1 | // This may look like C code, but it is really -*- C++ -*-
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2 | /*! Class for inferior triangular matrix (base class for the class Alm) */
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3 |
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4 | #ifndef TRIANGMTX_H_SEEN
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5 | #define TRIANGMTX_H_SEEN
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6 |
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7 | #include "ndatablock.h"
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8 | #include "pexceptions.h"
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9 |
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10 | namespace SOPHYA {
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11 |
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12 | template <class T>
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13 | class TriangularMatrix
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14 | {
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15 |
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16 | public :
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17 |
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18 | TriangularMatrix() {};
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19 | /* instanciate a triangular matrix from the number of rows */
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20 | TriangularMatrix(int rowSize) : long_diag_((uint_4)rowSize) {elem_.ReSize((uint_4) (rowSize*(rowSize+1)/2) ); };
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21 | TriangularMatrix(const TriangularMatrix<T>& a, bool share=false) : elem_(a.elem_, share), long_diag_(a.long_diag_) {;}
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22 | /*! resize the matrix with a new number of rows */
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23 | inline void ReSizeRow(int rowSize)
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24 | {
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25 | long_diag_=(uint_4)rowSize;
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26 | elem_.ReSize(long_diag_*(long_diag_+1)/2);
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27 | }
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28 | inline void SetTemp(bool temp=false) const {elem_.SetTemp(temp);}
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29 |
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30 | inline TriangularMatrix<T>& operator = (const TriangularMatrix<T>& a)
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31 | {
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32 | elem_=a.elem_;
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33 | long_diag_ = a.long_diag_;
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34 | return *this;
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35 | }
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36 | inline T& operator()(int l, int m)
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37 | {
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38 | return elem_(adr_ij(l,m));
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39 | }
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40 | inline T const& operator()(int l, int m) const
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41 | {
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42 | return *(elem_.Begin()+ adr_ij(l,m));
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43 | }
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44 | inline int_4 rowNumber() const {return (int_4)long_diag_;}
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45 | private:
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46 | /*! compute the address of an element in the single array representing the matrix */
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47 | inline uint_4 adr_ij(int i,int j) const
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48 | {
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49 | int adr= i*(i+1)/2+j;
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50 | // if ( adr >= elem_.Size() || adr <0 )
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51 | //{
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52 | // cout << " attention depassement dans triangularMatrix " << endl;
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53 | // cout << " l= " << i << " m= " << j << " tableau reserve longueur " << elem_.Size() << endl;
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54 | //}
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55 | return(i*(i+1)/2+j);
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56 | }
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57 |
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58 | uint_4 long_diag_;
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59 | NDataBlock<T> elem_;
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60 |
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61 | };
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62 |
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63 | } // namespace SOPHYA
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64 |
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65 | #endif
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