1 | /*
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2 | * lib/bitmap.c
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3 | * Helper functions for bitmap.h.
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4 | *
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5 | * This source code is licensed under the GNU General Public License,
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6 | * Version 2. See the file COPYING for more details.
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7 | */
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8 | #include <linux/module.h>
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9 | #include <linux/ctype.h>
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10 | #include <linux/errno.h>
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11 | #include <linux/bitmap.h>
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12 | #include <linux/bitops.h>
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13 | #include <asm/uaccess.h>
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14 | #include <linux/list.h>
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15 | #include <linux/byteorder/generic.h>
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16 | #include <linux/byteorder/little_endian.h>
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17 |
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18 | /*
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19 | * bitmaps provide an array of bits, implemented using an an
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20 | * array of unsigned longs. The number of valid bits in a
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21 | * given bitmap does _not_ need to be an exact multiple of
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22 | * BITS_PER_LONG.
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23 | *
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24 | * The possible unused bits in the last, partially used word
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25 | * of a bitmap are 'don't care'. The implementation makes
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26 | * no particular effort to keep them zero. It ensures that
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27 | * their value will not affect the results of any operation.
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28 | * The bitmap operations that return Boolean (bitmap_empty,
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29 | * for example) or scalar (bitmap_weight, for example) results
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30 | * carefully filter out these unused bits from impacting their
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31 | * results.
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32 | *
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33 | * These operations actually hold to a slightly stronger rule:
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34 | * if you don't input any bitmaps to these ops that have some
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35 | * unused bits set, then they won't output any set unused bits
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36 | * in output bitmaps.
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37 | *
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38 | * The byte ordering of bitmaps is more natural on little
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39 | * endian architectures. See the big-endian headers
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40 | * include/asm-ppc64/bitops.h and include/asm-s390/bitops.h
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41 | * for the best explanations of this ordering.
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42 | */
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43 |
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44 | int __bitmap_empty(const unsigned long *bitmap, int bits)
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45 | {
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46 | int k, lim = bits/BITS_PER_LONG;
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47 | for (k = 0; k < lim; ++k)
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48 | if (bitmap[k])
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49 | return 0;
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50 |
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51 | if (bits % BITS_PER_LONG)
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52 | if (bitmap[k] & BITMAP_LAST_WORD_MASK(bits))
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53 | return 0;
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54 |
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55 | return 1;
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56 | }
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57 | EXPORT_SYMBOL(__bitmap_empty);
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58 |
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59 | int __bitmap_full(const unsigned long *bitmap, int bits)
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60 | {
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61 | int k, lim = bits/BITS_PER_LONG;
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62 | for (k = 0; k < lim; ++k)
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63 | if (~bitmap[k])
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64 | return 0;
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65 |
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66 | if (bits % BITS_PER_LONG)
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67 | if (~bitmap[k] & BITMAP_LAST_WORD_MASK(bits))
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68 | return 0;
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69 |
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70 | return 1;
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71 | }
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72 | EXPORT_SYMBOL(__bitmap_full);
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73 |
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74 | int __bitmap_equal(const unsigned long *bitmap1,
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75 | const unsigned long *bitmap2, int bits)
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76 | {
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77 | int k, lim = bits/BITS_PER_LONG;
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78 | for (k = 0; k < lim; ++k)
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79 | if (bitmap1[k] != bitmap2[k])
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80 | return 0;
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81 |
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82 | if (bits % BITS_PER_LONG)
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83 | if ((bitmap1[k] ^ bitmap2[k]) & BITMAP_LAST_WORD_MASK(bits))
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84 | return 0;
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85 |
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86 | return 1;
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87 | }
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88 | EXPORT_SYMBOL(__bitmap_equal);
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89 |
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90 | void __bitmap_complement(unsigned long *dst, const unsigned long *src, int bits)
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91 | {
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92 | int k, lim = bits/BITS_PER_LONG;
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93 | for (k = 0; k < lim; ++k)
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94 | dst[k] = ~src[k];
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95 |
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96 | if (bits % BITS_PER_LONG)
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97 | dst[k] = ~src[k] & BITMAP_LAST_WORD_MASK(bits);
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98 | }
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99 | EXPORT_SYMBOL(__bitmap_complement);
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100 |
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101 | /**
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102 | * __bitmap_shift_right - logical right shift of the bits in a bitmap
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103 | * @dst : destination bitmap
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104 | * @src : source bitmap
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105 | * @shift : shift by this many bits
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106 | * @bits : bitmap size, in bits
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107 | *
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108 | * Shifting right (dividing) means moving bits in the MS -> LS bit
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109 | * direction. Zeros are fed into the vacated MS positions and the
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110 | * LS bits shifted off the bottom are lost.
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111 | */
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112 | void __bitmap_shift_right(unsigned long *dst,
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113 | const unsigned long *src, int shift, int bits)
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114 | {
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115 | int k, lim = BITS_TO_LONGS(bits), left = bits % BITS_PER_LONG;
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116 | int off = shift/BITS_PER_LONG, rem = shift % BITS_PER_LONG;
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117 | unsigned long mask = (1UL << left) - 1;
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118 | for (k = 0; off + k < lim; ++k) {
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119 | unsigned long upper, lower;
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120 |
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121 | /*
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122 | * If shift is not word aligned, take lower rem bits of
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123 | * word above and make them the top rem bits of result.
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124 | */
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125 | if (!rem || off + k + 1 >= lim)
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126 | upper = 0;
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127 | else {
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128 | upper = src[off + k + 1];
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129 | if (off + k + 1 == lim - 1 && left)
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130 | upper &= mask;
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131 | }
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132 | lower = src[off + k];
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133 | if (left && off + k == lim - 1)
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134 | lower &= mask;
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135 | dst[k] = upper << (BITS_PER_LONG - rem) | lower >> rem;
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136 | if (left && k == lim - 1)
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137 | dst[k] &= mask;
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138 | }
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139 | if (off)
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140 | memset(&dst[lim - off], 0, off*sizeof(unsigned long));
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141 | }
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142 | EXPORT_SYMBOL(__bitmap_shift_right);
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143 |
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144 |
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145 | /**
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146 | * __bitmap_shift_left - logical left shift of the bits in a bitmap
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147 | * @dst : destination bitmap
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148 | * @src : source bitmap
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149 | * @shift : shift by this many bits
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150 | * @bits : bitmap size, in bits
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151 | *
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152 | * Shifting left (multiplying) means moving bits in the LS -> MS
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153 | * direction. Zeros are fed into the vacated LS bit positions
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154 | * and those MS bits shifted off the top are lost.
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155 | */
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156 |
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157 | void __bitmap_shift_left(unsigned long *dst,
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158 | const unsigned long *src, int shift, int bits)
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159 | {
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160 | int k, lim = BITS_TO_LONGS(bits), left = bits % BITS_PER_LONG;
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161 | int off = shift/BITS_PER_LONG, rem = shift % BITS_PER_LONG;
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162 | for (k = lim - off - 1; k >= 0; --k) {
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163 | unsigned long upper, lower;
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164 |
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165 | /*
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166 | * If shift is not word aligned, take upper rem bits of
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167 | * word below and make them the bottom rem bits of result.
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168 | */
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169 | if (rem && k > 0)
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170 | lower = src[k - 1];
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171 | else
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172 | lower = 0;
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173 | upper = src[k];
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174 | if (left && k == lim - 1)
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175 | upper &= (1UL << left) - 1;
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176 | dst[k + off] = lower >> (BITS_PER_LONG - rem) | upper << rem;
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177 | if (left && k + off == lim - 1)
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178 | dst[k + off] &= (1UL << left) - 1;
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179 | }
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180 | if (off)
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181 | memset(dst, 0, off*sizeof(unsigned long));
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182 | }
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183 | EXPORT_SYMBOL(__bitmap_shift_left);
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184 |
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185 | int __bitmap_and(unsigned long *dst, const unsigned long *bitmap1,
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186 | const unsigned long *bitmap2, int bits)
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187 | {
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188 | int k;
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189 | int nr = BITS_TO_LONGS(bits);
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190 | unsigned long result = 0;
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191 |
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192 | for (k = 0; k < nr; k++)
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193 | result |= (dst[k] = bitmap1[k] & bitmap2[k]);
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194 | return result != 0;
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195 | }
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196 | EXPORT_SYMBOL(__bitmap_and);
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197 |
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198 | void __bitmap_or(unsigned long *dst, const unsigned long *bitmap1,
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199 | const unsigned long *bitmap2, int bits)
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200 | {
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201 | int k;
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202 | int nr = BITS_TO_LONGS(bits);
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203 |
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204 | for (k = 0; k < nr; k++)
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205 | dst[k] = bitmap1[k] | bitmap2[k];
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206 | }
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207 | EXPORT_SYMBOL(__bitmap_or);
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208 |
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209 | void __bitmap_xor(unsigned long *dst, const unsigned long *bitmap1,
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210 | const unsigned long *bitmap2, int bits)
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211 | {
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212 | int k;
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213 | int nr = BITS_TO_LONGS(bits);
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214 |
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215 | for (k = 0; k < nr; k++)
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216 | dst[k] = bitmap1[k] ^ bitmap2[k];
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217 | }
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218 | EXPORT_SYMBOL(__bitmap_xor);
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219 |
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220 | int __bitmap_andnot(unsigned long *dst, const unsigned long *bitmap1,
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221 | const unsigned long *bitmap2, int bits)
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222 | {
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223 | int k;
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224 | int nr = BITS_TO_LONGS(bits);
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225 | unsigned long result = 0;
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226 |
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227 | for (k = 0; k < nr; k++)
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228 | result |= (dst[k] = bitmap1[k] & ~bitmap2[k]);
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229 | return result != 0;
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230 | }
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231 | EXPORT_SYMBOL(__bitmap_andnot);
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232 |
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233 | int __bitmap_intersects(const unsigned long *bitmap1,
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234 | const unsigned long *bitmap2, int bits)
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235 | {
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236 | int k, lim = bits/BITS_PER_LONG;
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237 | for (k = 0; k < lim; ++k)
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238 | if (bitmap1[k] & bitmap2[k])
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239 | return 1;
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240 |
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241 | if (bits % BITS_PER_LONG)
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242 | if ((bitmap1[k] & bitmap2[k]) & BITMAP_LAST_WORD_MASK(bits))
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243 | return 1;
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244 | return 0;
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245 | }
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246 | EXPORT_SYMBOL(__bitmap_intersects);
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247 |
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248 | int __bitmap_subset(const unsigned long *bitmap1,
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249 | const unsigned long *bitmap2, int bits)
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250 | {
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251 | int k, lim = bits/BITS_PER_LONG;
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252 | for (k = 0; k < lim; ++k)
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253 | if (bitmap1[k] & ~bitmap2[k])
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254 | return 0;
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255 |
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256 | if (bits % BITS_PER_LONG)
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257 | if ((bitmap1[k] & ~bitmap2[k]) & BITMAP_LAST_WORD_MASK(bits))
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258 | return 0;
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259 | return 1;
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260 | }
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261 | EXPORT_SYMBOL(__bitmap_subset);
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262 |
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263 | #if 0
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264 | int __bitmap_weight(const unsigned long *bitmap, int bits)
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265 | {
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266 | int k, w = 0, lim = bits/BITS_PER_LONG;
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267 |
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268 | for (k = 0; k < lim; k++)
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269 | w += hweight_long(bitmap[k]);
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270 |
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271 | if (bits % BITS_PER_LONG)
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272 | w += hweight_long(bitmap[k] & BITMAP_LAST_WORD_MASK(bits));
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273 |
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274 | return w;
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275 | }
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276 | EXPORT_SYMBOL(__bitmap_weight);
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277 | #endif
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278 |
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279 | #define BITMAP_FIRST_WORD_MASK(start) (~0UL << ((start) % BITS_PER_LONG))
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280 |
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281 | void bitmap_set(unsigned long *map, int start, int nr)
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282 | {
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283 | unsigned long *p = map + BIT_WORD(start);
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284 | const int size = start + nr;
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285 | int bits_to_set = BITS_PER_LONG - (start % BITS_PER_LONG);
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286 | unsigned long mask_to_set = BITMAP_FIRST_WORD_MASK(start);
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287 |
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288 | while (nr - bits_to_set >= 0) {
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289 | *p |= mask_to_set;
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290 | nr -= bits_to_set;
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291 | bits_to_set = BITS_PER_LONG;
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292 | mask_to_set = ~0UL;
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293 | p++;
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294 | }
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295 | if (nr) {
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296 | mask_to_set &= BITMAP_LAST_WORD_MASK(size);
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297 | *p |= mask_to_set;
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298 | }
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299 | }
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300 | EXPORT_SYMBOL(bitmap_set);
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301 |
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302 | void bitmap_clear(unsigned long *map, int start, int nr)
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303 | {
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304 | unsigned long *p = map + BIT_WORD(start);
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305 | const int size = start + nr;
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306 | int bits_to_clear = BITS_PER_LONG - (start % BITS_PER_LONG);
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307 | unsigned long mask_to_clear = BITMAP_FIRST_WORD_MASK(start);
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308 |
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309 | while (nr - bits_to_clear >= 0) {
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310 | *p &= ~mask_to_clear;
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311 | nr -= bits_to_clear;
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312 | bits_to_clear = BITS_PER_LONG;
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313 | mask_to_clear = ~0UL;
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314 | p++;
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315 | }
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316 | if (nr) {
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317 | mask_to_clear &= BITMAP_LAST_WORD_MASK(size);
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318 | *p &= ~mask_to_clear;
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319 | }
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320 | }
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321 | EXPORT_SYMBOL(bitmap_clear);
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322 |
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323 | /*
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324 | * bitmap_find_next_zero_area - find a contiguous aligned zero area
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325 | * @map: The address to base the search on
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326 | * @size: The bitmap size in bits
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327 | * @start: The bitnumber to start searching at
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328 | * @nr: The number of zeroed bits we're looking for
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329 | * @align_mask: Alignment mask for zero area
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330 | *
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331 | * The @align_mask should be one less than a power of 2; the effect is that
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332 | * the bit offset of all zero areas this function finds is multiples of that
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333 | * power of 2. A @align_mask of 0 means no alignment is required.
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334 | */
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335 | unsigned long bitmap_find_next_zero_area(unsigned long *map,
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336 | unsigned long size,
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337 | unsigned long start,
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338 | unsigned int nr,
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339 | unsigned long align_mask)
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340 | {
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341 | unsigned long index, end, i;
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342 | again:
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343 | index = find_next_zero_bit(map, size, start);
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344 |
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345 | /* Align allocation */
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346 | index = __ALIGN_MASK(index, align_mask);
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347 |
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348 | end = index + nr;
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349 | if (end > size)
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350 | return end;
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351 | i = find_next_bit(map, end, index);
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352 | if (i < end) {
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353 | start = i + 1;
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354 | goto again;
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355 | }
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356 | return index;
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357 | }
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358 | EXPORT_SYMBOL(bitmap_find_next_zero_area);
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359 |
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360 | /*
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361 | * Bitmap printing & parsing functions: first version by Bill Irwin,
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362 | * second version by Paul Jackson, third by Joe Korty.
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363 | */
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364 |
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365 | #define CHUNKSZ 32
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366 | #define nbits_to_hold_value(val) fls(val)
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367 | #define BASEDEC 10 /* fancier cpuset lists input in decimal */
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368 |
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369 | /**
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370 | * bitmap_scnprintf - convert bitmap to an ASCII hex string.
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371 | * @buf: byte buffer into which string is placed
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372 | * @buflen: reserved size of @buf, in bytes
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373 | * @maskp: pointer to bitmap to convert
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374 | * @nmaskbits: size of bitmap, in bits
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375 | *
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376 | * Exactly @nmaskbits bits are displayed. Hex digits are grouped into
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377 | * comma-separated sets of eight digits per set.
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378 | */
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379 | int bitmap_scnprintf(char *buf, unsigned int buflen,
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380 | const unsigned long *maskp, int nmaskbits)
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381 | {
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382 | int i, word, bit, len = 0;
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383 | unsigned long val;
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384 | const char *sep = "";
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385 | int chunksz;
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386 | u32 chunkmask;
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387 |
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388 | chunksz = nmaskbits & (CHUNKSZ - 1);
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389 | if (chunksz == 0)
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390 | chunksz = CHUNKSZ;
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391 |
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392 | i = ALIGN(nmaskbits, CHUNKSZ) - CHUNKSZ;
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393 | for (; i >= 0; i -= CHUNKSZ) {
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394 | chunkmask = ((1ULL << chunksz) - 1);
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395 | word = i / BITS_PER_LONG;
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396 | bit = i % BITS_PER_LONG;
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397 | val = (maskp[word] >> bit) & chunkmask;
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398 | len += scnprintf(buf+len, buflen-len, "%s%0*lx", sep,
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399 | (chunksz+3)/4, val);
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400 | chunksz = CHUNKSZ;
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401 | sep = ",";
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402 | }
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403 | return len;
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404 | }
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405 | EXPORT_SYMBOL(bitmap_scnprintf);
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406 |
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407 | /**
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408 | * __bitmap_parse - convert an ASCII hex string into a bitmap.
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409 | * @buf: pointer to buffer containing string.
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410 | * @buflen: buffer size in bytes. If string is smaller than this
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411 | * then it must be terminated with a \0.
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412 | * @is_user: location of buffer, 0 indicates kernel space
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413 | * @maskp: pointer to bitmap array that will contain result.
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414 | * @nmaskbits: size of bitmap, in bits.
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415 | *
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416 | * Commas group hex digits into chunks. Each chunk defines exactly 32
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417 | * bits of the resultant bitmask. No chunk may specify a value larger
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418 | * than 32 bits (%-EOVERFLOW), and if a chunk specifies a smaller value
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419 | * then leading 0-bits are prepended. %-EINVAL is returned for illegal
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420 | * characters and for grouping errors such as "1,,5", ",44", "," and "".
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421 | * Leading and trailing whitespace accepted, but not embedded whitespace.
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422 | */
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423 | int __bitmap_parse(const char *buf, unsigned int buflen,
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424 | int is_user, unsigned long *maskp,
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425 | int nmaskbits)
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426 | {
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427 | int c, old_c, totaldigits, ndigits, nchunks, nbits;
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428 | u32 chunk;
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429 | // const char __user *ubuf = buf;
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430 |
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431 | bitmap_zero(maskp, nmaskbits);
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432 |
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433 | nchunks = nbits = totaldigits = c = 0;
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434 | do {
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435 | chunk = ndigits = 0;
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436 |
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437 | /* Get the next chunk of the bitmap */
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438 | while (buflen) {
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439 | old_c = c;
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440 | #if 0
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441 | if (is_user) {
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442 | if (__get_user(c, ubuf++))
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443 | return -EFAULT;
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444 | }
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445 | else
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446 | #endif
|
---|
447 | c = *buf++;
|
---|
448 | buflen--;
|
---|
449 | if (isspace(c))
|
---|
450 | continue;
|
---|
451 |
|
---|
452 | /*
|
---|
453 | * If the last character was a space and the current
|
---|
454 | * character isn't '\0', we've got embedded whitespace.
|
---|
455 | * This is a no-no, so throw an error.
|
---|
456 | */
|
---|
457 | if (totaldigits && c && isspace(old_c))
|
---|
458 | return -EINVAL;
|
---|
459 |
|
---|
460 | /* A '\0' or a ',' signal the end of the chunk */
|
---|
461 | if (c == '\0' || c == ',')
|
---|
462 | break;
|
---|
463 |
|
---|
464 | if (!isxdigit(c))
|
---|
465 | return -EINVAL;
|
---|
466 |
|
---|
467 | /*
|
---|
468 | * Make sure there are at least 4 free bits in 'chunk'.
|
---|
469 | * If not, this hexdigit will overflow 'chunk', so
|
---|
470 | * throw an error.
|
---|
471 | */
|
---|
472 | if (chunk & ~((1UL << (CHUNKSZ - 4)) - 1))
|
---|
473 | return -EOVERFLOW;
|
---|
474 |
|
---|
475 | chunk = (chunk << 4) | hex_to_bin(c);
|
---|
476 | ndigits++; totaldigits++;
|
---|
477 | }
|
---|
478 | if (ndigits == 0)
|
---|
479 | return -EINVAL;
|
---|
480 | if (nchunks == 0 && chunk == 0)
|
---|
481 | continue;
|
---|
482 |
|
---|
483 | __bitmap_shift_left(maskp, maskp, CHUNKSZ, nmaskbits);
|
---|
484 | *maskp |= chunk;
|
---|
485 | nchunks++;
|
---|
486 | nbits += (nchunks == 1) ? nbits_to_hold_value(chunk) : CHUNKSZ;
|
---|
487 | if (nbits > nmaskbits)
|
---|
488 | return -EOVERFLOW;
|
---|
489 | } while (buflen && c == ',');
|
---|
490 |
|
---|
491 | return 0;
|
---|
492 | }
|
---|
493 | EXPORT_SYMBOL(__bitmap_parse);
|
---|
494 |
|
---|
495 | /**
|
---|
496 | * bitmap_parse_user - convert an ASCII hex string in a user buffer into a bitmap
|
---|
497 | *
|
---|
498 | * @ubuf: pointer to user buffer containing string.
|
---|
499 | * @ulen: buffer size in bytes. If string is smaller than this
|
---|
500 | * then it must be terminated with a \0.
|
---|
501 | * @maskp: pointer to bitmap array that will contain result.
|
---|
502 | * @nmaskbits: size of bitmap, in bits.
|
---|
503 | *
|
---|
504 | * Wrapper for __bitmap_parse(), providing it with user buffer.
|
---|
505 | *
|
---|
506 | * We cannot have this as an inline function in bitmap.h because it needs
|
---|
507 | * linux/uaccess.h to get the access_ok() declaration and this causes
|
---|
508 | * cyclic dependencies.
|
---|
509 | */
|
---|
510 | int bitmap_parse_user(const char __user *ubuf,
|
---|
511 | unsigned int ulen, unsigned long *maskp,
|
---|
512 | int nmaskbits)
|
---|
513 | {
|
---|
514 | if (!access_ok(VERIFY_READ, ubuf, ulen))
|
---|
515 | return -EFAULT;
|
---|
516 | return __bitmap_parse((const char *)ubuf, ulen, 1, maskp, nmaskbits);
|
---|
517 | }
|
---|
518 | EXPORT_SYMBOL(bitmap_parse_user);
|
---|
519 |
|
---|
520 | /*
|
---|
521 | * bscnl_emit(buf, buflen, rbot, rtop, bp)
|
---|
522 | *
|
---|
523 | * Helper routine for bitmap_scnlistprintf(). Write decimal number
|
---|
524 | * or range to buf, suppressing output past buf+buflen, with optional
|
---|
525 | * comma-prefix. Return len of what would be written to buf, if it
|
---|
526 | * all fit.
|
---|
527 | */
|
---|
528 | static inline int bscnl_emit(char *buf, int buflen, int rbot, int rtop, int len)
|
---|
529 | {
|
---|
530 | if (len > 0)
|
---|
531 | len += scnprintf(buf + len, buflen - len, ",");
|
---|
532 | if (rbot == rtop)
|
---|
533 | len += scnprintf(buf + len, buflen - len, "%d", rbot);
|
---|
534 | else
|
---|
535 | len += scnprintf(buf + len, buflen - len, "%d-%d", rbot, rtop);
|
---|
536 | return len;
|
---|
537 | }
|
---|
538 |
|
---|
539 | /**
|
---|
540 | * bitmap_scnlistprintf - convert bitmap to list format ASCII string
|
---|
541 | * @buf: byte buffer into which string is placed
|
---|
542 | * @buflen: reserved size of @buf, in bytes
|
---|
543 | * @maskp: pointer to bitmap to convert
|
---|
544 | * @nmaskbits: size of bitmap, in bits
|
---|
545 | *
|
---|
546 | * Output format is a comma-separated list of decimal numbers and
|
---|
547 | * ranges. Consecutively set bits are shown as two hyphen-separated
|
---|
548 | * decimal numbers, the smallest and largest bit numbers set in
|
---|
549 | * the range. Output format is compatible with the format
|
---|
550 | * accepted as input by bitmap_parselist().
|
---|
551 | *
|
---|
552 | * The return value is the number of characters which would be
|
---|
553 | * generated for the given input, excluding the trailing '\0', as
|
---|
554 | * per ISO C99.
|
---|
555 | */
|
---|
556 | int bitmap_scnlistprintf(char *buf, unsigned int buflen,
|
---|
557 | const unsigned long *maskp, int nmaskbits)
|
---|
558 | {
|
---|
559 | int len = 0;
|
---|
560 | /* current bit is 'cur', most recently seen range is [rbot, rtop] */
|
---|
561 | int cur, rbot, rtop;
|
---|
562 |
|
---|
563 | if (buflen == 0)
|
---|
564 | return 0;
|
---|
565 | buf[0] = 0;
|
---|
566 |
|
---|
567 | rbot = cur = find_first_bit(maskp, nmaskbits);
|
---|
568 | while (cur < nmaskbits) {
|
---|
569 | rtop = cur;
|
---|
570 | cur = find_next_bit(maskp, nmaskbits, cur+1);
|
---|
571 | if (cur >= nmaskbits || cur > rtop + 1) {
|
---|
572 | len = bscnl_emit(buf, buflen, rbot, rtop, len);
|
---|
573 | rbot = cur;
|
---|
574 | }
|
---|
575 | }
|
---|
576 | return len;
|
---|
577 | }
|
---|
578 | EXPORT_SYMBOL(bitmap_scnlistprintf);
|
---|
579 |
|
---|
580 | /**
|
---|
581 | * __bitmap_parselist - convert list format ASCII string to bitmap
|
---|
582 | * @buf: read nul-terminated user string from this buffer
|
---|
583 | * @buflen: buffer size in bytes. If string is smaller than this
|
---|
584 | * then it must be terminated with a \0.
|
---|
585 | * @is_user: location of buffer, 0 indicates kernel space
|
---|
586 | * @maskp: write resulting mask here
|
---|
587 | * @nmaskbits: number of bits in mask to be written
|
---|
588 | *
|
---|
589 | * Input format is a comma-separated list of decimal numbers and
|
---|
590 | * ranges. Consecutively set bits are shown as two hyphen-separated
|
---|
591 | * decimal numbers, the smallest and largest bit numbers set in
|
---|
592 | * the range.
|
---|
593 | *
|
---|
594 | * Returns 0 on success, -errno on invalid input strings.
|
---|
595 | * Error values:
|
---|
596 | * %-EINVAL: second number in range smaller than first
|
---|
597 | * %-EINVAL: invalid character in string
|
---|
598 | * %-ERANGE: bit number specified too large for mask
|
---|
599 | */
|
---|
600 | static int __bitmap_parselist(const char *buf, unsigned int buflen,
|
---|
601 | int is_user, unsigned long *maskp,
|
---|
602 | int nmaskbits)
|
---|
603 | {
|
---|
604 | unsigned a, b;
|
---|
605 | int c, old_c, totaldigits;
|
---|
606 | // const char __user *ubuf = buf;
|
---|
607 | int exp_digit, in_range;
|
---|
608 |
|
---|
609 | totaldigits = c = 0;
|
---|
610 | bitmap_zero(maskp, nmaskbits);
|
---|
611 | do {
|
---|
612 | exp_digit = 1;
|
---|
613 | in_range = 0;
|
---|
614 | a = b = 0;
|
---|
615 |
|
---|
616 | /* Get the next cpu# or a range of cpu#'s */
|
---|
617 | while (buflen) {
|
---|
618 | old_c = c;
|
---|
619 | #if 0
|
---|
620 | if (is_user) {
|
---|
621 | if (__get_user(c, ubuf++))
|
---|
622 | return -EFAULT;
|
---|
623 | } else
|
---|
624 | #endif
|
---|
625 | c = *buf++;
|
---|
626 | buflen--;
|
---|
627 | if (isspace(c))
|
---|
628 | continue;
|
---|
629 |
|
---|
630 | /*
|
---|
631 | * If the last character was a space and the current
|
---|
632 | * character isn't '\0', we've got embedded whitespace.
|
---|
633 | * This is a no-no, so throw an error.
|
---|
634 | */
|
---|
635 | if (totaldigits && c && isspace(old_c))
|
---|
636 | return -EINVAL;
|
---|
637 |
|
---|
638 | /* A '\0' or a ',' signal the end of a cpu# or range */
|
---|
639 | if (c == '\0' || c == ',')
|
---|
640 | break;
|
---|
641 |
|
---|
642 | if (c == '-') {
|
---|
643 | if (exp_digit || in_range)
|
---|
644 | return -EINVAL;
|
---|
645 | b = 0;
|
---|
646 | in_range = 1;
|
---|
647 | exp_digit = 1;
|
---|
648 | continue;
|
---|
649 | }
|
---|
650 |
|
---|
651 | if (!isdigit(c))
|
---|
652 | return -EINVAL;
|
---|
653 |
|
---|
654 | b = b * 10 + (c - '0');
|
---|
655 | if (!in_range)
|
---|
656 | a = b;
|
---|
657 | exp_digit = 0;
|
---|
658 | totaldigits++;
|
---|
659 | }
|
---|
660 | if (!(a <= b))
|
---|
661 | return -EINVAL;
|
---|
662 | if (b >= nmaskbits)
|
---|
663 | return -ERANGE;
|
---|
664 | while (a <= b) {
|
---|
665 | set_bit(a, maskp);
|
---|
666 | a++;
|
---|
667 | }
|
---|
668 | } while (buflen && c == ',');
|
---|
669 | return 0;
|
---|
670 | }
|
---|
671 |
|
---|
672 | int bitmap_parselist(const char *bp, unsigned long *maskp, int nmaskbits)
|
---|
673 | {
|
---|
674 | char *nl = strchr(bp, '\n');
|
---|
675 | int len;
|
---|
676 |
|
---|
677 | if (nl)
|
---|
678 | len = nl - bp;
|
---|
679 | else
|
---|
680 | len = strlen(bp);
|
---|
681 |
|
---|
682 | return __bitmap_parselist(bp, len, 0, maskp, nmaskbits);
|
---|
683 | }
|
---|
684 | EXPORT_SYMBOL(bitmap_parselist);
|
---|
685 |
|
---|
686 |
|
---|
687 | /**
|
---|
688 | * bitmap_parselist_user()
|
---|
689 | *
|
---|
690 | * @ubuf: pointer to user buffer containing string.
|
---|
691 | * @ulen: buffer size in bytes. If string is smaller than this
|
---|
692 | * then it must be terminated with a \0.
|
---|
693 | * @maskp: pointer to bitmap array that will contain result.
|
---|
694 | * @nmaskbits: size of bitmap, in bits.
|
---|
695 | *
|
---|
696 | * Wrapper for bitmap_parselist(), providing it with user buffer.
|
---|
697 | *
|
---|
698 | * We cannot have this as an inline function in bitmap.h because it needs
|
---|
699 | * linux/uaccess.h to get the access_ok() declaration and this causes
|
---|
700 | * cyclic dependencies.
|
---|
701 | */
|
---|
702 | int bitmap_parselist_user(const char __user *ubuf,
|
---|
703 | unsigned int ulen, unsigned long *maskp,
|
---|
704 | int nmaskbits)
|
---|
705 | {
|
---|
706 | if (!access_ok(VERIFY_READ, ubuf, ulen))
|
---|
707 | return -EFAULT;
|
---|
708 | return __bitmap_parselist((const char *)ubuf,
|
---|
709 | ulen, 1, maskp, nmaskbits);
|
---|
710 | }
|
---|
711 | EXPORT_SYMBOL(bitmap_parselist_user);
|
---|
712 |
|
---|
713 |
|
---|
714 | # if 0
|
---|
715 | /**
|
---|
716 | * bitmap_pos_to_ord - find ordinal of set bit at given position in bitmap
|
---|
717 | * @buf: pointer to a bitmap
|
---|
718 | * @pos: a bit position in @buf (0 <= @pos < @bits)
|
---|
719 | * @bits: number of valid bit positions in @buf
|
---|
720 | *
|
---|
721 | * Map the bit at position @pos in @buf (of length @bits) to the
|
---|
722 | * ordinal of which set bit it is. If it is not set or if @pos
|
---|
723 | * is not a valid bit position, map to -1.
|
---|
724 | *
|
---|
725 | * If for example, just bits 4 through 7 are set in @buf, then @pos
|
---|
726 | * values 4 through 7 will get mapped to 0 through 3, respectively,
|
---|
727 | * and other @pos values will get mapped to 0. When @pos value 7
|
---|
728 | * gets mapped to (returns) @ord value 3 in this example, that means
|
---|
729 | * that bit 7 is the 3rd (starting with 0th) set bit in @buf.
|
---|
730 | *
|
---|
731 | * The bit positions 0 through @bits are valid positions in @buf.
|
---|
732 | */
|
---|
733 | static int bitmap_pos_to_ord(const unsigned long *buf, int pos, int bits)
|
---|
734 | {
|
---|
735 | int i, ord;
|
---|
736 |
|
---|
737 | if (pos < 0 || pos >= bits || !test_bit(pos, buf))
|
---|
738 | return -1;
|
---|
739 |
|
---|
740 | i = find_first_bit(buf, bits);
|
---|
741 | ord = 0;
|
---|
742 | while (i < pos) {
|
---|
743 | i = find_next_bit(buf, bits, i + 1);
|
---|
744 | ord++;
|
---|
745 | }
|
---|
746 | BUG_ON(i != pos);
|
---|
747 |
|
---|
748 | return ord;
|
---|
749 | }
|
---|
750 |
|
---|
751 | /**
|
---|
752 | * bitmap_ord_to_pos - find position of n-th set bit in bitmap
|
---|
753 | * @buf: pointer to bitmap
|
---|
754 | * @ord: ordinal bit position (n-th set bit, n >= 0)
|
---|
755 | * @bits: number of valid bit positions in @buf
|
---|
756 | *
|
---|
757 | * Map the ordinal offset of bit @ord in @buf to its position in @buf.
|
---|
758 | * Value of @ord should be in range 0 <= @ord < weight(buf), else
|
---|
759 | * results are undefined.
|
---|
760 | *
|
---|
761 | * If for example, just bits 4 through 7 are set in @buf, then @ord
|
---|
762 | * values 0 through 3 will get mapped to 4 through 7, respectively,
|
---|
763 | * and all other @ord values return undefined values. When @ord value 3
|
---|
764 | * gets mapped to (returns) @pos value 7 in this example, that means
|
---|
765 | * that the 3rd set bit (starting with 0th) is at position 7 in @buf.
|
---|
766 | *
|
---|
767 | * The bit positions 0 through @bits are valid positions in @buf.
|
---|
768 | */
|
---|
769 | static int bitmap_ord_to_pos(const unsigned long *buf, int ord, int bits)
|
---|
770 | {
|
---|
771 | int pos = 0;
|
---|
772 |
|
---|
773 | if (ord >= 0 && ord < bits) {
|
---|
774 | int i;
|
---|
775 |
|
---|
776 | for (i = find_first_bit(buf, bits);
|
---|
777 | i < bits && ord > 0;
|
---|
778 | i = find_next_bit(buf, bits, i + 1))
|
---|
779 | ord--;
|
---|
780 | if (i < bits && ord == 0)
|
---|
781 | pos = i;
|
---|
782 | }
|
---|
783 |
|
---|
784 | return pos;
|
---|
785 | }
|
---|
786 |
|
---|
787 | /**
|
---|
788 | * bitmap_remap - Apply map defined by a pair of bitmaps to another bitmap
|
---|
789 | * @dst: remapped result
|
---|
790 | * @src: subset to be remapped
|
---|
791 | * @old: defines domain of map
|
---|
792 | * @new: defines range of map
|
---|
793 | * @bits: number of bits in each of these bitmaps
|
---|
794 | *
|
---|
795 | * Let @old and @new define a mapping of bit positions, such that
|
---|
796 | * whatever position is held by the n-th set bit in @old is mapped
|
---|
797 | * to the n-th set bit in @new. In the more general case, allowing
|
---|
798 | * for the possibility that the weight 'w' of @new is less than the
|
---|
799 | * weight of @old, map the position of the n-th set bit in @old to
|
---|
800 | * the position of the m-th set bit in @new, where m == n % w.
|
---|
801 | *
|
---|
802 | * If either of the @old and @new bitmaps are empty, or if @src and
|
---|
803 | * @dst point to the same location, then this routine copies @src
|
---|
804 | * to @dst.
|
---|
805 | *
|
---|
806 | * The positions of unset bits in @old are mapped to themselves
|
---|
807 | * (the identify map).
|
---|
808 | *
|
---|
809 | * Apply the above specified mapping to @src, placing the result in
|
---|
810 | * @dst, clearing any bits previously set in @dst.
|
---|
811 | *
|
---|
812 | * For example, lets say that @old has bits 4 through 7 set, and
|
---|
813 | * @new has bits 12 through 15 set. This defines the mapping of bit
|
---|
814 | * position 4 to 12, 5 to 13, 6 to 14 and 7 to 15, and of all other
|
---|
815 | * bit positions unchanged. So if say @src comes into this routine
|
---|
816 | * with bits 1, 5 and 7 set, then @dst should leave with bits 1,
|
---|
817 | * 13 and 15 set.
|
---|
818 | */
|
---|
819 | void bitmap_remap(unsigned long *dst, const unsigned long *src,
|
---|
820 | const unsigned long *old, const unsigned long *new,
|
---|
821 | int bits)
|
---|
822 | {
|
---|
823 | int oldbit, w;
|
---|
824 |
|
---|
825 | if (dst == src) /* following doesn't handle inplace remaps */
|
---|
826 | return;
|
---|
827 | bitmap_zero(dst, bits);
|
---|
828 |
|
---|
829 | w = bitmap_weight(new, bits);
|
---|
830 | for_each_set_bit(oldbit, src, bits) {
|
---|
831 | int n = bitmap_pos_to_ord(old, oldbit, bits);
|
---|
832 |
|
---|
833 | if (n < 0 || w == 0)
|
---|
834 | set_bit(oldbit, dst); /* identity map */
|
---|
835 | else
|
---|
836 | set_bit(bitmap_ord_to_pos(new, n % w, bits), dst);
|
---|
837 | }
|
---|
838 | }
|
---|
839 | EXPORT_SYMBOL(bitmap_remap);
|
---|
840 |
|
---|
841 | /**
|
---|
842 | * bitmap_bitremap - Apply map defined by a pair of bitmaps to a single bit
|
---|
843 | * @oldbit: bit position to be mapped
|
---|
844 | * @old: defines domain of map
|
---|
845 | * @new: defines range of map
|
---|
846 | * @bits: number of bits in each of these bitmaps
|
---|
847 | *
|
---|
848 | * Let @old and @new define a mapping of bit positions, such that
|
---|
849 | * whatever position is held by the n-th set bit in @old is mapped
|
---|
850 | * to the n-th set bit in @new. In the more general case, allowing
|
---|
851 | * for the possibility that the weight 'w' of @new is less than the
|
---|
852 | * weight of @old, map the position of the n-th set bit in @old to
|
---|
853 | * the position of the m-th set bit in @new, where m == n % w.
|
---|
854 | *
|
---|
855 | * The positions of unset bits in @old are mapped to themselves
|
---|
856 | * (the identify map).
|
---|
857 | *
|
---|
858 | * Apply the above specified mapping to bit position @oldbit, returning
|
---|
859 | * the new bit position.
|
---|
860 | *
|
---|
861 | * For example, lets say that @old has bits 4 through 7 set, and
|
---|
862 | * @new has bits 12 through 15 set. This defines the mapping of bit
|
---|
863 | * position 4 to 12, 5 to 13, 6 to 14 and 7 to 15, and of all other
|
---|
864 | * bit positions unchanged. So if say @oldbit is 5, then this routine
|
---|
865 | * returns 13.
|
---|
866 | */
|
---|
867 | int bitmap_bitremap(int oldbit, const unsigned long *old,
|
---|
868 | const unsigned long *new, int bits)
|
---|
869 | {
|
---|
870 | int w = bitmap_weight(new, bits);
|
---|
871 | int n = bitmap_pos_to_ord(old, oldbit, bits);
|
---|
872 | if (n < 0 || w == 0)
|
---|
873 | return oldbit;
|
---|
874 | else
|
---|
875 | return bitmap_ord_to_pos(new, n % w, bits);
|
---|
876 | }
|
---|
877 | EXPORT_SYMBOL(bitmap_bitremap);
|
---|
878 |
|
---|
879 | /**
|
---|
880 | * bitmap_onto - translate one bitmap relative to another
|
---|
881 | * @dst: resulting translated bitmap
|
---|
882 | * @orig: original untranslated bitmap
|
---|
883 | * @relmap: bitmap relative to which translated
|
---|
884 | * @bits: number of bits in each of these bitmaps
|
---|
885 | *
|
---|
886 | * Set the n-th bit of @dst iff there exists some m such that the
|
---|
887 | * n-th bit of @relmap is set, the m-th bit of @orig is set, and
|
---|
888 | * the n-th bit of @relmap is also the m-th _set_ bit of @relmap.
|
---|
889 | * (If you understood the previous sentence the first time your
|
---|
890 | * read it, you're overqualified for your current job.)
|
---|
891 | *
|
---|
892 | * In other words, @orig is mapped onto (surjectively) @dst,
|
---|
893 | * using the the map { <n, m> | the n-th bit of @relmap is the
|
---|
894 | * m-th set bit of @relmap }.
|
---|
895 | *
|
---|
896 | * Any set bits in @orig above bit number W, where W is the
|
---|
897 | * weight of (number of set bits in) @relmap are mapped nowhere.
|
---|
898 | * In particular, if for all bits m set in @orig, m >= W, then
|
---|
899 | * @dst will end up empty. In situations where the possibility
|
---|
900 | * of such an empty result is not desired, one way to avoid it is
|
---|
901 | * to use the bitmap_fold() operator, below, to first fold the
|
---|
902 | * @orig bitmap over itself so that all its set bits x are in the
|
---|
903 | * range 0 <= x < W. The bitmap_fold() operator does this by
|
---|
904 | * setting the bit (m % W) in @dst, for each bit (m) set in @orig.
|
---|
905 | *
|
---|
906 | * Example [1] for bitmap_onto():
|
---|
907 | * Let's say @relmap has bits 30-39 set, and @orig has bits
|
---|
908 | * 1, 3, 5, 7, 9 and 11 set. Then on return from this routine,
|
---|
909 | * @dst will have bits 31, 33, 35, 37 and 39 set.
|
---|
910 | *
|
---|
911 | * When bit 0 is set in @orig, it means turn on the bit in
|
---|
912 | * @dst corresponding to whatever is the first bit (if any)
|
---|
913 | * that is turned on in @relmap. Since bit 0 was off in the
|
---|
914 | * above example, we leave off that bit (bit 30) in @dst.
|
---|
915 | *
|
---|
916 | * When bit 1 is set in @orig (as in the above example), it
|
---|
917 | * means turn on the bit in @dst corresponding to whatever
|
---|
918 | * is the second bit that is turned on in @relmap. The second
|
---|
919 | * bit in @relmap that was turned on in the above example was
|
---|
920 | * bit 31, so we turned on bit 31 in @dst.
|
---|
921 | *
|
---|
922 | * Similarly, we turned on bits 33, 35, 37 and 39 in @dst,
|
---|
923 | * because they were the 4th, 6th, 8th and 10th set bits
|
---|
924 | * set in @relmap, and the 4th, 6th, 8th and 10th bits of
|
---|
925 | * @orig (i.e. bits 3, 5, 7 and 9) were also set.
|
---|
926 | *
|
---|
927 | * When bit 11 is set in @orig, it means turn on the bit in
|
---|
928 | * @dst corresponding to whatever is the twelfth bit that is
|
---|
929 | * turned on in @relmap. In the above example, there were
|
---|
930 | * only ten bits turned on in @relmap (30..39), so that bit
|
---|
931 | * 11 was set in @orig had no affect on @dst.
|
---|
932 | *
|
---|
933 | * Example [2] for bitmap_fold() + bitmap_onto():
|
---|
934 | * Let's say @relmap has these ten bits set:
|
---|
935 | * 40 41 42 43 45 48 53 61 74 95
|
---|
936 | * (for the curious, that's 40 plus the first ten terms of the
|
---|
937 | * Fibonacci sequence.)
|
---|
938 | *
|
---|
939 | * Further lets say we use the following code, invoking
|
---|
940 | * bitmap_fold() then bitmap_onto, as suggested above to
|
---|
941 | * avoid the possitility of an empty @dst result:
|
---|
942 | *
|
---|
943 | * unsigned long *tmp; // a temporary bitmap's bits
|
---|
944 | *
|
---|
945 | * bitmap_fold(tmp, orig, bitmap_weight(relmap, bits), bits);
|
---|
946 | * bitmap_onto(dst, tmp, relmap, bits);
|
---|
947 | *
|
---|
948 | * Then this table shows what various values of @dst would be, for
|
---|
949 | * various @orig's. I list the zero-based positions of each set bit.
|
---|
950 | * The tmp column shows the intermediate result, as computed by
|
---|
951 | * using bitmap_fold() to fold the @orig bitmap modulo ten
|
---|
952 | * (the weight of @relmap).
|
---|
953 | *
|
---|
954 | * @orig tmp @dst
|
---|
955 | * 0 0 40
|
---|
956 | * 1 1 41
|
---|
957 | * 9 9 95
|
---|
958 | * 10 0 40 (*)
|
---|
959 | * 1 3 5 7 1 3 5 7 41 43 48 61
|
---|
960 | * 0 1 2 3 4 0 1 2 3 4 40 41 42 43 45
|
---|
961 | * 0 9 18 27 0 9 8 7 40 61 74 95
|
---|
962 | * 0 10 20 30 0 40
|
---|
963 | * 0 11 22 33 0 1 2 3 40 41 42 43
|
---|
964 | * 0 12 24 36 0 2 4 6 40 42 45 53
|
---|
965 | * 78 102 211 1 2 8 41 42 74 (*)
|
---|
966 | *
|
---|
967 | * (*) For these marked lines, if we hadn't first done bitmap_fold()
|
---|
968 | * into tmp, then the @dst result would have been empty.
|
---|
969 | *
|
---|
970 | * If either of @orig or @relmap is empty (no set bits), then @dst
|
---|
971 | * will be returned empty.
|
---|
972 | *
|
---|
973 | * If (as explained above) the only set bits in @orig are in positions
|
---|
974 | * m where m >= W, (where W is the weight of @relmap) then @dst will
|
---|
975 | * once again be returned empty.
|
---|
976 | *
|
---|
977 | * All bits in @dst not set by the above rule are cleared.
|
---|
978 | */
|
---|
979 | void bitmap_onto(unsigned long *dst, const unsigned long *orig,
|
---|
980 | const unsigned long *relmap, int bits)
|
---|
981 | {
|
---|
982 | int n, m; /* same meaning as in above comment */
|
---|
983 |
|
---|
984 | if (dst == orig) /* following doesn't handle inplace mappings */
|
---|
985 | return;
|
---|
986 | bitmap_zero(dst, bits);
|
---|
987 |
|
---|
988 | /*
|
---|
989 | * The following code is a more efficient, but less
|
---|
990 | * obvious, equivalent to the loop:
|
---|
991 | * for (m = 0; m < bitmap_weight(relmap, bits); m++) {
|
---|
992 | * n = bitmap_ord_to_pos(orig, m, bits);
|
---|
993 | * if (test_bit(m, orig))
|
---|
994 | * set_bit(n, dst);
|
---|
995 | * }
|
---|
996 | */
|
---|
997 |
|
---|
998 | m = 0;
|
---|
999 | for_each_set_bit(n, relmap, bits) {
|
---|
1000 | /* m == bitmap_pos_to_ord(relmap, n, bits) */
|
---|
1001 | if (test_bit(m, orig))
|
---|
1002 | set_bit(n, dst);
|
---|
1003 | m++;
|
---|
1004 | }
|
---|
1005 | }
|
---|
1006 | EXPORT_SYMBOL(bitmap_onto);
|
---|
1007 | #endif
|
---|
1008 |
|
---|
1009 | /**
|
---|
1010 | * bitmap_fold - fold larger bitmap into smaller, modulo specified size
|
---|
1011 | * @dst: resulting smaller bitmap
|
---|
1012 | * @orig: original larger bitmap
|
---|
1013 | * @sz: specified size
|
---|
1014 | * @bits: number of bits in each of these bitmaps
|
---|
1015 | *
|
---|
1016 | * For each bit oldbit in @orig, set bit oldbit mod @sz in @dst.
|
---|
1017 | * Clear all other bits in @dst. See further the comment and
|
---|
1018 | * Example [2] for bitmap_onto() for why and how to use this.
|
---|
1019 | */
|
---|
1020 | void bitmap_fold(unsigned long *dst, const unsigned long *orig,
|
---|
1021 | int sz, int bits)
|
---|
1022 | {
|
---|
1023 | int oldbit;
|
---|
1024 |
|
---|
1025 | if (dst == orig) /* following doesn't handle inplace mappings */
|
---|
1026 | return;
|
---|
1027 | bitmap_zero(dst, bits);
|
---|
1028 |
|
---|
1029 | for_each_set_bit(oldbit, orig, bits)
|
---|
1030 | set_bit(oldbit % sz, dst);
|
---|
1031 | }
|
---|
1032 | EXPORT_SYMBOL(bitmap_fold);
|
---|
1033 |
|
---|
1034 | /*
|
---|
1035 | * Common code for bitmap_*_region() routines.
|
---|
1036 | * bitmap: array of unsigned longs corresponding to the bitmap
|
---|
1037 | * pos: the beginning of the region
|
---|
1038 | * order: region size (log base 2 of number of bits)
|
---|
1039 | * reg_op: operation(s) to perform on that region of bitmap
|
---|
1040 | *
|
---|
1041 | * Can set, verify and/or release a region of bits in a bitmap,
|
---|
1042 | * depending on which combination of REG_OP_* flag bits is set.
|
---|
1043 | *
|
---|
1044 | * A region of a bitmap is a sequence of bits in the bitmap, of
|
---|
1045 | * some size '1 << order' (a power of two), aligned to that same
|
---|
1046 | * '1 << order' power of two.
|
---|
1047 | *
|
---|
1048 | * Returns 1 if REG_OP_ISFREE succeeds (region is all zero bits).
|
---|
1049 | * Returns 0 in all other cases and reg_ops.
|
---|
1050 | */
|
---|
1051 |
|
---|
1052 | enum {
|
---|
1053 | REG_OP_ISFREE, /* true if region is all zero bits */
|
---|
1054 | REG_OP_ALLOC, /* set all bits in region */
|
---|
1055 | REG_OP_RELEASE, /* clear all bits in region */
|
---|
1056 | };
|
---|
1057 |
|
---|
1058 | static int __reg_op(unsigned long *bitmap, int pos, int order, int reg_op)
|
---|
1059 | {
|
---|
1060 | int nbits_reg; /* number of bits in region */
|
---|
1061 | int index; /* index first long of region in bitmap */
|
---|
1062 | int offset; /* bit offset region in bitmap[index] */
|
---|
1063 | int nlongs_reg; /* num longs spanned by region in bitmap */
|
---|
1064 | int nbitsinlong; /* num bits of region in each spanned long */
|
---|
1065 | unsigned long mask; /* bitmask for one long of region */
|
---|
1066 | int i; /* scans bitmap by longs */
|
---|
1067 | int ret = 0; /* return value */
|
---|
1068 |
|
---|
1069 | /*
|
---|
1070 | * Either nlongs_reg == 1 (for small orders that fit in one long)
|
---|
1071 | * or (offset == 0 && mask == ~0UL) (for larger multiword orders.)
|
---|
1072 | */
|
---|
1073 | nbits_reg = 1 << order;
|
---|
1074 | index = pos / BITS_PER_LONG;
|
---|
1075 | offset = pos - (index * BITS_PER_LONG);
|
---|
1076 | nlongs_reg = BITS_TO_LONGS(nbits_reg);
|
---|
1077 | nbitsinlong = min(nbits_reg, BITS_PER_LONG);
|
---|
1078 |
|
---|
1079 | /*
|
---|
1080 | * Can't do "mask = (1UL << nbitsinlong) - 1", as that
|
---|
1081 | * overflows if nbitsinlong == BITS_PER_LONG.
|
---|
1082 | */
|
---|
1083 | mask = (1UL << (nbitsinlong - 1));
|
---|
1084 | mask += mask - 1;
|
---|
1085 | mask <<= offset;
|
---|
1086 |
|
---|
1087 | switch (reg_op) {
|
---|
1088 | case REG_OP_ISFREE:
|
---|
1089 | for (i = 0; i < nlongs_reg; i++) {
|
---|
1090 | if (bitmap[index + i] & mask)
|
---|
1091 | goto done;
|
---|
1092 | }
|
---|
1093 | ret = 1; /* all bits in region free (zero) */
|
---|
1094 | break;
|
---|
1095 |
|
---|
1096 | case REG_OP_ALLOC:
|
---|
1097 | for (i = 0; i < nlongs_reg; i++)
|
---|
1098 | bitmap[index + i] |= mask;
|
---|
1099 | break;
|
---|
1100 |
|
---|
1101 | case REG_OP_RELEASE:
|
---|
1102 | for (i = 0; i < nlongs_reg; i++)
|
---|
1103 | bitmap[index + i] &= ~mask;
|
---|
1104 | break;
|
---|
1105 | }
|
---|
1106 | done:
|
---|
1107 | return ret;
|
---|
1108 | }
|
---|
1109 |
|
---|
1110 | /**
|
---|
1111 | * bitmap_find_free_region - find a contiguous aligned mem region
|
---|
1112 | * @bitmap: array of unsigned longs corresponding to the bitmap
|
---|
1113 | * @bits: number of bits in the bitmap
|
---|
1114 | * @order: region size (log base 2 of number of bits) to find
|
---|
1115 | *
|
---|
1116 | * Find a region of free (zero) bits in a @bitmap of @bits bits and
|
---|
1117 | * allocate them (set them to one). Only consider regions of length
|
---|
1118 | * a power (@order) of two, aligned to that power of two, which
|
---|
1119 | * makes the search algorithm much faster.
|
---|
1120 | *
|
---|
1121 | * Return the bit offset in bitmap of the allocated region,
|
---|
1122 | * or -errno on failure.
|
---|
1123 | */
|
---|
1124 | int bitmap_find_free_region(unsigned long *bitmap, int bits, int order)
|
---|
1125 | {
|
---|
1126 | int pos, end; /* scans bitmap by regions of size order */
|
---|
1127 |
|
---|
1128 | for (pos = 0 ; (end = pos + (1 << order)) <= bits; pos = end) {
|
---|
1129 | if (!__reg_op(bitmap, pos, order, REG_OP_ISFREE))
|
---|
1130 | continue;
|
---|
1131 | __reg_op(bitmap, pos, order, REG_OP_ALLOC);
|
---|
1132 | return pos;
|
---|
1133 | }
|
---|
1134 | return -ENOMEM;
|
---|
1135 | }
|
---|
1136 | EXPORT_SYMBOL(bitmap_find_free_region);
|
---|
1137 |
|
---|
1138 | /**
|
---|
1139 | * bitmap_release_region - release allocated bitmap region
|
---|
1140 | * @bitmap: array of unsigned longs corresponding to the bitmap
|
---|
1141 | * @pos: beginning of bit region to release
|
---|
1142 | * @order: region size (log base 2 of number of bits) to release
|
---|
1143 | *
|
---|
1144 | * This is the complement to __bitmap_find_free_region() and releases
|
---|
1145 | * the found region (by clearing it in the bitmap).
|
---|
1146 | *
|
---|
1147 | * No return value.
|
---|
1148 | */
|
---|
1149 | void bitmap_release_region(unsigned long *bitmap, int pos, int order)
|
---|
1150 | {
|
---|
1151 | __reg_op(bitmap, pos, order, REG_OP_RELEASE);
|
---|
1152 | }
|
---|
1153 | EXPORT_SYMBOL(bitmap_release_region);
|
---|
1154 |
|
---|
1155 | /**
|
---|
1156 | * bitmap_allocate_region - allocate bitmap region
|
---|
1157 | * @bitmap: array of unsigned longs corresponding to the bitmap
|
---|
1158 | * @pos: beginning of bit region to allocate
|
---|
1159 | * @order: region size (log base 2 of number of bits) to allocate
|
---|
1160 | *
|
---|
1161 | * Allocate (set bits in) a specified region of a bitmap.
|
---|
1162 | *
|
---|
1163 | * Return 0 on success, or %-EBUSY if specified region wasn't
|
---|
1164 | * free (not all bits were zero).
|
---|
1165 | */
|
---|
1166 | int bitmap_allocate_region(unsigned long *bitmap, int pos, int order)
|
---|
1167 | {
|
---|
1168 | if (!__reg_op(bitmap, pos, order, REG_OP_ISFREE))
|
---|
1169 | return -EBUSY;
|
---|
1170 | __reg_op(bitmap, pos, order, REG_OP_ALLOC);
|
---|
1171 | return 0;
|
---|
1172 | }
|
---|
1173 | EXPORT_SYMBOL(bitmap_allocate_region);
|
---|
1174 |
|
---|
1175 | #pragma disable_message (201)
|
---|
1176 | /**
|
---|
1177 | * bitmap_copy_le - copy a bitmap, putting the bits into little-endian order.
|
---|
1178 | * @dst: destination buffer
|
---|
1179 | * @src: bitmap to copy
|
---|
1180 | * @nbits: number of bits in the bitmap
|
---|
1181 | *
|
---|
1182 | * Require nbits % BITS_PER_LONG == 0.
|
---|
1183 | */
|
---|
1184 | void bitmap_copy_le(void *dst, const unsigned long *src, int nbits)
|
---|
1185 | {
|
---|
1186 | unsigned long *d = dst;
|
---|
1187 | int i;
|
---|
1188 |
|
---|
1189 | for (i = 0; i < nbits/BITS_PER_LONG; i++) {
|
---|
1190 | if (BITS_PER_LONG == 64)
|
---|
1191 | d[i] = cpu_to_le64(src[i]);
|
---|
1192 | else
|
---|
1193 | d[i] = cpu_to_le32(src[i]);
|
---|
1194 | }
|
---|
1195 | }
|
---|
1196 | EXPORT_SYMBOL(bitmap_copy_le);
|
---|