| [8d76f2b] | 1 | #include <assert.h>
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| [c7625e0] | 2 | 
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 | 3 | 
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| [6e50a6b] | 4 | forall( __CFA_tysys_id_only_X & ) struct tag {};
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| [c7625e0] | 5 | #define ttag(T) ((tag(T)){})
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| [6e50a6b] | 6 | #define ztag(n) ttag(n)
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| [c7625e0] | 7 | 
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 | 8 | 
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 | 9 | //
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 | 10 | // Single-dim array sruct (with explicit packing and atom)
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 | 11 | //
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 | 12 | 
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| [63f42a8] | 13 | forall( [N], S & | sized(S), Timmed &, Tbase & ) {
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| [c7625e0] | 14 |     struct arpk {
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| [6e50a6b] | 15 |         S strides[N];
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| [c7625e0] | 16 |     };
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 | 17 | 
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| [9fa538c] | 18 |     // About the choice of integral types offered as subscript overloads:
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 | 19 |     // Intent is to cover these use cases:
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 | 20 |     //    float foo( ptrdiff_t i ) { return a[i]; }           // i : ptrdiff_t
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 | 21 |     //    forall( [N] ) ... for( i; N ) { total += a[i]; }    // i : typeof( sizeof(42) )
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 | 22 |     //    for( i; 5 ) { total += a[i]; }                      // i : int
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 | 23 |     // It gets complicated by:
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 | 24 |     // -  CFA does overloading on concrete types, like int and unsigned int, not on typedefed
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 | 25 |     //    types like size_t.  So trying to overload on ptrdiff_t vs int works in 64-bit mode
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 | 26 |     //    but not in 32-bit mode.
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 | 27 |     // -  Given bug of Trac #247, CFA gives sizeof expressions type unsigned long int, when it
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 | 28 |     //    should give them type size_t.
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 | 29 |     //    
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 | 30 |     //                          gcc -m32         cfa -m32 given bug         gcc -m64
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 | 31 |     // ptrdiff_t                int              int                        long int
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 | 32 |     // size_t                   unsigned int     unsigned int               unsigned long int
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 | 33 |     // typeof( sizeof(42) )     unsigned int     unsigned long int          unsigned long int
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 | 34 |     // int                      int              int                        int
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 | 35 | 
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 | 36 |     static inline Timmed & ?[?]( arpk(N, S, Timmed, Tbase) & a, int i ) {
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| [8d76f2b] | 37 |         assert( i < N );
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| [c7625e0] | 38 |         return (Timmed &) a.strides[i];
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 | 39 |     }
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 | 40 | 
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| [9fa538c] | 41 |     static inline Timmed & ?[?]( arpk(N, S, Timmed, Tbase) & a, unsigned int i ) {
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| [8d76f2b] | 42 |         assert( i < N );
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| [63a4b92] | 43 |         return (Timmed &) a.strides[i];
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 | 44 |     }
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 | 45 | 
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| [9fa538c] | 46 |     static inline Timmed & ?[?]( arpk(N, S, Timmed, Tbase) & a, long int i ) {
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| [8d76f2b] | 47 |         assert( i < N );
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| [63a4b92] | 48 |         return (Timmed &) a.strides[i];
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 | 49 |     }
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 | 50 | 
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| [9fa538c] | 51 |     static inline Timmed & ?[?]( arpk(N, S, Timmed, Tbase) & a, unsigned long int i ) {
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| [8d76f2b] | 52 |         assert( i < N );
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| [9fa538c] | 53 |         return (Timmed &) a.strides[i];
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 | 54 |     }
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 | 55 | 
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 | 56 |     static inline size_t ?`len( arpk(N, S, Timmed, Tbase) & a ) {
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| [6e50a6b] | 57 |         return N;
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| [c7625e0] | 58 |     }
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 | 59 | 
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 | 60 |     // workaround #226 (and array relevance thereof demonstrated in mike102/otype-slow-ndims.cfa)
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| [9fa538c] | 61 |     static inline void ?{}( arpk(N, S, Timmed, Tbase) & this ) {
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| [6e50a6b] | 62 |         void ?{}( S (&inner)[N] ) {}
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| [c7625e0] | 63 |         ?{}(this.strides);
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 | 64 |     }
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| [9fa538c] | 65 |     static inline void ^?{}( arpk(N, S, Timmed, Tbase) & this ) {
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| [6e50a6b] | 66 |         void ^?{}( S (&inner)[N] ) {}
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| [c7625e0] | 67 |         ^?{}(this.strides);
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 | 68 |     }
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 | 69 | }
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 | 70 | 
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 | 71 | //
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 | 72 | // Sugar for declaring array structure instances
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 | 73 | //
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 | 74 | 
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 | 75 | forall( Te )
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| [9fa538c] | 76 | static inline Te mkar_( tag(Te) ) {}
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| [c7625e0] | 77 | 
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| [b9dae14c] | 78 | forall( [N], ZTags ... , Trslt &, Tatom & | { Trslt mkar_( tag(Tatom), ZTags ); } )
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| [9fa538c] | 79 | static inline arpk(N, Trslt, Trslt, Tatom) mkar_( tag(Tatom), tag(N), ZTags ) {}
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| [c7625e0] | 80 | 
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 | 81 | // based on https://stackoverflow.com/questions/1872220/is-it-possible-to-iterate-over-arguments-in-variadic-macros
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 | 82 | 
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 | 83 |     // Make a FOREACH macro
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 | 84 |     #define FE_0(WHAT)
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 | 85 |     #define FE_1(WHAT, X) WHAT(X) 
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 | 86 |     #define FE_2(WHAT, X, ...) WHAT(X)FE_1(WHAT, __VA_ARGS__)
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 | 87 |     #define FE_3(WHAT, X, ...) WHAT(X)FE_2(WHAT, __VA_ARGS__)
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 | 88 |     #define FE_4(WHAT, X, ...) WHAT(X)FE_3(WHAT, __VA_ARGS__)
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 | 89 |     #define FE_5(WHAT, X, ...) WHAT(X)FE_4(WHAT, __VA_ARGS__)
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 | 90 |     //... repeat as needed
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 | 91 | 
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 | 92 |     #define GET_MACRO(_0,_1,_2,_3,_4,_5,NAME,...) NAME 
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 | 93 |     #define FOR_EACH(action,...) \
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 | 94 |     GET_MACRO(_0,__VA_ARGS__,FE_5,FE_4,FE_3,FE_2,FE_1,FE_0)(action,__VA_ARGS__)
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 | 95 | 
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 | 96 | #define COMMA_ttag(X) , ttag(X)
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 | 97 | #define array( TE, ...) typeof( mkar_( ttag(TE)  FOR_EACH( COMMA_ttag, __VA_ARGS__ ) ) )
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 | 98 | 
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 | 99 | #define COMMA_ztag(X) , ztag(X)
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 | 100 | #define zarray( TE, ...) typeof( mkar_( ttag(TE)  FOR_EACH( COMMA_ztag, __VA_ARGS__ ) ) )
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 | 101 | 
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 | 102 | //
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 | 103 | // Sugar for multidimensional indexing
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 | 104 | //
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 | 105 | 
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 | 106 | // Core -[[-,-,-]] operator
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 | 107 | 
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| [63a4b92] | 108 | #ifdef TRY_BROKEN_DESIRED_MD_SUBSCRIPT
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 | 109 | 
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| [c7625e0] | 110 | // Desired form.  One definition with recursion on IxBC (worked until Jan 2021, see trac #__TODO__)
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 | 111 | 
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| [63a4b92] | 112 | forall( TA &, TB &, TC &, IxAB, IxBC ... | { TB & ?[?]( TA &, IxAB ); TC & ?[?]( TB &, IxBC ); } )
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| [9fa538c] | 113 | static inline TC & ?[?]( TA & this, IxAB ab, IxBC bc ) {
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| [c7625e0] | 114 |     return this[ab][bc];
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 | 115 | }
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 | 116 | 
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| [63a4b92] | 117 | #else 
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| [c7625e0] | 118 | 
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| [63a4b92] | 119 | // Workaround form.  Listing all possibilities up to 4 dims.
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| [c7625e0] | 120 | 
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| [63a4b92] | 121 | forall( TA &, TB &, TC &, IxAB_0, IxBC | { TB & ?[?]( TA &, IxAB_0 ); TC & ?[?]( TB &, IxBC ); } )
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| [9fa538c] | 122 | static inline TC & ?[?]( TA & this, IxAB_0 ab, IxBC bc ) {
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| [63a4b92] | 123 |     return this[ab][bc];
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| [c7625e0] | 124 | }
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 | 125 | 
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| [63a4b92] | 126 | forall( TA &, TB &, TC &, IxAB_0, IxAB_1, IxBC | { TB & ?[?]( TA &, IxAB_0, IxAB_1 ); TC & ?[?]( TB &, IxBC ); } )
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| [9fa538c] | 127 | static inline TC & ?[?]( TA & this, IxAB_0 ab0, IxAB_1 ab1, IxBC bc ) {
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| [63a4b92] | 128 |     return this[[ab0,ab1]][bc];
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 | 129 | }
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 | 130 | 
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 | 131 | forall( TA &, TB &, TC &, IxAB_0, IxAB_1, IxAB_2, IxBC | { TB & ?[?]( TA &, IxAB_0, IxAB_1, IxAB_2 ); TC & ?[?]( TB &, IxBC ); } )
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| [9fa538c] | 132 | static inline TC & ?[?]( TA & this, IxAB_0 ab0, IxAB_1 ab1, IxAB_2 ab2, IxBC bc ) {
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| [63a4b92] | 133 |     return this[[ab0,ab1,ab2]][bc];
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 | 134 | }
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 | 135 | 
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 | 136 | #endif
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 | 137 | 
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| [c7625e0] | 138 | //
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 | 139 | // Rotation
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 | 140 | //
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 | 141 | 
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 | 142 | // Base
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| [63f42a8] | 143 | forall( [Nq], Sq & | sized(Sq), Tbase & )
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| [6448f7d] | 144 | static inline tag(arpk(Nq, Sq, Tbase, Tbase)) enq_( tag(Tbase), tag(Nq), tag(Sq), tag(Tbase) ) {
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 | 145 |     tag(arpk(Nq, Sq, Tbase, Tbase)) ret;
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 | 146 |     return ret;
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 | 147 | }
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| [c7625e0] | 148 | 
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 | 149 | // Rec
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| [63f42a8] | 150 | forall( [Nq], Sq & | sized(Sq), [N], S & | sized(S), recq &, recr &, Tbase & | { tag(recr) enq_( tag(Tbase), tag(Nq), tag(Sq), tag(recq) ); } )
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| [6448f7d] | 151 | static inline tag(arpk(N, S, recr, Tbase)) enq_( tag(Tbase), tag(Nq), tag(Sq), tag(arpk(N, S, recq, Tbase)) ) {
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 | 152 |     tag(arpk(N, S, recr, Tbase)) ret;
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 | 153 |     return ret;
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 | 154 | }
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| [c7625e0] | 155 | 
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 | 156 | // Wrapper
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 | 157 | struct all_t {} all;
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| [63f42a8] | 158 | forall( [N], S & | sized(S), Te &, result &, Tbase & | { tag(result) enq_( tag(Tbase), tag(N), tag(S), tag(Te) ); } )
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| [9fa538c] | 159 | static inline result & ?[?]( arpk(N, S, Te, Tbase) & this, all_t ) {
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| [c7625e0] | 160 |     return (result&) this;
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 | 161 | }
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 | 162 | 
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 | 163 | //
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 | 164 | // Trait of array or slice
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 | 165 | //
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 | 166 | 
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 | 167 | trait ar(A &, Tv &) {
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 | 168 |     Tv& ?[?]( A&, ptrdiff_t );
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 | 169 |     size_t ?`len( A& );
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 | 170 | };
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