| 1 | #ifndef BZ_ARRAYSLICING_CC
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| 2 | #define BZ_ARRAYSLICING_CC
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| 3 | 
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| 4 | #ifndef BZ_ARRAY_H
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| 5 |  #error <blitz/array/slicing.cc> must be included via <blitz/array.h>
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| 6 | #endif
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| 7 | 
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| 8 | BZ_NAMESPACE(blitz)
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| 9 | 
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| 10 | /*
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| 11 |  * These routines make the array a view of a portion of another array.
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| 12 |  * They all work by first referencing the other array, and then slicing.
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| 13 |  */
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| 14 | 
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| 15 | template<class P_numtype, int N_rank>
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| 16 | void Array<P_numtype, N_rank>::constructSubarray(
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| 17 |     Array<T_numtype, N_rank>& array, const RectDomain<N_rank>& subdomain)
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| 18 | {
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| 19 |     reference(array);
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| 20 |     for (int i=0; i < N_rank; ++i)
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| 21 |         slice(i, subdomain[i]);
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| 22 | }
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| 23 | 
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| 24 | template<class P_numtype, int N_rank>
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| 25 | void Array<P_numtype, N_rank>::constructSubarray(
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| 26 |     Array<T_numtype, N_rank>& array, Range r0)
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| 27 | {
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| 28 |     reference(array);
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| 29 |     slice(0, r0);
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| 30 | }
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| 31 | 
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| 32 | template<class P_numtype, int N_rank>
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| 33 | void Array<P_numtype, N_rank>::constructSubarray(
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| 34 |     Array<T_numtype, N_rank>& array, Range r0, Range r1)
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| 35 | {
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| 36 |     reference(array);
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| 37 |     slice(0, r0);
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| 38 |     slice(1, r1);
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| 39 | }
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| 40 | 
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| 41 | template<class P_numtype, int N_rank>
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| 42 | void Array<P_numtype, N_rank>::constructSubarray(
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| 43 |     Array<T_numtype, N_rank>& array, Range r0, Range r1, Range r2)
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| 44 | {
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| 45 |     reference(array);
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| 46 |     slice(0, r0);
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| 47 |     slice(1, r1);
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| 48 |     slice(2, r2);
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| 49 | }
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| 50 | 
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| 51 | template<class P_numtype, int N_rank>
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| 52 | void Array<P_numtype, N_rank>::constructSubarray(
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| 53 |     Array<T_numtype, N_rank>& array, Range r0, Range r1, Range r2, Range r3)
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| 54 | {
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| 55 |     reference(array);
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| 56 |     slice(0, r0);
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| 57 |     slice(1, r1);
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| 58 |     slice(2, r2);
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| 59 |     slice(3, r3);
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| 60 | }
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| 61 | 
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| 62 | template<class P_numtype, int N_rank>
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| 63 | void Array<P_numtype, N_rank>::constructSubarray(
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| 64 |     Array<T_numtype, N_rank>& array, Range r0, Range r1, Range r2, Range r3,
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| 65 |     Range r4)
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| 66 | {
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| 67 |     reference(array);
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| 68 |     slice(0, r0);
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| 69 |     slice(1, r1);
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| 70 |     slice(2, r2);
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| 71 |     slice(3, r3);
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| 72 |     slice(4, r4);
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| 73 | }
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| 74 | 
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| 75 | template<class P_numtype, int N_rank>
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| 76 | void Array<P_numtype, N_rank>::constructSubarray(
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| 77 |     Array<T_numtype, N_rank>& array, Range r0, Range r1, Range r2, Range r3,
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| 78 |     Range r4, Range r5)
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| 79 | {
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| 80 |     reference(array);
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| 81 |     slice(0, r0);
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| 82 |     slice(1, r1);
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| 83 |     slice(2, r2);
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| 84 |     slice(3, r3);
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| 85 |     slice(4, r4);
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| 86 |     slice(5, r5);
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| 87 | }
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| 88 | 
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| 89 | template<class P_numtype, int N_rank>
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| 90 | void Array<P_numtype, N_rank>::constructSubarray(
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| 91 |     Array<T_numtype, N_rank>& array, Range r0, Range r1, Range r2, Range r3,
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| 92 |     Range r4, Range r5, Range r6)
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| 93 | {
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| 94 |     reference(array);
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| 95 |     slice(0, r0);
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| 96 |     slice(1, r1);
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| 97 |     slice(2, r2);
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| 98 |     slice(3, r3);
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| 99 |     slice(4, r4);
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| 100 |     slice(5, r5);
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| 101 |     slice(6, r6);
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| 102 | }
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| 103 | 
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| 104 | template<class P_numtype, int N_rank>
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| 105 | void Array<P_numtype, N_rank>::constructSubarray(
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| 106 |     Array<T_numtype, N_rank>& array, Range r0, Range r1, Range r2, Range r3,
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| 107 |     Range r4, Range r5, Range r6, Range r7)
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| 108 | {
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| 109 |     reference(array);
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| 110 |     slice(0, r0);
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| 111 |     slice(1, r1);
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| 112 |     slice(2, r2);
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| 113 |     slice(3, r3);
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| 114 |     slice(4, r4);
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| 115 |     slice(5, r5);
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| 116 |     slice(6, r6);
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| 117 |     slice(7, r7);
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| 118 | }
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| 119 | 
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| 120 | template<class P_numtype, int N_rank>
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| 121 | void Array<P_numtype, N_rank>::constructSubarray(
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| 122 |     Array<T_numtype, N_rank>& array, Range r0, Range r1, Range r2, Range r3,
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| 123 |     Range r4, Range r5, Range r6, Range r7, Range r8)
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| 124 | {
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| 125 |     reference(array);
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| 126 |     slice(0, r0);
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| 127 |     slice(1, r1);
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| 128 |     slice(2, r2);
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| 129 |     slice(3, r3);
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| 130 |     slice(4, r4);
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| 131 |     slice(5, r5);
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| 132 |     slice(6, r6);
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| 133 |     slice(7, r7);
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| 134 |     slice(8, r8);
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| 135 | }
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| 136 | 
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| 137 | template<class P_numtype, int N_rank>
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| 138 | void Array<P_numtype, N_rank>::constructSubarray(
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| 139 |     Array<T_numtype, N_rank>& array, Range r0, Range r1, Range r2, Range r3,
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| 140 |     Range r4, Range r5, Range r6, Range r7, Range r8, Range r9)
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| 141 | {
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| 142 |     reference(array);
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| 143 |     slice(0, r0);
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| 144 |     slice(1, r1);
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| 145 |     slice(2, r2);
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| 146 |     slice(3, r3);
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| 147 |     slice(4, r4);
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| 148 |     slice(5, r5);
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| 149 |     slice(6, r6);
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| 150 |     slice(7, r7);
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| 151 |     slice(8, r8);
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| 152 |     slice(9, r9);
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| 153 | }
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| 154 | 
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| 155 | template<class P_numtype, int N_rank>
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| 156 | void Array<P_numtype, N_rank>::constructSubarray(
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| 157 |     Array<T_numtype, N_rank>& array, Range r0, Range r1, Range r2, Range r3,
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| 158 |     Range r4, Range r5, Range r6, Range r7, Range r8, Range r9, Range r10)
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| 159 | {
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| 160 |     reference(array);
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| 161 |     slice(0, r0);
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| 162 |     slice(1, r1);
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| 163 |     slice(2, r2);
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| 164 |     slice(3, r3);
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| 165 |     slice(4, r4);
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| 166 |     slice(5, r5);
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| 167 |     slice(6, r6);
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| 168 |     slice(7, r7);
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| 169 |     slice(8, r8);
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| 170 |     slice(9, r9);
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| 171 |     slice(10, r10);
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| 172 | }
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| 173 | 
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| 174 | /*
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| 175 |  * This member template is used to implement operator() with any
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| 176 |  * combination of int and Range parameters.  There's room for up
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| 177 |  * to 11 parameters, but any unused parameters have no effect.
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| 178 |  */
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| 179 | template<class P_numtype, int N_rank> template<int N_rank2, class R0,
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| 180 |     class R1, class R2, class R3, class R4, class R5, class R6, class R7,
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| 181 |     class R8, class R9, class R10>
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| 182 | void Array<P_numtype, N_rank>::constructSlice(Array<T_numtype, N_rank2>& array,
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| 183 |     R0 r0, R1 r1, R2 r2, R3 r3, R4 r4, R5 r5, R6 r6, R7 r7, R8 r8, R9 r9,
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| 184 |     R10 r10)
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| 185 | {
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| 186 |     MemoryBlockReference<P_numtype>::changeBlock(array, array.zeroOffset());
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| 187 |     data_ = array.dataZero();
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| 188 | 
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| 189 |     int setRank = 0;
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| 190 | 
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| 191 |     TinyVector<int, N_rank2> rankMap;
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| 192 | 
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| 193 |     slice(setRank, r0, array, rankMap, 0);
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| 194 |     slice(setRank, r1, array, rankMap, 1);
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| 195 |     slice(setRank, r2, array, rankMap, 2);
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| 196 |     slice(setRank, r3, array, rankMap, 3);
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| 197 |     slice(setRank, r4, array, rankMap, 4);
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| 198 |     slice(setRank, r5, array, rankMap, 5);
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| 199 |     slice(setRank, r6, array, rankMap, 6);
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| 200 |     slice(setRank, r7, array, rankMap, 7);
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| 201 |     slice(setRank, r8, array, rankMap, 8);
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| 202 |     slice(setRank, r9, array, rankMap, 9);
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| 203 |     slice(setRank, r10, array, rankMap, 10);
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| 204 | 
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| 205 |     // Redo the ordering_ array to account for dimensions which
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| 206 |     // have been sliced away.
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| 207 |     int j = 0;
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| 208 |     for (int i=0; i < N_rank2; ++i)
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| 209 |     {
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| 210 |         if (rankMap[array.ordering(i)] != -1)
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| 211 |             storage_.setOrdering(j++, rankMap[array.ordering(i)]);
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| 212 |     }
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| 213 | 
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| 214 |     calculateZeroOffset();
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| 215 | }
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| 216 | 
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| 217 | /*
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| 218 |  * This member template is also used in the implementation of
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| 219 |  * operator() with any combination of int and Rank parameters.
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| 220 |  * It's called by constructSlice(), above.  This version handles
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| 221 |  * Range parameters.
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| 222 |  */
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| 223 | template<class T_numtype, int N_rank> template<int N_rank2>
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| 224 | void Array<T_numtype, N_rank>::slice(int& setRank, Range r,
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| 225 |     Array<T_numtype,N_rank2>& array, TinyVector<int,N_rank2>& rankMap,
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| 226 |     int sourceRank)
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| 227 | {
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| 228 |     // NEEDS WORK: ordering will change completely when some ranks
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| 229 |     // are deleted.
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| 230 | 
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| 231 | #ifdef BZ_DEBUG_SLICE
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| 232 | cout << "slice(" << setRank << ", [" << r.first(array.lbound(sourceRank))
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| 233 |      << ", " << r.last(array.ubound(sourceRank)) << "], Array<T,"
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| 234 |      << N_rank2 << ">, " << sourceRank << ")" << endl;
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| 235 | #endif
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| 236 | 
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| 237 |     rankMap[sourceRank] = setRank;
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| 238 |     length_[setRank] = array.length(sourceRank);
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| 239 |     stride_[setRank] = array.stride(sourceRank);
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| 240 |     storage_.setAscendingFlag(setRank, array.isRankStoredAscending(sourceRank));
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| 241 |     storage_.setBase(setRank, array.base(sourceRank));
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| 242 |     slice(setRank, r);
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| 243 |     ++setRank;
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| 244 | }
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| 245 | 
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| 246 | /*
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| 247 |  * This member template is also used in the implementation of
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| 248 |  * operator() with any combination of int and Rank parameters.
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| 249 |  * It's called by constructSlice(), above.  This version handles
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| 250 |  * int parameters, which reduce the dimensionality by one.
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| 251 |  */
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| 252 | template<class T_numtype, int N_rank> template<int N_rank2>
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| 253 | void Array<T_numtype, N_rank>::slice(int& setRank, int i,
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| 254 |     Array<T_numtype,N_rank2>& array, TinyVector<int,N_rank2>& rankMap,
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| 255 |     int sourceRank)
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| 256 | {
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| 257 | #ifdef BZ_DEBUG_SLICE
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| 258 |     cout << "slice(" << setRank << ", " << i
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| 259 |          << ", Array<T," << N_rank2 << ">, " << sourceRank << ")" << endl;
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| 260 |     cout << "Offset by " << (i * array.stride(sourceRank))
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| 261 |          << endl;
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| 262 | #endif
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| 263 |     rankMap[sourceRank] = -1;
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| 264 |     data_ += i * array.stride(sourceRank);
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| 265 | #ifdef BZ_DEBUG_SLICE
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| 266 |     cout << "data_ = " << data_ << endl;
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| 267 | #endif
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| 268 | }
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| 269 | 
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| 270 | /*
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| 271 |  * After calling slice(int rank, Range r), the array refers only to the
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| 272 |  * Range r of the original array.
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| 273 |  * e.g. Array<int,1> x(100);
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| 274 |  *      x.slice(firstRank, Range(25,50));
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| 275 |  *      x = 0;       // Sets elements 25..50 of the original array to 0
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| 276 |  */
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| 277 | template<class P_numtype, int N_rank>
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| 278 | void Array<P_numtype, N_rank>::slice(int rank, Range r)
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| 279 | {
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| 280 |     BZPRECONDITION((rank >= 0) && (rank < N_rank));
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| 281 | 
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| 282 |     int first = r.first(lbound(rank));
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| 283 |     int last  = r.last(ubound(rank));
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| 284 |     int stride = r.stride();
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| 285 | 
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| 286 | #ifdef BZ_DEBUG_SLICE
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| 287 | cout << "slice(" << rank << ", Range):" << endl
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| 288 |      << "first = " << first << " last = " << last << "stride = " << stride
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| 289 |      << endl << "length_[rank] = " << length_[rank] << endl;
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| 290 | #endif
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| 291 | 
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| 292 |     BZPRECHECK(
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| 293 |         ((first <= last) && (stride > 0)
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| 294 |          || (first >= last) && (stride < 0))
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| 295 |         && (unsigned(first - base(rank)) < length_[rank])
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| 296 |         && (unsigned(last - base(rank)) < length_[rank]),
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| 297 |         "Bad array slice: Range(" << first << ", " << last << ", "
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| 298 |         << stride << ").  Array is Range(" << lbound(rank) << ", "
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| 299 |         << ubound(rank) << ")");
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| 300 | 
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| 301 |     // Will the storage be non-contiguous?
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| 302 |     // (1) Slice in the minor dimension and the range does not span
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| 303 |     //     the entire index interval (NB: non-unit strides are possible)
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| 304 |     // (2) Slice in a middle dimension and the range is not Range::all()
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| 305 | 
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| 306 |     // Note: this code ignores a few weird cases that would hopefully come
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| 307 |     // up rarely, e.g. slicing the array 0..99,0..99 with
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| 308 |     // Range::all() and Range(1,99,2).  This preserves contiguous
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| 309 |     // storage, but the contiguousStorage_ flag will still be set
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| 310 |     // false.  This isn't a serious problem -- array operations will
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| 311 |     // just be a tad slower in this situation.
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| 312 |     if (isMinorRank(rank) &&
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| 313 |       ((first != base(rank)) || (last != base(rank) + length_[rank] - 1)))
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| 314 |         storageContiguous_ = _bz_false;
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| 315 | 
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| 316 |     if ((ordering(rank) != N_rank-1) && (stride != 1))
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| 317 |         storageContiguous_ = _bz_false;
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| 318 | 
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| 319 |     length_[rank] = (last - first) / stride + 1;
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| 320 | 
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| 321 |     int offset = (first - base(rank)) * stride_[rank];
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| 322 |     data_ += offset;
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| 323 |     zeroOffset_ -= offset;
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| 324 | 
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| 325 |     stride_[rank] *= stride;
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| 326 | }
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| 327 | 
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| 328 | BZ_NAMESPACE_END
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| 329 | 
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| 330 | #endif // BZ_ARRAYSLICING_CC
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