| [221] | 1 | /* | 
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|  | 2 | * $Id: eval.cc,v 1.1.1.1 1999-04-09 17:59:03 ansari Exp $ | 
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|  | 3 | * | 
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|  | 4 | * $Log: not supported by cvs2svn $ | 
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|  | 5 | * Revision 1.2  1998/03/14 00:04:47  tveldhui | 
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|  | 6 | * 0.2-alpha-05 | 
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|  | 7 | * | 
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|  | 8 | * Revision 1.1  1998/02/25 20:04:01  tveldhui | 
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|  | 9 | * Initial revision | 
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|  | 10 | * | 
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|  | 11 | */ | 
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|  | 12 |  | 
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|  | 13 | #ifndef BZ_ARRAYEVAL_CC | 
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|  | 14 | #define BZ_ARRAYEVAL_CC | 
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|  | 15 |  | 
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|  | 16 | #ifndef BZ_ARRAY_H | 
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|  | 17 | #error <blitz/array/eval.cc> must be included via <blitz/array.h> | 
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|  | 18 | #endif | 
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|  | 19 |  | 
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|  | 20 | BZ_NAMESPACE(blitz) | 
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|  | 21 |  | 
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|  | 22 | /* | 
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|  | 23 | * Assign an expression to an array.  For performance reasons, there are | 
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|  | 24 | * several traversal mechanisms: | 
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|  | 25 | * | 
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|  | 26 | * - Index traversal scans through the destination array in storage order. | 
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|  | 27 | *   The expression is evaluated using a TinyVector<int,N> operand.  This | 
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|  | 28 | *   version is used only when there are index placeholders in the expression | 
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|  | 29 | *   (see <blitz/indexexpr.h>) | 
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|  | 30 | * - Stack traversal also scans through the destination array in storage | 
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|  | 31 | *   order.  However, push/pop stack iterators are used. | 
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|  | 32 | * - Fast traversal follows a Hilbert (or other) space-filling curve to | 
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|  | 33 | *   improve cache reuse for stencilling operations.  Currently, the | 
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|  | 34 | *   space filling curves must be generated by calling | 
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|  | 35 | *   generateFastTraversalOrder(TinyVector<int,N_dimensions>). | 
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|  | 36 | * - 2D tiled traversal follows a tiled traversal, to improve cache reuse | 
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|  | 37 | *   for 2D stencils.  Space filling curves have too much overhead to use | 
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|  | 38 | *   in two-dimensions. | 
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|  | 39 | * | 
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|  | 40 | * _bz_tryFastTraversal is a helper class.  Fast traversals are only | 
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|  | 41 | * attempted if the expression looks like a stencil -- it's at least | 
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|  | 42 | * three-dimensional, has at least six array operands, and there are | 
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|  | 43 | * no index placeholders in the expression.  These are all things which | 
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|  | 44 | * can be checked at compile time, so the if()/else() syntax has been | 
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|  | 45 | * replaced with this class template. | 
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|  | 46 | */ | 
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|  | 47 |  | 
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|  | 48 | // Fast traversals require <set> from the ISO/ANSI C++ standard library | 
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|  | 49 | #ifdef BZ_HAVE_STD | 
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|  | 50 |  | 
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|  | 51 | template<_bz_bool canTryFastTraversal> | 
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|  | 52 | struct _bz_tryFastTraversal { | 
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|  | 53 | template<class T_numtype, int N_rank, class T_expr, class T_update> | 
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|  | 54 | static _bz_bool tryFast(Array<T_numtype,N_rank>& array, | 
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|  | 55 | _bz_ArrayExpr<T_expr> expr, T_update) | 
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|  | 56 | { | 
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|  | 57 | return _bz_false; | 
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|  | 58 | } | 
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|  | 59 | }; | 
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|  | 60 |  | 
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|  | 61 | template<> | 
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|  | 62 | struct _bz_tryFastTraversal<_bz_true> { | 
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|  | 63 | template<class T_numtype, int N_rank, class T_expr, class T_update> | 
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|  | 64 | static _bz_bool tryFast(Array<T_numtype,N_rank>& array, | 
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|  | 65 | _bz_ArrayExpr<T_expr> expr, T_update) | 
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|  | 66 | { | 
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|  | 67 | // See if there's an appropriate space filling curve available. | 
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|  | 68 | // Currently fast traversals use an N-1 dimensional curve.  The | 
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|  | 69 | // Nth dimension column corresponding to each point on the curve | 
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|  | 70 | // is traversed in the normal fashion. | 
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|  | 71 | TraversalOrderCollection<N_rank-1> traversals; | 
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|  | 72 | TinyVector<int, N_rank - 1> traversalGridSize; | 
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|  | 73 |  | 
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|  | 74 | for (int i=0; i < N_rank - 1; ++i) | 
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|  | 75 | traversalGridSize[i] = array.length(array.ordering(i+1)); | 
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|  | 76 |  | 
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|  | 77 | #ifdef BZ_DEBUG_TRAVERSE | 
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|  | 78 | cout << "traversalGridSize = " << traversalGridSize << endl; | 
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|  | 79 | cout.flush(); | 
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|  | 80 | #endif | 
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|  | 81 |  | 
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|  | 82 | const TraversalOrder<N_rank-1>* order = | 
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|  | 83 | traversals.find(traversalGridSize); | 
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|  | 84 |  | 
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|  | 85 | if (order) | 
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|  | 86 | { | 
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|  | 87 | #ifdef BZ_DEBUG_TRAVERSE | 
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|  | 88 | cerr << "Array<" << BZ_DEBUG_TEMPLATE_AS_STRING_LITERAL(T_numtype) | 
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|  | 89 | << ", " << N_rank << ">: Using stack traversal" << endl; | 
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|  | 90 | #endif | 
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|  | 91 | // A curve was available -- use fast traversal. | 
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|  | 92 | array.evaluateWithFastTraversal(*order, expr, T_update()); | 
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|  | 93 | return _bz_true; | 
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|  | 94 | } | 
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|  | 95 |  | 
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|  | 96 | return _bz_false; | 
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|  | 97 | } | 
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|  | 98 | }; | 
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|  | 99 |  | 
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|  | 100 | #endif // BZ_HAVE_STD | 
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|  | 101 |  | 
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|  | 102 | template<class T_numtype, int N_rank> template<class T_expr, class T_update> | 
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|  | 103 | inline Array<T_numtype, N_rank>& | 
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|  | 104 | Array<T_numtype, N_rank>::evaluate(_bz_ArrayExpr<T_expr> expr, T_update) | 
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|  | 105 | { | 
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|  | 106 | // Check that all arrays have the same shape | 
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|  | 107 | #ifdef BZ_DEBUG | 
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|  | 108 | if (!expr.shapeCheck(shape())) | 
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|  | 109 | { | 
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|  | 110 | if (assertFailMode == _bz_false) | 
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|  | 111 | { | 
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|  | 112 | cerr << "[Blitz++] Shape check failed: Module " << __FILE__ | 
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|  | 113 | << " line " << __LINE__ << endl | 
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|  | 114 | << "          Expression: "; | 
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|  | 115 | prettyPrintFormat format(_bz_true);   // Use terse formatting | 
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|  | 116 | string str; | 
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|  | 117 | expr.prettyPrint(str, format); | 
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|  | 118 | cerr << str << endl ; | 
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|  | 119 | } | 
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|  | 120 |  | 
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|  | 121 | #if 0 | 
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|  | 122 | // Shape dumping is broken by change to using string for prettyPrint | 
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|  | 123 | << "          Shapes: " << shape() << " = "; | 
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|  | 124 | prettyPrintFormat format2; | 
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|  | 125 | format2.setDumpArrayShapesMode(); | 
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|  | 126 | expr.prettyPrint(cerr, format2); | 
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|  | 127 | cerr << endl; | 
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|  | 128 | #endif | 
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|  | 129 | BZ_PRE_FAIL; | 
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|  | 130 | } | 
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|  | 131 | #endif | 
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|  | 132 |  | 
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|  | 133 | BZPRECHECK(expr.shapeCheck(shape()), | 
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|  | 134 | "Shape check failed." << endl << "Expression:"); | 
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|  | 135 |  | 
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|  | 136 | BZPRECHECK((T_expr::rank == N_rank) || (T_expr::numArrayOperands == 0), | 
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|  | 137 | "Assigned rank " << T_expr::rank << " expression to rank " | 
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|  | 138 | << N_rank << " array."); | 
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|  | 139 |  | 
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|  | 140 | #ifdef BZ_DEBUG_TRAVERSE | 
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|  | 141 | cout << "T_expr::numIndexPlaceholders = " << T_expr::numIndexPlaceholders | 
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|  | 142 | << endl; cout.flush(); | 
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|  | 143 | #endif | 
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|  | 144 |  | 
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|  | 145 | // Tau profiling code.  Provide Tau with a pretty-printed version of | 
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|  | 146 | // the expression. | 
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|  | 147 | // NEEDS_WORK-- use a static initializer somehow. | 
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|  | 148 |  | 
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|  | 149 | #ifdef BZ_TAU_PROFILING | 
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|  | 150 | static string exprDescription; | 
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|  | 151 | if (!exprDescription.length())   // faked static initializer | 
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|  | 152 | { | 
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|  | 153 | exprDescription = "A"; | 
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|  | 154 | prettyPrintFormat format(_bz_true);   // Terse mode on | 
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|  | 155 | format.nextArrayOperandSymbol(); | 
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|  | 156 | T_update::prettyPrint(exprDescription); | 
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|  | 157 | expr.prettyPrint(exprDescription, format); | 
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|  | 158 | } | 
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|  | 159 | TAU_PROFILE(" ", exprDescription, TAU_BLITZ); | 
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|  | 160 | #endif | 
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|  | 161 |  | 
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|  | 162 | // Determine which evaluation mechanism to use | 
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|  | 163 | if (T_expr::numIndexPlaceholders > 0) | 
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|  | 164 | { | 
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|  | 165 | // The expression involves index placeholders, so have to | 
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|  | 166 | // use index traversal rather than stack traversal. | 
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|  | 167 |  | 
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|  | 168 | if (N_rank == 1) | 
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|  | 169 | return evaluateWithIndexTraversal1(expr, T_update()); | 
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|  | 170 | else | 
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|  | 171 | return evaluateWithIndexTraversalN(expr, T_update()); | 
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|  | 172 | } | 
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|  | 173 | else { | 
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|  | 174 |  | 
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|  | 175 | // If this expression looks like an array stencil, then attempt to | 
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|  | 176 | // use a fast traversal order. | 
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|  | 177 | // Fast traversals require <set> from the ISO/ANSI C++ standard | 
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|  | 178 | // library. | 
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|  | 179 |  | 
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|  | 180 | #ifdef BZ_HAVE_STD | 
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|  | 181 |  | 
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|  | 182 | enum { isStencil = (N_rank >= 3) && (T_expr::numArrayOperands > 6) | 
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|  | 183 | && (T_expr::numIndexPlaceholders == 0) }; | 
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|  | 184 |  | 
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|  | 185 | if (_bz_tryFastTraversal<isStencil>::tryFast(*this, expr, T_update())) | 
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|  | 186 | return *this; | 
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|  | 187 |  | 
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|  | 188 | #endif | 
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|  | 189 |  | 
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|  | 190 | #ifdef BZ_ARRAY_2D_STENCIL_TILING | 
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|  | 191 | // Does this look like a 2-dimensional stencil on a largeish | 
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|  | 192 | // array? | 
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|  | 193 |  | 
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|  | 194 | if ((N_rank == 2) && (T_expr::numArrayOperands >= 5)) | 
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|  | 195 | { | 
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|  | 196 | // Use a heuristic to determine whether a tiled traversal | 
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|  | 197 | // is desirable.  First, estimate how much L1 cache is needed | 
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|  | 198 | // to achieve a high hit rate using the stack traversal. | 
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|  | 199 | // Try to err on the side of using tiled traversal even when | 
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|  | 200 | // it isn't strictly needed. | 
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|  | 201 |  | 
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|  | 202 | // Assumptions: | 
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|  | 203 | //    Stencil width 3 | 
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|  | 204 | //    3 arrays involved in stencil | 
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|  | 205 | //    Uniform data type in arrays (all T_numtype) | 
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|  | 206 |  | 
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|  | 207 | int cacheNeeded = 3 * 3 * sizeof(T_numtype) * length(ordering(0)); | 
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|  | 208 | if (cacheNeeded > BZ_L1_CACHE_ESTIMATED_SIZE) | 
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|  | 209 | return evaluateWithTiled2DTraversal(expr, T_update()); | 
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|  | 210 | } | 
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|  | 211 |  | 
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|  | 212 | #endif | 
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|  | 213 |  | 
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|  | 214 | // If fast traversal isn't available or appropriate, then just | 
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|  | 215 | // do a stack traversal. | 
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|  | 216 | if (N_rank == 1) | 
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|  | 217 | return evaluateWithStackTraversal1(expr, T_update()); | 
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|  | 218 | else | 
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|  | 219 | return evaluateWithStackTraversalN(expr, T_update()); | 
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|  | 220 | } | 
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|  | 221 | } | 
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|  | 222 |  | 
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|  | 223 | template<class T_numtype, int N_rank> template<class T_expr, class T_update> | 
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|  | 224 | inline Array<T_numtype, N_rank>& | 
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|  | 225 | Array<T_numtype, N_rank>::evaluateWithStackTraversal1(_bz_ArrayExpr<T_expr> | 
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|  | 226 | expr, T_update) | 
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|  | 227 | { | 
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|  | 228 | #ifdef BZ_DEBUG_TRAVERSE | 
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|  | 229 | BZ_DEBUG_MESSAGE("Array<" << BZ_DEBUG_TEMPLATE_AS_STRING_LITERAL(T_numtype) | 
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|  | 230 | << ", " << N_rank << ">: Using stack traversal"); | 
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|  | 231 | #endif | 
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|  | 232 | ArrayIterator<T_numtype, N_rank> iter(*this); | 
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|  | 233 | iter.loadStride(firstRank); | 
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|  | 234 | expr.loadStride(firstRank); | 
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|  | 235 |  | 
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|  | 236 | _bz_bool useUnitStride = iter.isUnitStride(firstRank) | 
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|  | 237 | && expr.isUnitStride(firstRank); | 
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|  | 238 |  | 
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|  | 239 | #ifdef BZ_ARRAY_EXPR_USE_COMMON_STRIDE | 
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|  | 240 | int commonStride = expr.suggestStride(firstRank); | 
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|  | 241 | if (iter.suggestStride(firstRank) > commonStride) | 
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|  | 242 | commonStride = iter.suggestStride(firstRank); | 
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|  | 243 | bool useCommonStride = iter.isStride(firstRank,commonStride) | 
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|  | 244 | && expr.isStride(firstRank,commonStride); | 
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|  | 245 |  | 
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|  | 246 | #ifdef BZ_DEBUG_TRAVERSE | 
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|  | 247 | BZ_DEBUG_MESSAGE("BZ_ARRAY_EXPR_USE_COMMON_STRIDE:" << endl | 
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|  | 248 | << "    commonStride = " << commonStride << " useCommonStride = " | 
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|  | 249 | << useCommonStride); | 
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|  | 250 | #endif | 
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|  | 251 | #else | 
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|  | 252 | int commonStride = 1; | 
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|  | 253 | bool useCommonStride = _bz_false; | 
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|  | 254 | #endif | 
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|  | 255 |  | 
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|  | 256 | const T_numtype * last = iter.data() + length(firstRank) | 
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|  | 257 | * stride(firstRank); | 
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|  | 258 |  | 
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|  | 259 | if (useUnitStride || useCommonStride) | 
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|  | 260 | { | 
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|  | 261 | #ifdef BZ_USE_FAST_READ_ARRAY_EXPR | 
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|  | 262 |  | 
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|  | 263 | #ifdef BZ_DEBUG_TRAVERSE | 
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|  | 264 | BZ_DEBUG_MESSAGE("BZ_USE_FAST_READ_ARRAY_EXPR with commonStride"); | 
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|  | 265 | #endif | 
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|  | 266 | int ubound = length(firstRank) * commonStride; | 
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|  | 267 | T_numtype* _bz_restrict data = const_cast<T_numtype*>(iter.data()); | 
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|  | 268 |  | 
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|  | 269 | if (commonStride == 1) | 
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|  | 270 | { | 
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|  | 271 | #ifndef BZ_ARRAY_STACK_TRAVERSAL_UNROLL | 
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|  | 272 | for (int i=0; i < ubound; ++i) | 
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|  | 273 | T_update::update(data[i], expr.fastRead(i)); | 
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|  | 274 | #else | 
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|  | 275 | int n1 = ubound & 3; | 
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|  | 276 | int i = 0; | 
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|  | 277 | for (; i < n1; ++i) | 
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|  | 278 | T_update::update(data[i], expr.fastRead(i)); | 
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|  | 279 |  | 
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|  | 280 | for (; i < ubound; i += 4) | 
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|  | 281 | { | 
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|  | 282 | #ifndef BZ_ARRAY_STACK_TRAVERSAL_CSE_AND_ANTIALIAS | 
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|  | 283 | T_update::update(data[i], expr.fastRead(i)); | 
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|  | 284 | T_update::update(data[i+1], expr.fastRead(i+1)); | 
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|  | 285 | T_update::update(data[i+2], expr.fastRead(i+2)); | 
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|  | 286 | T_update::update(data[i+3], expr.fastRead(i+3)); | 
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|  | 287 | #else | 
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|  | 288 | int t1 = i+1; | 
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|  | 289 | int t2 = i+2; | 
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|  | 290 | int t3 = i+3; | 
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|  | 291 |  | 
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|  | 292 | _bz_typename T_expr::T_numtype tmp1, tmp2, tmp3, tmp4; | 
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|  | 293 |  | 
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|  | 294 | tmp1 = expr.fastRead(i); | 
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|  | 295 | tmp2 = expr.fastRead(BZ_NO_PROPAGATE(t1)); | 
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|  | 296 | tmp3 = expr.fastRead(BZ_NO_PROPAGATE(t2)); | 
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|  | 297 | tmp4 = expr.fastRead(BZ_NO_PROPAGATE(t3)); | 
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|  | 298 |  | 
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|  | 299 | T_update::update(data[i], BZ_NO_PROPAGATE(tmp1)); | 
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|  | 300 | T_update::update(data[BZ_NO_PROPAGATE(t1)], tmp2); | 
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|  | 301 | T_update::update(data[BZ_NO_PROPAGATE(t2)], tmp3); | 
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|  | 302 | T_update::update(data[BZ_NO_PROPAGATE(t3)], tmp4); | 
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|  | 303 | #endif | 
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|  | 304 | } | 
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|  | 305 | #endif // BZ_ARRAY_STACK_TRAVERSAL_UNROLL | 
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|  | 306 |  | 
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|  | 307 | } | 
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|  | 308 | #ifdef BZ_ARRAY_EXPR_USE_COMMON_STRIDE | 
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|  | 309 | else { | 
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|  | 310 |  | 
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|  | 311 | #ifndef BZ_ARRAY_STACK_TRAVERSAL_UNROLL | 
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|  | 312 | for (int i=0; i < ubound; i += commonStride) | 
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|  | 313 | T_update::update(data[i], expr.fastRead(i)); | 
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|  | 314 | #else | 
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|  | 315 | int n1 = (length(firstRank) & 3) * commonStride; | 
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|  | 316 |  | 
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|  | 317 | int i = 0; | 
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|  | 318 | for (; i < n1; i += commonStride) | 
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|  | 319 | T_update::update(data[i], expr.fastRead(i)); | 
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|  | 320 |  | 
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|  | 321 | int strideInc = 4 * commonStride; | 
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|  | 322 | for (; i < ubound; i += strideInc) | 
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|  | 323 | { | 
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|  | 324 | T_update::update(data[i], expr.fastRead(i)); | 
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|  | 325 | int i2 = i + commonStride; | 
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|  | 326 | T_update::update(data[i2], expr.fastRead(i2)); | 
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|  | 327 | int i3 = i + 2 * commonStride; | 
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|  | 328 | T_update::update(data[i3], expr.fastRead(i3)); | 
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|  | 329 | int i4 = i + 3 * commonStride; | 
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|  | 330 | T_update::update(data[i4], expr.fastRead(i4)); | 
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|  | 331 | } | 
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|  | 332 | #endif  // BZ_ARRAY_STACK_TRAVERSAL_UNROLL | 
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|  | 333 | } | 
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|  | 334 | #endif  // BZ_ARRAY_EXPR_USE_COMMON_STRIDE | 
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|  | 335 |  | 
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|  | 336 | #else   // ! BZ_USE_FAST_READ_ARRAY_EXPR | 
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|  | 337 |  | 
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|  | 338 | #ifdef BZ_DEBUG_TRAVERSE | 
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|  | 339 | BZ_DEBUG_MESSAGE("Common stride, no fast read"); | 
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|  | 340 | #endif | 
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|  | 341 | while (iter.data() != last) | 
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|  | 342 | { | 
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|  | 343 | T_update::update(*const_cast<T_numtype*>(iter.data()), *expr); | 
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|  | 344 | iter.advance(commonStride); | 
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|  | 345 | expr.advance(commonStride); | 
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|  | 346 | } | 
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|  | 347 | #endif | 
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|  | 348 | } | 
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|  | 349 | else { | 
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|  | 350 | while (iter.data() != last) | 
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|  | 351 | { | 
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|  | 352 | T_update::update(*const_cast<T_numtype*>(iter.data()), *expr); | 
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|  | 353 | iter.advance(); | 
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|  | 354 | expr.advance(); | 
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|  | 355 | } | 
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|  | 356 | } | 
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|  | 357 |  | 
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|  | 358 | return *this; | 
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|  | 359 | } | 
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|  | 360 |  | 
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|  | 361 | template<class T_numtype, int N_rank> template<class T_expr, class T_update> | 
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|  | 362 | inline Array<T_numtype, N_rank>& | 
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|  | 363 | Array<T_numtype, N_rank>::evaluateWithStackTraversalN(_bz_ArrayExpr<T_expr> | 
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|  | 364 | expr, T_update) | 
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|  | 365 | { | 
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|  | 366 | /* | 
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|  | 367 | * A stack traversal replaces the usual nested loops: | 
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|  | 368 | * | 
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|  | 369 | * for (int i=A.lbound(firstDim); i <= A.ubound(firstDim); ++i) | 
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|  | 370 | *   for (int j=A.lbound(secondDim); j <= A.ubound(secondDim); ++j) | 
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|  | 371 | *     for (int k=A.lbound(thirdDim); k <= A.ubound(thirdDim); ++k) | 
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|  | 372 | *       A(i,j,k) = 0; | 
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|  | 373 | * | 
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|  | 374 | * with a stack data structure.  The stack allows this single | 
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|  | 375 | * routine to replace any number of nested loops. | 
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|  | 376 | * | 
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|  | 377 | * For each dimension (loop), these quantities are needed: | 
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|  | 378 | * - a pointer to the first element encountered in the loop | 
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|  | 379 | * - the stride associated with the dimension/loop | 
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|  | 380 | * - a pointer to the last element encountered in the loop | 
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|  | 381 | * | 
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|  | 382 | * The basic idea is that entering each loop is a "push" onto the | 
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|  | 383 | * stack, and exiting each loop is a "pop".  In practice, this | 
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|  | 384 | * routine treats accesses the stack in a random-access way, | 
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|  | 385 | * which confuses the picture a bit.  But conceptually, that's | 
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|  | 386 | * what is going on. | 
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|  | 387 | */ | 
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|  | 388 |  | 
|---|
|  | 389 | /* | 
|---|
|  | 390 | * ordering(0) gives the dimension associated with the smallest | 
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|  | 391 | * stride (usually; the exceptions have to do with subarrays and | 
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|  | 392 | * are uninteresting).  We call this dimension maxRank; it will | 
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|  | 393 | * become the innermost "loop". | 
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|  | 394 | * | 
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|  | 395 | * Ordering the loops from ordering(N_rank-1) down to | 
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|  | 396 | * ordering(0) ensures that the largest stride is associated | 
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|  | 397 | * with the outermost loop, and the smallest stride with the | 
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|  | 398 | * innermost.  This is critical for good performance on | 
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|  | 399 | * cached machines. | 
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|  | 400 | */ | 
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|  | 401 | const int maxRank = ordering(0); | 
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|  | 402 | const int secondLastRank = ordering(1); | 
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|  | 403 |  | 
|---|
|  | 404 | // Create an iterator for the array receiving the result | 
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|  | 405 | ArrayIterator<T_numtype, N_rank> iter(*this); | 
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|  | 406 |  | 
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|  | 407 | // Set the initial stack configuration by pushing the pointer | 
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|  | 408 | // to the first element of the array onto the stack N times. | 
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|  | 409 |  | 
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|  | 410 | int i; | 
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|  | 411 | for (i=1; i < N_rank; ++i) | 
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|  | 412 | { | 
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|  | 413 | iter.push(i); | 
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|  | 414 | expr.push(i); | 
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|  | 415 | } | 
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|  | 416 |  | 
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|  | 417 | // Load the strides associated with the innermost loop. | 
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|  | 418 | iter.loadStride(maxRank); | 
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|  | 419 | expr.loadStride(maxRank); | 
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|  | 420 |  | 
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|  | 421 | /* | 
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|  | 422 | * Is the stride in the innermost loop equal to 1?  If so, | 
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|  | 423 | * we might take advantage of this and generate more | 
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|  | 424 | * efficient code. | 
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|  | 425 | */ | 
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|  | 426 | _bz_bool useUnitStride = iter.isUnitStride(maxRank) | 
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|  | 427 | && expr.isUnitStride(maxRank); | 
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|  | 428 |  | 
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|  | 429 | /* | 
|---|
|  | 430 | * Do all array operands share a common stride in the innermost | 
|---|
|  | 431 | * loop?  If so, we can generate more efficient code (but only | 
|---|
|  | 432 | * if this optimization has been enabled). | 
|---|
|  | 433 | */ | 
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|  | 434 | #ifdef BZ_ARRAY_EXPR_USE_COMMON_STRIDE | 
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|  | 435 | int commonStride = expr.suggestStride(maxRank); | 
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|  | 436 | if (iter.suggestStride(maxRank) > commonStride) | 
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|  | 437 | commonStride = iter.suggestStride(maxRank); | 
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|  | 438 | bool useCommonStride = iter.isStride(maxRank,commonStride) | 
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|  | 439 | && expr.isStride(maxRank,commonStride); | 
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|  | 440 |  | 
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|  | 441 | #ifdef BZ_DEBUG_TRAVERSE | 
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|  | 442 | BZ_DEBUG_MESSAGE("BZ_ARRAY_EXPR_USE_COMMON_STRIDE" << endl | 
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|  | 443 | << "commonStride = " << commonStride << " useCommonStride = " | 
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|  | 444 | << useCommonStride); | 
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|  | 445 | #endif | 
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|  | 446 |  | 
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|  | 447 | #else | 
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|  | 448 | int commonStride = 1; | 
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|  | 449 | bool useCommonStride = _bz_false; | 
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|  | 450 | #endif | 
|---|
|  | 451 |  | 
|---|
|  | 452 | /* | 
|---|
|  | 453 | * The "last" array contains a pointer to the last element | 
|---|
|  | 454 | * encountered in each "loop". | 
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|  | 455 | */ | 
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|  | 456 | const T_numtype* _bz_restrict last[N_rank]; | 
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|  | 457 |  | 
|---|
|  | 458 | // Set up the initial state of the "last" array | 
|---|
|  | 459 | for (i=1; i < N_rank; ++i) | 
|---|
|  | 460 | last[i] = iter.data() + length(ordering(i)) * stride(ordering(i)); | 
|---|
|  | 461 |  | 
|---|
|  | 462 | int lastLength = length(maxRank); | 
|---|
|  | 463 | int firstNoncollapsedLoop = 1; | 
|---|
|  | 464 |  | 
|---|
|  | 465 | #ifdef BZ_COLLAPSE_LOOPS | 
|---|
|  | 466 |  | 
|---|
|  | 467 | /* | 
|---|
|  | 468 | * This bit of code handles collapsing loops.  When possible, | 
|---|
|  | 469 | * the N nested loops are converted into a single loop (basically, | 
|---|
|  | 470 | * the N-dimensional array is treated as a long vector). | 
|---|
|  | 471 | * This is important for cases where the length of the innermost | 
|---|
|  | 472 | * loop is very small, for example a 100x100x3 array. | 
|---|
|  | 473 | * If this code can't collapse all the loops into a single loop, | 
|---|
|  | 474 | * it will collapse as many loops as possible starting from the | 
|---|
|  | 475 | * innermost and working out. | 
|---|
|  | 476 | */ | 
|---|
|  | 477 |  | 
|---|
|  | 478 | // Collapse loops when possible | 
|---|
|  | 479 | for (i=1; i < N_rank; ++i) | 
|---|
|  | 480 | { | 
|---|
|  | 481 | // Figure out which pair of loops we are considering combining. | 
|---|
|  | 482 | int outerLoopRank = ordering(i); | 
|---|
|  | 483 | int innerLoopRank = ordering(i-1); | 
|---|
|  | 484 |  | 
|---|
|  | 485 | /* | 
|---|
|  | 486 | * The canCollapse() routines look at the strides and extents | 
|---|
|  | 487 | * of the loops, and determine if they can be combined into | 
|---|
|  | 488 | * one loop. | 
|---|
|  | 489 | */ | 
|---|
|  | 490 |  | 
|---|
|  | 491 | if (canCollapse(outerLoopRank,innerLoopRank) | 
|---|
|  | 492 | && expr.canCollapse(outerLoopRank,innerLoopRank)) | 
|---|
|  | 493 | { | 
|---|
|  | 494 | lastLength *= length(outerLoopRank); | 
|---|
|  | 495 | firstNoncollapsedLoop = i+1; | 
|---|
|  | 496 | } | 
|---|
|  | 497 | } | 
|---|
|  | 498 | #endif // BZ_COLLAPSE_LOOPS | 
|---|
|  | 499 |  | 
|---|
|  | 500 | /* | 
|---|
|  | 501 | * Now we actually perform the loops.  This while loop contains | 
|---|
|  | 502 | * two parts: first, the innermost loop is performed.  Then we | 
|---|
|  | 503 | * exit the loop, and pop our way down the stack until we find | 
|---|
|  | 504 | * a loop that isn't completed.  We then restart the inner loops | 
|---|
|  | 505 | * and push them onto the stack. | 
|---|
|  | 506 | */ | 
|---|
|  | 507 |  | 
|---|
|  | 508 | while (true) { | 
|---|
|  | 509 |  | 
|---|
|  | 510 | /* | 
|---|
|  | 511 | * This bit of code handles the innermost loop.  It would look | 
|---|
|  | 512 | * a lot simpler if it weren't for unit stride and common stride | 
|---|
|  | 513 | * optimizations; these clutter up the code with multiple versions. | 
|---|
|  | 514 | */ | 
|---|
|  | 515 |  | 
|---|
|  | 516 | if ((useUnitStride) || (useCommonStride)) | 
|---|
|  | 517 | { | 
|---|
|  | 518 | T_numtype * _bz_restrict end = const_cast<T_numtype*>(iter.data()) | 
|---|
|  | 519 | + lastLength; | 
|---|
|  | 520 |  | 
|---|
|  | 521 | #ifdef BZ_USE_FAST_READ_ARRAY_EXPR | 
|---|
|  | 522 |  | 
|---|
|  | 523 | /* | 
|---|
|  | 524 | * The check for BZ_USE_FAST_READ_ARRAY_EXPR can probably | 
|---|
|  | 525 | * be taken out.  This was put in place while the unit stride/ | 
|---|
|  | 526 | * common stride optimizations were being implemented and | 
|---|
|  | 527 | * tested. | 
|---|
|  | 528 | */ | 
|---|
|  | 529 |  | 
|---|
|  | 530 | // Calculate the end of the innermost loop | 
|---|
|  | 531 | int ubound = lastLength * commonStride; | 
|---|
|  | 532 |  | 
|---|
|  | 533 | /* | 
|---|
|  | 534 | * This is a real kludge.  I didn't want to have to write | 
|---|
|  | 535 | * a const and non-const version of ArrayIterator, so I use a | 
|---|
|  | 536 | * const iterator and cast away const.  This could | 
|---|
|  | 537 | * probably be avoided with some trick, but the whole routine | 
|---|
|  | 538 | * is ugly, so why bother. | 
|---|
|  | 539 | */ | 
|---|
|  | 540 |  | 
|---|
|  | 541 | T_numtype* _bz_restrict data = const_cast<T_numtype*>(iter.data()); | 
|---|
|  | 542 |  | 
|---|
|  | 543 | /* | 
|---|
|  | 544 | * BZ_NEEDS_WORK-- need to implement optional unrolling. | 
|---|
|  | 545 | */ | 
|---|
|  | 546 | if (commonStride == 1) | 
|---|
|  | 547 | { | 
|---|
|  | 548 | for (int i=0; i < ubound; ++i) | 
|---|
|  | 549 | T_update::update(data[i], expr.fastRead(i)); | 
|---|
|  | 550 | } | 
|---|
|  | 551 | #ifdef BZ_ARRAY_EXPR_USE_COMMON_STRIDE | 
|---|
|  | 552 | else { | 
|---|
|  | 553 | for (int i=0; i < ubound; i += commonStride) | 
|---|
|  | 554 | T_update::update(data[i], expr.fastRead(i)); | 
|---|
|  | 555 | } | 
|---|
|  | 556 | #endif | 
|---|
|  | 557 | /* | 
|---|
|  | 558 | * Tidy up for the fact that we haven't actually been | 
|---|
|  | 559 | * incrementing the iterators in the innermost loop, by | 
|---|
|  | 560 | * faking it afterward. | 
|---|
|  | 561 | */ | 
|---|
|  | 562 | iter.advance(lastLength * commonStride); | 
|---|
|  | 563 | expr.advance(lastLength * commonStride); | 
|---|
|  | 564 | #else | 
|---|
|  | 565 | // !BZ_USE_FAST_READ_ARRAY_EXPR | 
|---|
|  | 566 | // This bit of code not really needed; should remove at some | 
|---|
|  | 567 | // point, along with the test for BZ_USE_FAST_READ_ARRAY_EXPR | 
|---|
|  | 568 |  | 
|---|
|  | 569 | while (iter.data() != end) | 
|---|
|  | 570 | { | 
|---|
|  | 571 | T_update::update(*const_cast<T_numtype*>(iter.data()), *expr); | 
|---|
|  | 572 | iter.advance(commonStride); | 
|---|
|  | 573 | expr.advance(commonStride); | 
|---|
|  | 574 | } | 
|---|
|  | 575 | #endif | 
|---|
|  | 576 | } | 
|---|
|  | 577 | else { | 
|---|
|  | 578 | /* | 
|---|
|  | 579 | * We don't have a unit stride or common stride in the innermost | 
|---|
|  | 580 | * loop.  This is going to hurt performance.  Luckily 95% of | 
|---|
|  | 581 | * the time, we hit the cases above. | 
|---|
|  | 582 | */ | 
|---|
|  | 583 | T_numtype * _bz_restrict end = const_cast<T_numtype*>(iter.data()) | 
|---|
|  | 584 | + lastLength * stride(maxRank); | 
|---|
|  | 585 |  | 
|---|
|  | 586 | while (iter.data() != end) | 
|---|
|  | 587 | { | 
|---|
|  | 588 | T_update::update(*const_cast<T_numtype*>(iter.data()), *expr); | 
|---|
|  | 589 | iter.advance(); | 
|---|
|  | 590 | expr.advance(); | 
|---|
|  | 591 | } | 
|---|
|  | 592 | } | 
|---|
|  | 593 |  | 
|---|
|  | 594 |  | 
|---|
|  | 595 | /* | 
|---|
|  | 596 | * We just finished the innermost loop.  Now we pop our way down | 
|---|
|  | 597 | * the stack, until we hit a loop that hasn't completed yet. | 
|---|
|  | 598 | */ | 
|---|
|  | 599 | int j = firstNoncollapsedLoop; | 
|---|
|  | 600 | for (; j < N_rank; ++j) | 
|---|
|  | 601 | { | 
|---|
|  | 602 | // Get the next loop | 
|---|
|  | 603 | int r = ordering(j); | 
|---|
|  | 604 |  | 
|---|
|  | 605 | // Pop-- this restores the data pointers to the first element | 
|---|
|  | 606 | // encountered in the loop. | 
|---|
|  | 607 | iter.pop(j); | 
|---|
|  | 608 | expr.pop(j); | 
|---|
|  | 609 |  | 
|---|
|  | 610 | // Load the stride associated with this loop, and increment | 
|---|
|  | 611 | // once. | 
|---|
|  | 612 | iter.loadStride(r); | 
|---|
|  | 613 | expr.loadStride(r); | 
|---|
|  | 614 | iter.advance(); | 
|---|
|  | 615 | expr.advance(); | 
|---|
|  | 616 |  | 
|---|
|  | 617 | // If we aren't at the end of this loop, then stop popping. | 
|---|
|  | 618 | if (iter.data() != last[j]) | 
|---|
|  | 619 | break; | 
|---|
|  | 620 | } | 
|---|
|  | 621 |  | 
|---|
|  | 622 | // Are we completely done? | 
|---|
|  | 623 | if (j == N_rank) | 
|---|
|  | 624 | break; | 
|---|
|  | 625 |  | 
|---|
|  | 626 | // No, so push all the inner loops back onto the stack. | 
|---|
|  | 627 | for (; j >= firstNoncollapsedLoop; --j) | 
|---|
|  | 628 | { | 
|---|
|  | 629 | int r2 = ordering(j-1); | 
|---|
|  | 630 | iter.push(j); | 
|---|
|  | 631 | expr.push(j); | 
|---|
|  | 632 | last[j-1] = iter.data() + length(r2) * stride(r2); | 
|---|
|  | 633 | } | 
|---|
|  | 634 |  | 
|---|
|  | 635 | // Load the stride for the innermost loop again. | 
|---|
|  | 636 | iter.loadStride(maxRank); | 
|---|
|  | 637 | expr.loadStride(maxRank); | 
|---|
|  | 638 | } | 
|---|
|  | 639 |  | 
|---|
|  | 640 | return *this; | 
|---|
|  | 641 | } | 
|---|
|  | 642 |  | 
|---|
|  | 643 | template<class T_numtype, int N_rank> template<class T_expr, class T_update> | 
|---|
|  | 644 | inline Array<T_numtype, N_rank>& | 
|---|
|  | 645 | Array<T_numtype, N_rank>::evaluateWithIndexTraversal1(_bz_ArrayExpr<T_expr> | 
|---|
|  | 646 | expr, T_update) | 
|---|
|  | 647 | { | 
|---|
|  | 648 | TinyVector<int,N_rank> index; | 
|---|
|  | 649 |  | 
|---|
|  | 650 | if (stride(firstRank) == 1) | 
|---|
|  | 651 | { | 
|---|
|  | 652 | T_numtype * _bz_restrict iter = data_; | 
|---|
|  | 653 | int last = ubound(firstRank); | 
|---|
|  | 654 |  | 
|---|
|  | 655 | for (index[0] = lbound(firstRank); index[0] <= last; | 
|---|
|  | 656 | ++index[0]) | 
|---|
|  | 657 | { | 
|---|
|  | 658 | iter[index[0]] = expr(index); | 
|---|
|  | 659 | } | 
|---|
|  | 660 | } | 
|---|
|  | 661 | else { | 
|---|
|  | 662 | ArrayIterator<T_numtype, N_rank> iter(*this); | 
|---|
|  | 663 | iter.loadStride(0); | 
|---|
|  | 664 | int last = ubound(firstRank); | 
|---|
|  | 665 |  | 
|---|
|  | 666 | for (index[0] = lbound(firstRank); index[0] <= last; | 
|---|
|  | 667 | ++index[0]) | 
|---|
|  | 668 | { | 
|---|
|  | 669 | T_update::update(*const_cast<T_numtype*>(iter.data()), | 
|---|
|  | 670 | expr(index)); | 
|---|
|  | 671 | iter.advance(); | 
|---|
|  | 672 | } | 
|---|
|  | 673 | } | 
|---|
|  | 674 |  | 
|---|
|  | 675 | return *this; | 
|---|
|  | 676 | } | 
|---|
|  | 677 |  | 
|---|
|  | 678 | template<class T_numtype, int N_rank> template<class T_expr, class T_update> | 
|---|
|  | 679 | inline Array<T_numtype, N_rank>& | 
|---|
|  | 680 | Array<T_numtype, N_rank>::evaluateWithIndexTraversalN(_bz_ArrayExpr<T_expr> | 
|---|
|  | 681 | expr, T_update) | 
|---|
|  | 682 | { | 
|---|
|  | 683 | // Do a stack-type traversal for the destination array and use | 
|---|
|  | 684 | // index traversal for the source expression | 
|---|
|  | 685 |  | 
|---|
|  | 686 | const int maxRank = ordering(0); | 
|---|
|  | 687 | const int secondLastRank = ordering(1); | 
|---|
|  | 688 |  | 
|---|
|  | 689 | #ifdef BZ_DEBUG_TRAVERSE | 
|---|
|  | 690 | cout << "Index traversal: N_rank = " << N_rank << endl; | 
|---|
|  | 691 | cout << "maxRank = " << maxRank << " secondLastRank = " << secondLastRank | 
|---|
|  | 692 | << endl; | 
|---|
|  | 693 | cout.flush(); | 
|---|
|  | 694 | #endif | 
|---|
|  | 695 |  | 
|---|
|  | 696 | ArrayIterator<T_numtype, N_rank> iter(*this); | 
|---|
|  | 697 | for (int i=1; i < N_rank; ++i) | 
|---|
|  | 698 | iter.push(ordering(i)); | 
|---|
|  | 699 |  | 
|---|
|  | 700 | iter.loadStride(maxRank); | 
|---|
|  | 701 |  | 
|---|
|  | 702 | TinyVector<int,N_rank> index, last; | 
|---|
|  | 703 |  | 
|---|
|  | 704 | index = storage_.base(); | 
|---|
|  | 705 | last = storage_.base() + length_; | 
|---|
|  | 706 |  | 
|---|
|  | 707 | int lastLength = length(maxRank); | 
|---|
|  | 708 |  | 
|---|
|  | 709 | while (true) { | 
|---|
|  | 710 |  | 
|---|
|  | 711 | for (index[maxRank] = base(maxRank); | 
|---|
|  | 712 | index[maxRank] < last[maxRank]; | 
|---|
|  | 713 | ++index[maxRank]) | 
|---|
|  | 714 | { | 
|---|
|  | 715 | #ifdef BZ_DEBUG_TRAVERSE | 
|---|
|  | 716 | #if 0 | 
|---|
|  | 717 | cout << "(" << index[0] << "," << index[1] << ") " << endl; | 
|---|
|  | 718 | cout.flush(); | 
|---|
|  | 719 | #endif | 
|---|
|  | 720 | #endif | 
|---|
|  | 721 |  | 
|---|
|  | 722 | T_update::update(*const_cast<T_numtype*>(iter.data()), expr(index)); | 
|---|
|  | 723 | iter.advance(); | 
|---|
|  | 724 | } | 
|---|
|  | 725 |  | 
|---|
|  | 726 | int j = 1; | 
|---|
|  | 727 | for (; j < N_rank; ++j) | 
|---|
|  | 728 | { | 
|---|
|  | 729 | iter.pop(ordering(j)); | 
|---|
|  | 730 | iter.loadStride(ordering(j)); | 
|---|
|  | 731 | iter.advance(); | 
|---|
|  | 732 |  | 
|---|
|  | 733 | index[ordering(j-1)] = base(ordering(j-1)); | 
|---|
|  | 734 | ++index[ordering(j)]; | 
|---|
|  | 735 | if (index[ordering(j)] != last[ordering(j)]) | 
|---|
|  | 736 | break; | 
|---|
|  | 737 | } | 
|---|
|  | 738 |  | 
|---|
|  | 739 | if (j == N_rank) | 
|---|
|  | 740 | break; | 
|---|
|  | 741 |  | 
|---|
|  | 742 | for (; j > 0; --j) | 
|---|
|  | 743 | { | 
|---|
|  | 744 | iter.push(ordering(j)); | 
|---|
|  | 745 | } | 
|---|
|  | 746 | iter.loadStride(maxRank); | 
|---|
|  | 747 | } | 
|---|
|  | 748 |  | 
|---|
|  | 749 | return *this; | 
|---|
|  | 750 | } | 
|---|
|  | 751 |  | 
|---|
|  | 752 | // Fast traversals require <set> from the ISO/ANSI C++ standard library | 
|---|
|  | 753 |  | 
|---|
|  | 754 | #ifdef BZ_HAVE_STD | 
|---|
|  | 755 |  | 
|---|
|  | 756 | template<class T_numtype, int N_rank> template<class T_expr, class T_update> | 
|---|
|  | 757 | inline Array<T_numtype, N_rank>& | 
|---|
|  | 758 | Array<T_numtype, N_rank>::evaluateWithFastTraversal( | 
|---|
|  | 759 | const TraversalOrder<N_rank - 1>& order, _bz_ArrayExpr<T_expr> expr, | 
|---|
|  | 760 | T_update) | 
|---|
|  | 761 | { | 
|---|
|  | 762 | const int maxRank = ordering(0); | 
|---|
|  | 763 | const int secondLastRank = ordering(1); | 
|---|
|  | 764 |  | 
|---|
|  | 765 | #ifdef BZ_DEBUG_TRAVERSE | 
|---|
|  | 766 | cerr << "maxRank = " << maxRank << " secondLastRank = " << secondLastRank | 
|---|
|  | 767 | << endl; | 
|---|
|  | 768 | #endif | 
|---|
|  | 769 |  | 
|---|
|  | 770 | ArrayIterator<T_numtype, N_rank> iter(*this); | 
|---|
|  | 771 | iter.push(0); | 
|---|
|  | 772 | expr.push(0); | 
|---|
|  | 773 |  | 
|---|
|  | 774 | _bz_bool useUnitStride = iter.isUnitStride(maxRank) | 
|---|
|  | 775 | && expr.isUnitStride(maxRank); | 
|---|
|  | 776 |  | 
|---|
|  | 777 | #ifdef BZ_ARRAY_EXPR_USE_COMMON_STRIDE | 
|---|
|  | 778 | int commonStride = expr.suggestStride(maxRank); | 
|---|
|  | 779 | if (iter.suggestStride(maxRank) > commonStride) | 
|---|
|  | 780 | commonStride = iter.suggestStride(maxRank); | 
|---|
|  | 781 | bool useCommonStride = iter.isStride(maxRank,commonStride) | 
|---|
|  | 782 | && expr.isStride(maxRank,commonStride); | 
|---|
|  | 783 | #else | 
|---|
|  | 784 | int commonStride = 1; | 
|---|
|  | 785 | bool useCommonStride = _bz_false; | 
|---|
|  | 786 | #endif | 
|---|
|  | 787 |  | 
|---|
|  | 788 | int lastLength = length(maxRank); | 
|---|
|  | 789 |  | 
|---|
|  | 790 | for (int i=0; i < order.length(); ++i) | 
|---|
|  | 791 | { | 
|---|
|  | 792 | iter.pop(0); | 
|---|
|  | 793 | expr.pop(0); | 
|---|
|  | 794 |  | 
|---|
|  | 795 | #ifdef BZ_DEBUG_TRAVERSE | 
|---|
|  | 796 | cerr << "Traversing: " << order[i] << endl; | 
|---|
|  | 797 | #endif | 
|---|
|  | 798 | // Position the iterator at the start of the next column | 
|---|
|  | 799 | for (int j=1; j < N_rank; ++j) | 
|---|
|  | 800 | { | 
|---|
|  | 801 | iter.loadStride(ordering(j)); | 
|---|
|  | 802 | expr.loadStride(ordering(j)); | 
|---|
|  | 803 |  | 
|---|
|  | 804 | int offset = order[i][j-1]; | 
|---|
|  | 805 | iter.advance(offset); | 
|---|
|  | 806 | expr.advance(offset); | 
|---|
|  | 807 | } | 
|---|
|  | 808 |  | 
|---|
|  | 809 | iter.loadStride(maxRank); | 
|---|
|  | 810 | expr.loadStride(maxRank); | 
|---|
|  | 811 |  | 
|---|
|  | 812 | // Evaluate the expression along the column | 
|---|
|  | 813 |  | 
|---|
|  | 814 | if ((useUnitStride) || (useCommonStride)) | 
|---|
|  | 815 | { | 
|---|
|  | 816 | T_numtype* _bz_restrict last = const_cast<T_numtype*>(iter.data()) | 
|---|
|  | 817 | + lastLength * commonStride; | 
|---|
|  | 818 |  | 
|---|
|  | 819 | #ifdef BZ_USE_FAST_READ_ARRAY_EXPR | 
|---|
|  | 820 | int ubound = lastLength * commonStride; | 
|---|
|  | 821 | T_numtype* _bz_restrict data = const_cast<T_numtype*>(iter.data()); | 
|---|
|  | 822 |  | 
|---|
|  | 823 | if (commonStride == 1) | 
|---|
|  | 824 | { | 
|---|
|  | 825 | #ifndef BZ_ARRAY_FAST_TRAVERSAL_UNROLL | 
|---|
|  | 826 | for (int i=0; i < ubound; ++i) | 
|---|
|  | 827 | T_update::update(data[i], expr.fastRead(i)); | 
|---|
|  | 828 | #else | 
|---|
|  | 829 | int n1 = ubound & 3; | 
|---|
|  | 830 | int i=0; | 
|---|
|  | 831 | for (; i < n1; ++i) | 
|---|
|  | 832 | T_update::update(data[i], expr.fastRead(i)); | 
|---|
|  | 833 |  | 
|---|
|  | 834 | for (; i < ubound; i += 4) | 
|---|
|  | 835 | { | 
|---|
|  | 836 | T_update::update(data[i], expr.fastRead(i)); | 
|---|
|  | 837 | T_update::update(data[i+1], expr.fastRead(i+1)); | 
|---|
|  | 838 | T_update::update(data[i+2], expr.fastRead(i+2)); | 
|---|
|  | 839 | T_update::update(data[i+3], expr.fastRead(i+3)); | 
|---|
|  | 840 | } | 
|---|
|  | 841 | #endif  // BZ_ARRAY_FAST_TRAVERSAL_UNROLL | 
|---|
|  | 842 | } | 
|---|
|  | 843 | #ifdef BZ_ARRAY_EXPR_USE_COMMON_STRIDE | 
|---|
|  | 844 | else { | 
|---|
|  | 845 | for (int i=0; i < ubound; i += commonStride) | 
|---|
|  | 846 | T_update::update(data[i], expr.fastRead(i)); | 
|---|
|  | 847 | } | 
|---|
|  | 848 | #endif // BZ_ARRAY_EXPR_USE_COMMON_STRIDE | 
|---|
|  | 849 |  | 
|---|
|  | 850 | iter.advance(lastLength * commonStride); | 
|---|
|  | 851 | expr.advance(lastLength * commonStride); | 
|---|
|  | 852 | #else   // ! BZ_USE_FAST_READ_ARRAY_EXPR | 
|---|
|  | 853 | while (iter.data() != last) | 
|---|
|  | 854 | { | 
|---|
|  | 855 | T_update::update(*const_cast<T_numtype*>(iter.data()), *expr); | 
|---|
|  | 856 | iter.advance(commonStride); | 
|---|
|  | 857 | expr.advance(commonStride); | 
|---|
|  | 858 | } | 
|---|
|  | 859 | #endif  // BZ_USE_FAST_READ_ARRAY_EXPR | 
|---|
|  | 860 |  | 
|---|
|  | 861 | } | 
|---|
|  | 862 | else { | 
|---|
|  | 863 | // No common stride | 
|---|
|  | 864 |  | 
|---|
|  | 865 | T_numtype* _bz_restrict last = const_cast<T_numtype*>(iter.data()) | 
|---|
|  | 866 | + lastLength * stride(maxRank); | 
|---|
|  | 867 |  | 
|---|
|  | 868 | while (iter.data() != last) | 
|---|
|  | 869 | { | 
|---|
|  | 870 | T_update::update(*const_cast<T_numtype*>(iter.data()), *expr); | 
|---|
|  | 871 | iter.advance(); | 
|---|
|  | 872 | expr.advance(); | 
|---|
|  | 873 | } | 
|---|
|  | 874 | } | 
|---|
|  | 875 | } | 
|---|
|  | 876 |  | 
|---|
|  | 877 | return *this; | 
|---|
|  | 878 | } | 
|---|
|  | 879 | #endif // BZ_HAVE_STD | 
|---|
|  | 880 |  | 
|---|
|  | 881 | #ifdef BZ_ARRAY_2D_NEW_STENCIL_TILING | 
|---|
|  | 882 |  | 
|---|
|  | 883 | #ifdef BZ_ARRAY_2D_STENCIL_TILING | 
|---|
|  | 884 |  | 
|---|
|  | 885 | template<class T_numtype, int N_rank> template<class T_expr, class T_update> | 
|---|
|  | 886 | inline Array<T_numtype, N_rank>& | 
|---|
|  | 887 | Array<T_numtype, N_rank>::evaluateWithTiled2DTraversal(_bz_ArrayExpr<T_expr> | 
|---|
|  | 888 | expr, T_update) | 
|---|
|  | 889 | { | 
|---|
|  | 890 | const int minorRank = ordering(0); | 
|---|
|  | 891 | const int majorRank = ordering(1); | 
|---|
|  | 892 |  | 
|---|
|  | 893 | ArrayIterator<T_numtype, N_rank> iter(*this); | 
|---|
|  | 894 | iter.push(0); | 
|---|
|  | 895 | expr.push(0); | 
|---|
|  | 896 |  | 
|---|
|  | 897 | #ifdef BZ_2D_STENCIL_DEBUG | 
|---|
|  | 898 | int count = 0; | 
|---|
|  | 899 | #endif | 
|---|
|  | 900 |  | 
|---|
|  | 901 | _bz_bool useUnitStride = iter.isUnitStride(minorRank) | 
|---|
|  | 902 | && expr.isUnitStride(minorRank); | 
|---|
|  | 903 |  | 
|---|
|  | 904 | #ifdef BZ_ARRAY_EXPR_USE_COMMON_STRIDE | 
|---|
|  | 905 | int commonStride = expr.suggestStride(minorRank); | 
|---|
|  | 906 | if (iter.suggestStride(minorRank) > commonStride) | 
|---|
|  | 907 | commonStride = iter.suggestStride(minorRank); | 
|---|
|  | 908 | bool useCommonStride = iter.isStride(minorRank,commonStride) | 
|---|
|  | 909 | && expr.isStride(minorRank,commonStride); | 
|---|
|  | 910 | #else | 
|---|
|  | 911 | int commonStride = 1; | 
|---|
|  | 912 | bool useCommonStride = _bz_false; | 
|---|
|  | 913 | #endif | 
|---|
|  | 914 |  | 
|---|
|  | 915 | // Determine if a common major stride exists | 
|---|
|  | 916 | int commonMajorStride = expr.suggestStride(majorRank); | 
|---|
|  | 917 | if (iter.suggestStride(majorRank) > commonMajorStride) | 
|---|
|  | 918 | commonMajorStride = iter.suggestStride(majorRank); | 
|---|
|  | 919 | bool haveCommonMajorStride = iter.isStride(majorRank,commonMajorStride) | 
|---|
|  | 920 | && expr.isStride(majorRank,commonMajorStride); | 
|---|
|  | 921 |  | 
|---|
|  | 922 |  | 
|---|
|  | 923 | int maxi = length(majorRank); | 
|---|
|  | 924 | int maxj = length(minorRank); | 
|---|
|  | 925 |  | 
|---|
|  | 926 | const int tileHeight = 16, tileWidth = 3; | 
|---|
|  | 927 |  | 
|---|
|  | 928 | int bi, bj; | 
|---|
|  | 929 | for (bi=0; bi < maxi; bi += tileHeight) | 
|---|
|  | 930 | { | 
|---|
|  | 931 | int ni = bi + tileHeight; | 
|---|
|  | 932 | if (ni > maxi) | 
|---|
|  | 933 | ni = maxi; | 
|---|
|  | 934 |  | 
|---|
|  | 935 | // Move back to the beginning of the array | 
|---|
|  | 936 | iter.pop(0); | 
|---|
|  | 937 | expr.pop(0); | 
|---|
|  | 938 |  | 
|---|
|  | 939 | // Move to the start of this tile row | 
|---|
|  | 940 | iter.loadStride(majorRank); | 
|---|
|  | 941 | iter.advance(bi); | 
|---|
|  | 942 | expr.loadStride(majorRank); | 
|---|
|  | 943 | expr.advance(bi); | 
|---|
|  | 944 |  | 
|---|
|  | 945 | // Save this position | 
|---|
|  | 946 | iter.push(1); | 
|---|
|  | 947 | expr.push(1); | 
|---|
|  | 948 |  | 
|---|
|  | 949 | for (bj=0; bj < maxj; bj += tileWidth) | 
|---|
|  | 950 | { | 
|---|
|  | 951 | // Move to the beginning of the tile row | 
|---|
|  | 952 | iter.pop(1); | 
|---|
|  | 953 | expr.pop(1); | 
|---|
|  | 954 |  | 
|---|
|  | 955 | // Move to the top of the current tile (bi,bj) | 
|---|
|  | 956 | iter.loadStride(minorRank); | 
|---|
|  | 957 | iter.advance(bj); | 
|---|
|  | 958 | expr.loadStride(minorRank); | 
|---|
|  | 959 | expr.advance(bj); | 
|---|
|  | 960 |  | 
|---|
|  | 961 | if (bj + tileWidth <= maxj) | 
|---|
|  | 962 | { | 
|---|
|  | 963 | // Strip mining | 
|---|
|  | 964 |  | 
|---|
|  | 965 | if ((useUnitStride) && (haveCommonMajorStride)) | 
|---|
|  | 966 | { | 
|---|
|  | 967 | int offset = 0; | 
|---|
|  | 968 | T_numtype* _bz_restrict data = const_cast<T_numtype*> | 
|---|
|  | 969 | (iter.data()); | 
|---|
|  | 970 |  | 
|---|
|  | 971 | for (int i=bi; i < ni; ++i) | 
|---|
|  | 972 | { | 
|---|
|  | 973 | _bz_typename T_expr::T_numtype tmp1, tmp2, tmp3; | 
|---|
|  | 974 |  | 
|---|
|  | 975 | // Common subexpression elimination -- compilers | 
|---|
|  | 976 | // won't necessarily do this on their own. | 
|---|
|  | 977 | int t1 = offset+1; | 
|---|
|  | 978 | int t2 = offset+2; | 
|---|
|  | 979 |  | 
|---|
|  | 980 | tmp1 = expr.fastRead(offset); | 
|---|
|  | 981 | tmp2 = expr.fastRead(t1); | 
|---|
|  | 982 | tmp3 = expr.fastRead(t2); | 
|---|
|  | 983 |  | 
|---|
|  | 984 | T_update::update(data[0], tmp1); | 
|---|
|  | 985 | T_update::update(data[1], tmp2); | 
|---|
|  | 986 | T_update::update(data[2], tmp3); | 
|---|
|  | 987 |  | 
|---|
|  | 988 | offset += commonMajorStride; | 
|---|
|  | 989 | data += commonMajorStride; | 
|---|
|  | 990 |  | 
|---|
|  | 991 | #ifdef BZ_2D_STENCIL_DEBUG | 
|---|
|  | 992 | count += 3; | 
|---|
|  | 993 | #endif | 
|---|
|  | 994 | } | 
|---|
|  | 995 | } | 
|---|
|  | 996 | else { | 
|---|
|  | 997 |  | 
|---|
|  | 998 | for (int i=bi; i < ni; ++i) | 
|---|
|  | 999 | { | 
|---|
|  | 1000 | iter.loadStride(minorRank); | 
|---|
|  | 1001 | expr.loadStride(minorRank); | 
|---|
|  | 1002 |  | 
|---|
|  | 1003 | // Loop through current row elements | 
|---|
|  | 1004 | T_update::update(*const_cast<T_numtype*>(iter.data()), | 
|---|
|  | 1005 | *expr); | 
|---|
|  | 1006 | iter.advance(); | 
|---|
|  | 1007 | expr.advance(); | 
|---|
|  | 1008 |  | 
|---|
|  | 1009 | T_update::update(*const_cast<T_numtype*>(iter.data()), | 
|---|
|  | 1010 | *expr); | 
|---|
|  | 1011 | iter.advance(); | 
|---|
|  | 1012 | expr.advance(); | 
|---|
|  | 1013 |  | 
|---|
|  | 1014 | T_update::update(*const_cast<T_numtype*>(iter.data()), | 
|---|
|  | 1015 | *expr); | 
|---|
|  | 1016 | iter.advance(-2); | 
|---|
|  | 1017 | expr.advance(-2); | 
|---|
|  | 1018 |  | 
|---|
|  | 1019 | iter.loadStride(majorRank); | 
|---|
|  | 1020 | expr.loadStride(majorRank); | 
|---|
|  | 1021 | iter.advance(); | 
|---|
|  | 1022 | expr.advance(); | 
|---|
|  | 1023 |  | 
|---|
|  | 1024 | #ifdef BZ_2D_STENCIL_DEBUG | 
|---|
|  | 1025 | count += 3; | 
|---|
|  | 1026 | #endif | 
|---|
|  | 1027 |  | 
|---|
|  | 1028 | } | 
|---|
|  | 1029 | } | 
|---|
|  | 1030 | } | 
|---|
|  | 1031 | else { | 
|---|
|  | 1032 |  | 
|---|
|  | 1033 | // This code handles partial tiles at the bottom of the | 
|---|
|  | 1034 | // array. | 
|---|
|  | 1035 |  | 
|---|
|  | 1036 | for (int j=bj; j < maxj; ++j) | 
|---|
|  | 1037 | { | 
|---|
|  | 1038 | iter.loadStride(majorRank); | 
|---|
|  | 1039 | expr.loadStride(majorRank); | 
|---|
|  | 1040 |  | 
|---|
|  | 1041 | for (int i=bi; i < ni; ++i) | 
|---|
|  | 1042 | { | 
|---|
|  | 1043 | T_update::update(*const_cast<T_numtype*>(iter.data()), | 
|---|
|  | 1044 | *expr); | 
|---|
|  | 1045 | iter.advance(); | 
|---|
|  | 1046 | expr.advance(); | 
|---|
|  | 1047 | #ifdef BZ_2D_STENCIL_DEBUG | 
|---|
|  | 1048 | ++count; | 
|---|
|  | 1049 | #endif | 
|---|
|  | 1050 |  | 
|---|
|  | 1051 | } | 
|---|
|  | 1052 |  | 
|---|
|  | 1053 | // Move back to the top of this column | 
|---|
|  | 1054 | iter.advance(bi-ni); | 
|---|
|  | 1055 | expr.advance(bi-ni); | 
|---|
|  | 1056 |  | 
|---|
|  | 1057 | // Move over to the next column | 
|---|
|  | 1058 | iter.loadStride(minorRank); | 
|---|
|  | 1059 | expr.loadStride(minorRank); | 
|---|
|  | 1060 |  | 
|---|
|  | 1061 | iter.advance(); | 
|---|
|  | 1062 | expr.advance(); | 
|---|
|  | 1063 | } | 
|---|
|  | 1064 | } | 
|---|
|  | 1065 | } | 
|---|
|  | 1066 | } | 
|---|
|  | 1067 |  | 
|---|
|  | 1068 | #ifdef BZ_2D_STENCIL_DEBUG | 
|---|
|  | 1069 | cout << "BZ_2D_STENCIL_DEBUG: count = " << count << endl; | 
|---|
|  | 1070 | #endif | 
|---|
|  | 1071 |  | 
|---|
|  | 1072 | return *this; | 
|---|
|  | 1073 | } | 
|---|
|  | 1074 |  | 
|---|
|  | 1075 | #endif // BZ_ARRAY_2D_STENCIL_TILING | 
|---|
|  | 1076 | #endif // BZ_ARRAY_2D_NEW_STENCIL_TILING | 
|---|
|  | 1077 |  | 
|---|
|  | 1078 |  | 
|---|
|  | 1079 |  | 
|---|
|  | 1080 | #ifndef BZ_ARRAY_2D_NEW_STENCIL_TILING | 
|---|
|  | 1081 |  | 
|---|
|  | 1082 | #ifdef BZ_ARRAY_2D_STENCIL_TILING | 
|---|
|  | 1083 |  | 
|---|
|  | 1084 | template<class T_numtype, int N_rank> template<class T_expr, class T_update> | 
|---|
|  | 1085 | inline Array<T_numtype, N_rank>& | 
|---|
|  | 1086 | Array<T_numtype, N_rank>::evaluateWithTiled2DTraversal(_bz_ArrayExpr<T_expr> | 
|---|
|  | 1087 | expr, T_update) | 
|---|
|  | 1088 | { | 
|---|
|  | 1089 | const int minorRank = ordering(0); | 
|---|
|  | 1090 | const int majorRank = ordering(1); | 
|---|
|  | 1091 |  | 
|---|
|  | 1092 | const int blockSize = 16; | 
|---|
|  | 1093 |  | 
|---|
|  | 1094 | ArrayIterator<T_numtype, N_rank> iter(*this); | 
|---|
|  | 1095 | iter.push(0); | 
|---|
|  | 1096 | expr.push(0); | 
|---|
|  | 1097 |  | 
|---|
|  | 1098 | _bz_bool useUnitStride = iter.isUnitStride(minorRank) | 
|---|
|  | 1099 | && expr.isUnitStride(minorRank); | 
|---|
|  | 1100 |  | 
|---|
|  | 1101 | #ifdef BZ_ARRAY_EXPR_USE_COMMON_STRIDE | 
|---|
|  | 1102 | int commonStride = expr.suggestStride(minorRank); | 
|---|
|  | 1103 | if (iter.suggestStride(minorRank) > commonStride) | 
|---|
|  | 1104 | commonStride = iter.suggestStride(minorRank); | 
|---|
|  | 1105 | bool useCommonStride = iter.isStride(minorRank,commonStride) | 
|---|
|  | 1106 | && expr.isStride(minorRank,commonStride); | 
|---|
|  | 1107 | #else | 
|---|
|  | 1108 | int commonStride = 1; | 
|---|
|  | 1109 | bool useCommonStride = _bz_false; | 
|---|
|  | 1110 | #endif | 
|---|
|  | 1111 |  | 
|---|
|  | 1112 | int maxi = length(majorRank); | 
|---|
|  | 1113 | int maxj = length(minorRank); | 
|---|
|  | 1114 |  | 
|---|
|  | 1115 | int bi, bj; | 
|---|
|  | 1116 | for (bi=0; bi < maxi; bi += blockSize) | 
|---|
|  | 1117 | { | 
|---|
|  | 1118 | int ni = bi + blockSize; | 
|---|
|  | 1119 | if (ni > maxi) | 
|---|
|  | 1120 | ni = maxi; | 
|---|
|  | 1121 |  | 
|---|
|  | 1122 | for (bj=0; bj < maxj; bj += blockSize) | 
|---|
|  | 1123 | { | 
|---|
|  | 1124 | int nj = bj + blockSize; | 
|---|
|  | 1125 | if (nj > maxj) | 
|---|
|  | 1126 | nj = maxj; | 
|---|
|  | 1127 |  | 
|---|
|  | 1128 | // Move to the beginning of the array | 
|---|
|  | 1129 | iter.pop(0); | 
|---|
|  | 1130 | expr.pop(0); | 
|---|
|  | 1131 |  | 
|---|
|  | 1132 | // Move to the beginning of the tile (bi,bj) | 
|---|
|  | 1133 | iter.loadStride(majorRank); | 
|---|
|  | 1134 | iter.advance(bi); | 
|---|
|  | 1135 | iter.loadStride(minorRank); | 
|---|
|  | 1136 | iter.advance(bj); | 
|---|
|  | 1137 |  | 
|---|
|  | 1138 | expr.loadStride(majorRank); | 
|---|
|  | 1139 | expr.advance(bi); | 
|---|
|  | 1140 | expr.loadStride(minorRank); | 
|---|
|  | 1141 | expr.advance(bj); | 
|---|
|  | 1142 |  | 
|---|
|  | 1143 | // Loop through tile rows | 
|---|
|  | 1144 | for (int i=bi; i < ni; ++i) | 
|---|
|  | 1145 | { | 
|---|
|  | 1146 | // Save the beginning of this tile row | 
|---|
|  | 1147 | iter.push(1); | 
|---|
|  | 1148 | expr.push(1); | 
|---|
|  | 1149 |  | 
|---|
|  | 1150 | // Load the minor stride | 
|---|
|  | 1151 | iter.loadStride(minorRank); | 
|---|
|  | 1152 | expr.loadStride(minorRank); | 
|---|
|  | 1153 |  | 
|---|
|  | 1154 | if (useUnitStride) | 
|---|
|  | 1155 | { | 
|---|
|  | 1156 | T_numtype* _bz_restrict data = const_cast<T_numtype*> | 
|---|
|  | 1157 | (iter.data()); | 
|---|
|  | 1158 |  | 
|---|
|  | 1159 | int ubound = (nj-bj); | 
|---|
|  | 1160 | for (int j=0; j < ubound; ++j) | 
|---|
|  | 1161 | T_update::update(data[j], expr.fastRead(j)); | 
|---|
|  | 1162 | } | 
|---|
|  | 1163 | #ifdef BZ_ARRAY_EXPR_USE_COMMON_STRIDE | 
|---|
|  | 1164 | else if (useCommonStride) | 
|---|
|  | 1165 | { | 
|---|
|  | 1166 | int ubound = (nj-bj) * commonStride; | 
|---|
|  | 1167 | T_numtype* _bz_restrict data = const_cast<T_numtype*> | 
|---|
|  | 1168 | (iter.data()); | 
|---|
|  | 1169 |  | 
|---|
|  | 1170 | for (int j=0; j < ubound; j += commonStride) | 
|---|
|  | 1171 | T_update::update(data[j], expr.fastRead(j)); | 
|---|
|  | 1172 | } | 
|---|
|  | 1173 | #endif | 
|---|
|  | 1174 | else { | 
|---|
|  | 1175 | for (int j=bj; j < nj; ++j) | 
|---|
|  | 1176 | { | 
|---|
|  | 1177 | // Loop through current row elements | 
|---|
|  | 1178 | T_update::update(*const_cast<T_numtype*>(iter.data()), | 
|---|
|  | 1179 | *expr); | 
|---|
|  | 1180 | iter.advance(); | 
|---|
|  | 1181 | expr.advance(); | 
|---|
|  | 1182 | } | 
|---|
|  | 1183 | } | 
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|  | 1184 |  | 
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|  | 1185 | // Move back to the beginning of the tile row, then | 
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|  | 1186 | // move to the next row | 
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|  | 1187 | iter.pop(1); | 
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|  | 1188 | iter.loadStride(majorRank); | 
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|  | 1189 | iter.advance(1); | 
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|  | 1190 |  | 
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|  | 1191 | expr.pop(1); | 
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|  | 1192 | expr.loadStride(majorRank); | 
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|  | 1193 | expr.advance(1); | 
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|  | 1194 | } | 
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|  | 1195 | } | 
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|  | 1196 | } | 
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|  | 1197 |  | 
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|  | 1198 | return *this; | 
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|  | 1199 | } | 
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|  | 1200 | #endif // BZ_ARRAY_2D_STENCIL_TILING | 
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|  | 1201 | #endif // BZ_ARRAY_2D_NEW_STENCIL_TILING | 
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|  | 1202 |  | 
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|  | 1203 | BZ_NAMESPACE_END | 
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|  | 1204 |  | 
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|  | 1205 | #endif // BZ_ARRAYEVAL_CC | 
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|  | 1206 |  | 
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