to_hdf5 (get_save_type (max_val, min_val)); |
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557 } |
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558 #endif /* HAVE_HDF5_INT2FLOAT_CONVERSIONS */ |
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559 |
|
560 data_hid = H5Dcreate (group_hid, "data", save_type_hid, space_hid, |
|
561 H5P_DEFAULT); |
|
562 if (data_hid < 0) |
|
563 { |
|
564 H5Sclose (space_hid); |
|
565 H5Gclose (group_hid); |
|
566 return false; |
|
567 } |
|
568 |
|
569 double * dtmp = m.xdata (); |
|
570 retval = H5Dwrite (data_hid, H5T_NATIVE_DOUBLE, H5S_ALL, H5S_ALL, |
5760
|
571 H5P_DEFAULT, dtmp) >= 0; |
5164
|
572 H5Dclose (data_hid); |
|
573 H5Sclose (space_hid); |
|
574 H5Gclose (group_hid); |
|
575 |
|
576 return retval; |
|
577 } |
|
578 |
|
579 bool |
|
580 octave_sparse_matrix::load_hdf5 (hid_t loc_id, const char *name, |
5760
|
581 bool /* have_h5giterate_bug */) |
5164
|
582 { |
5351
|
583 octave_idx_type nr, nc, nz; |
5164
|
584 hid_t group_hid, data_hid, space_hid; |
|
585 hsize_t rank; |
|
586 |
|
587 dim_vector dv; |
|
588 int empty = load_hdf5_empty (loc_id, name, dv); |
|
589 if (empty > 0) |
|
590 matrix.resize(dv); |
|
591 if (empty) |
|
592 return (empty > 0); |
|
593 |
|
594 group_hid = H5Gopen (loc_id, name); |
5760
|
595 if (group_hid < 0) return false; |
5164
|
596 |
|
597 data_hid = H5Dopen (group_hid, "nr"); |
|
598 space_hid = H5Dget_space (data_hid); |
|
599 rank = H5Sget_simple_extent_ndims (space_hid); |
|
600 |
|
601 if (rank != 0) |
|
602 { |
|
603 H5Dclose (data_hid); |
|
604 H5Gclose (group_hid); |
|
605 return false; |
|
606 } |
|
607 |
5351
|
608 if (H5Dread (data_hid, H5T_NATIVE_IDX, H5S_ALL, H5S_ALL, |
5760
|
609 H5P_DEFAULT, &nr) < 0) |
5164
|
610 { |
|
611 H5Dclose (data_hid); |
|
612 H5Gclose (group_hid); |
|
613 return false; |
|
614 } |
|
615 |
|
616 H5Dclose (data_hid); |
|
617 |
|
618 data_hid = H5Dopen (group_hid, "nc"); |
|
619 space_hid = H5Dget_space (data_hid); |
|
620 rank = H5Sget_simple_extent_ndims (space_hid); |
|
621 |
|
622 if (rank != 0) |
|
623 { |
|
624 H5Dclose (data_hid); |
|
625 H5Gclose (group_hid); |
|
626 return false; |
|
627 } |
|
628 |
5351
|
629 if (H5Dread (data_hid, H5T_NATIVE_IDX, H5S_ALL, H5S_ALL, |
5760
|
630 H5P_DEFAULT, &nc) < 0) |
5164
|
631 { |
|
632 H5Dclose (data_hid); |
|
633 H5Gclose (group_hid); |
|
634 return false; |
|
635 } |
|
636 |
|
637 H5Dclose (data_hid); |
|
638 |
|
639 data_hid = H5Dopen (group_hid, "nz"); |
|
640 space_hid = H5Dget_space (data_hid); |
|
641 rank = H5Sget_simple_extent_ndims (space_hid); |
|
642 |
|
643 if (rank != 0) |
|
644 { |
|
645 H5Dclose (data_hid); |
|
646 H5Gclose (group_hid); |
|
647 return false; |
|
648 } |
|
649 |
5351
|
650 if (H5Dread (data_hid, H5T_NATIVE_IDX, H5S_ALL, H5S_ALL, |
5760
|
651 H5P_DEFAULT, &nz) < 0) |
5164
|
652 { |
|
653 H5Dclose (data_hid); |
|
654 H5Gclose (group_hid); |
|
655 return false; |
|
656 } |
|
657 |
|
658 H5Dclose (data_hid); |
|
659 |
5275
|
660 SparseMatrix m (static_cast<octave_idx_type> (nr), |
|
661 static_cast<octave_idx_type> (nc), |
|
662 static_cast<octave_idx_type> (nz)); |
5164
|
663 |
|
664 data_hid = H5Dopen (group_hid, "cidx"); |
|
665 space_hid = H5Dget_space (data_hid); |
|
666 rank = H5Sget_simple_extent_ndims (space_hid); |
|
667 |
|
668 if (rank != 2) |
|
669 { |
|
670 H5Sclose (space_hid); |
|
671 H5Dclose (data_hid); |
|
672 H5Gclose (group_hid); |
|
673 return false; |
|
674 } |
|
675 |
|
676 OCTAVE_LOCAL_BUFFER (hsize_t, hdims, rank); |
|
677 OCTAVE_LOCAL_BUFFER (hsize_t, maxdims, rank); |
|
678 |
|
679 H5Sget_simple_extent_dims (space_hid, hdims, maxdims); |
|
680 |
5322
|
681 if (static_cast<int> (hdims[0]) != nc + 1 || |
|
682 static_cast<int> (hdims[1]) != 1) |
5164
|
683 { |
|
684 H5Sclose (space_hid); |
|
685 H5Dclose (data_hid); |
|
686 H5Gclose (group_hid); |
|
687 return false; |
|
688 } |
|
689 |
5351
|
690 octave_idx_type *itmp = m.xcidx (); |
|
691 if (H5Dread (data_hid, H5T_NATIVE_IDX, H5S_ALL, H5S_ALL, |
5760
|
692 H5P_DEFAULT, itmp) < 0) |
5164
|
693 { |
|
694 H5Sclose (space_hid); |
|
695 H5Dclose (data_hid); |
|
696 H5Gclose (group_hid); |
|
697 return false; |
|
698 } |
|
699 |
|
700 H5Sclose (space_hid); |
|
701 H5Dclose (data_hid); |
|
702 |
|
703 data_hid = H5Dopen (group_hid, "ridx"); |
|
704 space_hid = H5Dget_space (data_hid); |
|
705 rank = H5Sget_simple_extent_ndims (space_hid); |
|
706 |
|
707 if (rank != 2) |
|
708 { |
|
709 H5Sclose (space_hid); |
|
710 H5Dclose (data_hid); |
|
711 H5Gclose (group_hid); |
|
712 return false; |
|
713 } |
|
714 |
|
715 H5Sget_simple_extent_dims (space_hid, hdims, maxdims); |
|
716 |
5322
|
717 if (static_cast<int> (hdims[0]) != nz || static_cast<int> (hdims[1]) != 1) |
5164
|
718 { |
|
719 H5Sclose (space_hid); |
|
720 H5Dclose (data_hid); |
|
721 H5Gclose (group_hid); |
|
722 return false; |
|
723 } |
|
724 |
|
725 itmp = m.xridx (); |
5351
|
726 if (H5Dread (data_hid, H5T_NATIVE_IDX, H5S_ALL, H5S_ALL, |
5760
|
727 H5P_DEFAULT, itmp) < 0) |
5164
|
728 { |
|
729 H5Sclose (space_hid); |
|
730 H5Dclose (data_hid); |
|
731 H5Gclose (group_hid); |
|
732 return false; |
|
733 } |
|
734 |
|
735 H5Sclose (space_hid); |
|
736 H5Dclose (data_hid); |
|
737 |
|
738 data_hid = H5Dopen (group_hid, "data"); |
|
739 space_hid = H5Dget_space (data_hid); |
|
740 rank = H5Sget_simple_extent_ndims (space_hid); |
|
741 |
|
742 if (rank != 2) |
|
743 { |
|
744 H5Sclose (space_hid); |
|
745 H5Dclose (data_hid); |
|
746 H5Gclose (group_hid); |
|
747 return false; |
|
748 } |
|
749 |
|
750 H5Sget_simple_extent_dims (space_hid, hdims, maxdims); |
|
751 |
5322
|
752 if (static_cast<int> (hdims[0]) != nz || static_cast<int> (hdims[1]) != 1) |
5164
|
753 { |
|
754 H5Sclose (space_hid); |
|
755 H5Dclose (data_hid); |
|
756 H5Gclose (group_hid); |
|
757 return false; |
|
758 } |
|
759 |
|
760 double *dtmp = m.xdata (); |
|
761 if (H5Dread (data_hid, H5T_NATIVE_DOUBLE, H5S_ALL, H5S_ALL, |
5760
|
762 H5P_DEFAULT, dtmp) < 0) |
5164
|
763 { |
|
764 H5Sclose (space_hid); |
|
765 H5Dclose (data_hid); |
|
766 H5Gclose (group_hid); |
|
767 return false; |
|
768 } |
|
769 |
|
770 H5Sclose (space_hid); |
|
771 H5Dclose (data_hid); |
|
772 H5Gclose (group_hid); |
|
773 |
|
774 matrix = m; |
|
775 |
|
776 return true; |
|
777 } |
|
778 #endif |
|
779 |
|
780 /* |
|
781 ;;; Local Variables: *** |
|
782 ;;; mode: C++ *** |
|
783 ;;; End: *** |
|
784 */ |