source: Sophya/trunk/SophyaLib/TArray/basarr.h@ 1103

Last change on this file since 1103 was 1099, checked in by ansari, 25 years ago

Protection integrite TMatrix,TVector - operateur = (BaseArray & pour TVector et operations entre matrices avec <> MemMapping (Pas termine) Reza 27/6/2000

File size: 9.2 KB
RevLine 
[787]1// This may look like C code, but it is really -*- C++ -*-
2// Base array class - Memory organisation management
3// R. Ansari, C.Magneville 03/2000
4
5#ifndef BaseArray_SEEN
6#define BaseArray_SEEN
7
8#include "machdefs.h"
9#include <math.h>
10#include <iostream.h>
11#include "anydataobj.h"
[1081]12#include "mutyv.h"
[787]13#include "dvlist.h"
14
15
[894]16//! Maximum number of dimensions for an array
17/*! \anchor BASEARRAY_MAXNDIMS */
[787]18#define BASEARRAY_MAXNDIMS 5
19
20namespace SOPHYA {
21
22// ------------ classe template Array -----------
[890]23//! Base class for template arrays
[787]24class BaseArray : public AnyDataObj {
25public:
[890]26 //! To define Array or Matrix memory mapping
27 enum MemoryMapping {
28 AutoMemoryMapping = -1, //!< define Auto Memory Mapping
29 SameMemoryMapping = 0, //!< define Same Memory Mapping
30 CMemoryMapping = 1, //!< define C Memory Mapping
31 FortranMemoryMapping = 2 //!< define Fortran Memory Mapping
32 };
33 //! To define Vector type
34 enum VectorType {
35 AutoVectorType = -1, //!< define Auto Vector Type
36 SameVectorType = 0, //!< define Same Vector Type
37 ColumnVector = 1, //!< define Column Vector Type
38 RowVector = 2 //!< define Row Vector Type
39 };
[804]40
[890]41 // threshold for parallel routine call
[813]42 static void SetOpenMPSizeThreshold(uint_8 thr=200000);
[890]43 //! Get Size threshold for parallel routine call
[813]44 static inline uint_8 GetOpenMPSizeThreshold() { return openmp_size_threshold; }
[890]45
[813]46 static void SetMaxPrint(uint_4 nprt=50, uint_4 lev=0);
[890]47 //! Get maximum number of printed elements
[813]48 static inline uint_4 GetMaxPrint() { return max_nprt_; }
[890]49 //! Maximum number of printed elements arint level
[813]50 static inline uint_4 GetPrintLevel() { return prt_lev_; }
51
[804]52 static short SetDefaultMemoryMapping(short mm=CMemoryMapping);
[890]53 //! Get Default Memory Mapping
[804]54 static inline short GetDefaultMemoryMapping() { return default_memory_mapping; }
[813]55 static short SetDefaultVectorType(short vt=ColumnVector);
[890]56 //! Get Default Vector Type
[813]57 static inline short GetDefaultVectorType() { return default_vector_type; }
[804]58
[890]59 // Creator / destructor
[787]60 BaseArray();
61 virtual ~BaseArray();
62
63 // Returns true if ndim and sizes are equal
[1099]64 virtual bool CompareSizes(const BaseArray& a, bool& smo);
[787]65
[890]66 // Compacts \b size=1 array dimensions
67 virtual void CompactAllDim(); // suppresses all size==1 dimensions
68 virtual void CompactTrailingDim(); // suppresses size==1 dimensions after the last size>1 dimension
[787]69
70 // Array dimensions
[890]71 //! Return number of dimensions
[787]72 inline uint_4 NbDimensions() const { return( ndim_ ); }
73
[890]74 //! Return total size of the array
[787]75 inline uint_8 Size() const { return(totsize_); }
[890]76 //! Return size along the first dimension
[787]77 inline uint_4 SizeX() const { return(size_[0]); }
[890]78 //! Return size along the second dimension
[787]79 inline uint_4 SizeY() const { return(size_[1]); }
[890]80 //! Return size along the third dimension
[787]81 inline uint_4 SizeZ() const { return(size_[2]); }
[890]82 //! Return size along the \b ka th dimension
[787]83 inline uint_4 Size(int ka) const { return(size_[CheckDI(ka,1)]); }
84
[1099]85 int MaxSizeKA() const ;
[787]86
[890]87 //! Get memory organization
[1099]88 inline short GetMemoryMapping() const
[890]89 { return ( (marowi_ == 1) ? CMemoryMapping : FortranMemoryMapping) ; }
90 //! line index dimension
[1099]91 inline int RowsKA() const {return marowi_; }
[1005]92 //! column index dimension
[1099]93 inline int ColsKA() const {return macoli_; }
[890]94 //! Index dimension of the elements of a vector
[1099]95 inline int VectKA() const {return veceli_; }
[813]96 void SetMemoryMapping(short mm=AutoMemoryMapping);
[804]97
[890]98 //! Get Vector type ( \b Line or \b Column vector )
[813]99 inline short GetVectorType() const
100 { return((marowi_ == veceli_) ? ColumnVector : RowVector); }
[890]101 void SetVectorType(short vt=AutoVectorType);
[813]102
[890]103 // memory organisation - packing information
104 //! return true if array is packed in memory
[787]105 inline bool IsPacked() const { return(moystep_ == 1); }
[890]106 //! return true if array is packed along the first dimension
[787]107 inline bool IsPackedX() const { return(step_[0] == 1); }
[890]108 //! return true if array is packed along the second dimension
[787]109 inline bool IsPackedY() const { return(step_[1] == 1); }
[890]110 //! return true if array is packed along the third dimension
[787]111 inline bool IsPackedZ() const { return(step_[2] == 1); }
[890]112 //! return true if array is packed along the \b ka th dimension
[787]113 inline bool IsPacked(int ka) const { return(step_[CheckDI(ka,2)] == 1); }
114
[890]115 //! return the minimum step value along all the dimensions
[787]116 inline uint_4 MinStep() const { return(minstep_); }
[890]117 //! return the average step value along all the dimensions
[787]118 inline uint_4 AvgStep() const { return(moystep_); }
[890]119 //! return the step along the first dimension
[787]120 inline uint_4 StepX() const { return(step_[0]); }
[890]121 //! return the step along the second dimension
[787]122 inline uint_4 StepY() const { return(step_[1]); }
[890]123 //! return the step along the third dimension
[787]124 inline uint_4 StepZ() const { return(step_[2]); }
[890]125 //! return the step along the \b ka th dimension
[787]126 inline uint_4 Step(int ka) const { return(step_[CheckDI(ka,3)]); }
127
[1099]128 int MinStepKA() const ;
[787]129
[813]130 // Offset of element ip
[787]131 uint_8 Offset(uint_8 ip=0) const ;
[813]132 // Offset of the i'th vector along axe ka
133 uint_8 Offset(uint_4 ka, uint_8 i) const ;
[787]134 inline uint_8 Offset(uint_4 ix, uint_4 iy, uint_4 iz, uint_4 it=0, uint_4 iu=0) const;
135
[890]136 // an abstract element acces methode
[1081]137 virtual MuTyV & ValueAtPosition(uint_8 ip) const = 0;
[787]138
[1099]139 // Pour recuperer pas et numero d'axe pour operations sur deux arrays
140 void GetOpeParams(const BaseArray& a, bool smo, int& ax, int& axa, uint_8& step,
141 uint_8& stepa, uint_8& gpas, uint_8& naxa);
142 // Impression, I/O, ...
[804]143 void Show(ostream& os, bool si=false) const;
[890]144 //! Show information on \b cout
[804]145 inline void Show() const { Show(cout); }
[813]146 virtual string InfoString() const;
[787]147
[894]148 // DVList info Object
149 DVList& Info();
[787]150
151protected:
152 inline int CheckDI(int ka, int msg) const ;
[956]153 inline void CheckBound(uint_4 ix, uint_4 iy, uint_4 iz, uint_4 it, uint_4 iu, int msg) const ;
[787]154 // Changing Sizes/NDim ... return true if OK
155 bool UpdateSizes(uint_4 ndim, const uint_4 * siz, uint_4 step, uint_8 offset, string & exmsg);
156 bool UpdateSizes(uint_4 ndim, const uint_4 * siz, const uint_4 * step, uint_8 offset, string & exmsg);
157 bool UpdateSizes(const BaseArray& a, string & exmsg);
[804]158 static uint_8 ComputeTotalSize(uint_4 ndim, const uint_4 * siz, uint_4 step, uint_8 offset) ;
159 // Organisation memoire
160 static short SelectMemoryMapping(short mm);
[813]161 static short SelectVectorType(short vt);
162 void UpdateMemoryMapping(short mm);
[804]163 void UpdateMemoryMapping(BaseArray const & a, short mm);
[787]164
[804]165 // Pour Extraction de sous-tableau
166 virtual void UpdateSubArraySizes(BaseArray & ra, uint_4 ndim, uint_4 * siz, uint_4 * pos, uint_4 * step) const;
167
[894]168 uint_4 ndim_; //!< number of dimensions of array
169 uint_4 size_[BASEARRAY_MAXNDIMS]; //!< array of the size in each dimension
170 uint_8 totsize_; //!< Total number of elements
[1099]171 uint_8 offset_; //!< global offset -\> position of elem[0] in DataBlock
[890]172 //! two consecutive elements distance in a given dimension
173 uint_4 step_[BASEARRAY_MAXNDIMS];
[894]174 uint_4 minstep_; //!< minimal step (in any axes)
175 uint_4 moystep_; //!< mean step, if == 0 --\> non regular steps
[1099]176 int_2 marowi_; //!< For matrices, Row index in dimensions
177 int_2 macoli_; //!< For matrices, Column index in dimensions
178 int_2 veceli_; //!< For vectors, dimension index = marowi_/macoli_ (Row/Col vectors)
179 int_2 arrtype_; //!< 0 a TArray, 1 TMatrix , 2 TVector
[894]180 DVList* mInfo; //!< Infos (variables) attached to the array
[787]181
[894]182 static char * ck_op_msg_[6]; //!< Operation messages for CheckDI() CheckBound()
183 static uint_4 max_nprt_; //!< maximum number of printed elements
184 static uint_4 prt_lev_; //!< Print level
185 static short default_memory_mapping; //!< Default memory mapping
186 static short default_vector_type; //!< Default vector type Row/Column
187 static uint_8 openmp_size_threshold; //!< Size limit for parallel routine calls
[787]188};
189
190// --------------------------------------------------
191// Methodes inline de verification
192// --------------------------------------------------
[890]193//! to verify the compatibility of the dimension index
[787]194inline int BaseArray::CheckDI(int ka, int msg) const
195{
[956]196 if ( (ka < 0) || ((uint_4) ka >= ndim_) ) {
[787]197 string txt = "BaseArray::CheckDimensionIndex/Error "; txt += ck_op_msg_[msg];
[813]198 throw(RangeCheckError(txt));
[787]199 }
200 return(ka);
201}
202
[890]203//! to verify the compatibility of the indexes in all dimensions
[956]204inline void BaseArray::CheckBound(uint_4 ix, uint_4 iy, uint_4 iz, uint_4 it, uint_4 iu, int msg) const
[787]205{
206 if ( (ix >= size_[0]) || (iy >= size_[1]) || (iz > size_[2]) ||
207 (it >= size_[3]) || (iu >= size_[4]) ) {
208 string txt = "BaseArray::CheckArrayBound/Error "; txt += ck_op_msg_[msg];
[813]209 throw(RangeCheckError(txt));
[787]210 }
211 return;
212}
213
214
[813]215
[787]216// --------------------------------------------------
217// Position d'un element
218// --------------------------------------------------
[890]219//! Offset of element (ix,iy,iz,it,iu)
[787]220inline uint_8 BaseArray::Offset(uint_4 ix, uint_4 iy, uint_4 iz, uint_4 it, uint_4 iu) const
221{
222#ifdef SO_BOUNDCHECKING
223 CheckBound(ix, iy, iz, it, iu, 4);
224#endif
225 return ( offset_+ ix*step_[0] + iy*step_[1] + iz*step_[2] +
226 it*step_[3] + iu*step_[4] );
227}
228
229
230} // Fin du namespace
231
232#endif
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