| 1 | //     Utility classes for template numerical arrays
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| 2 | //                     R. Ansari, C.Magneville   03/2000
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| 3 | 
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| 4 | #include "sopnamsp.h"
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| 5 | #include "machdefs.h"
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| 6 | #include "utilarr.h"
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| 7 | #include "srandgen.h"
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| 8 | 
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| 9 | // Classe utilitaires
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| 10 | 
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| 11 | Sequence::~Sequence()
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| 12 | {
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| 13 | }
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| 14 | 
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| 15 | //////////////////////////////////////////////////////////
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| 16 | /*!
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| 17 |   \class SOPHYA::RandomSequence
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| 18 |   \ingroup TArray
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| 19 |   Base class to generate a sequence of random values
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| 20 | */
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| 21 | 
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| 22 | //! Constructor
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| 23 | /*!
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| 24 |   \param typ : generator type
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| 25 |   \param m : mean parameter of the generator (if needed)
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| 26 |   \param s : sigma parameter of the generator (if needed)
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| 27 |  */
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| 28 | RandomSequence::RandomSequence(int typ, double m, double s)
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| 29 | {
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| 30 |   typ_ = (typ == Flat) ? Flat : Gaussian;
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| 31 |   mean_ = m;
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| 32 |   sig_ = s;
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| 33 | }
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| 34 | RandomSequence::~RandomSequence()
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| 35 | {
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| 36 | }
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| 37 | 
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| 38 | //! Return random sequence values.
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| 39 | /*!
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| 40 |   \return If typ = Flat : return [-1,+1]*sig + mean
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| 41 |   \return If typ = Gaussian : return gaussian distributed
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| 42 |                           with \b mean mean and sigma \b sig
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| 43 |  */
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| 44 | double RandomSequence::Rand()
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| 45 | {
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| 46 |   if (typ_ == Flat) 
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| 47 |     return(drandpm1()*sig_ + mean_);
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| 48 |   else return(GauRnd(mean_, sig_));
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| 49 | }
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| 50 | 
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| 51 | MuTyV & RandomSequence::Value(sa_size_t k) const 
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| 52 | {
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| 53 |   if (typ_ == Flat) retv_ = drandpm1()*sig_ + mean_;
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| 54 |   else retv_ = GauRnd(mean_, sig_);
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| 55 |   return retv_;
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| 56 | }
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| 57 | 
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| 58 | 
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| 59 | //////////////////////////////////////////////////////////
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| 60 | /*!
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| 61 |   \class SOPHYA::RegularSequence
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| 62 |   \ingroup TArray
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| 63 |   Class to generate a sequence of values
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| 64 | */
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| 65 | 
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| 66 | //! Constructor
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| 67 | /*!
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| 68 |   \param start : start value
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| 69 |   \param step : step value
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| 70 |   \param f : pointer to the sequence function (default = NULL, f(x)=x )
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| 71 | 
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| 72 |   See \ref RegularSequenceOperat "operator()"
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| 73 |  */
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| 74 | RegularSequence::RegularSequence(double start, double step, Arr_DoubleFunctionOfX f)
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| 75 | {
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| 76 |   start_ = start;
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| 77 |   step_ = step;
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| 78 |   myf_ = f;
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| 79 | }
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| 80 | 
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| 81 | RegularSequence::~RegularSequence()
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| 82 | {
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| 83 | }
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| 84 | 
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| 85 | //! Get the \b k th value
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| 86 | /*!
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| 87 |   \param k : index of the value
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| 88 |   \anchor RegularSequenceOperat
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| 89 |   
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| 90 |   \return f(start+k*step)
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| 91 | 
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| 92 |  */
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| 93 | 
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| 94 | MuTyV & RegularSequence::Value (sa_size_t k) const 
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| 95 | {
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| 96 |   double x = start_+(double)k*step_;
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| 97 |   if (myf_)  x = myf_(x);
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| 98 |   retv_ = x;
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| 99 |   return(retv_);
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| 100 | }
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| 101 | 
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| 102 | /*!
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| 103 |   \class SOPHYA::EnumeratedSequence
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| 104 |   \ingroup TArray
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| 105 |   Explicitly defined sequence of values. The comma operator has
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| 106 |   been redefined to let an easy definition of sequences.
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| 107 |   
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| 108 |   \code
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| 109 |   // Initializing a sequence 
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| 110 |   EnumeratedSequence es;
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| 111 |   es = 11, 22, 33, 44, 55, 66;
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| 112 |   
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| 113 |   for(int k=0; k<8; k++) 
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| 114 |     cout << " k= " << k << " es(k)= " << es(k) << endl; 
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| 115 | 
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| 116 |   // Decoding a sequence from a string
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| 117 |   EnumeratedSequence ess;
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| 118 |   int nbad;
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| 119 |   ess.Append("56.5 (1.,-1.) 4 8 16", nbad);
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| 120 |   cout << ess;
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| 121 |   \endcode
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| 122 | */
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| 123 | 
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| 124 | //! Default constructor
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| 125 | EnumeratedSequence::EnumeratedSequence()
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| 126 | {
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| 127 | }
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| 128 | 
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| 129 | //! Copy constructor
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| 130 | EnumeratedSequence::EnumeratedSequence(EnumeratedSequence const & es)
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| 131 | {
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| 132 |   Append(es);
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| 133 | }
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| 134 | 
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| 135 | EnumeratedSequence::~EnumeratedSequence()
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| 136 | {
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| 137 | }
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| 138 | 
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| 139 | //! Return the k th value in the sequence (default = 0)
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| 140 | MuTyV & EnumeratedSequence::Value (sa_size_t k) const 
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| 141 | {
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| 142 |   if (k >= vecv_.size())  retv_ = 0;
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| 143 |   else retv_ = vecv_[k];
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| 144 |   return(retv_);
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| 145 | }
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| 146 | 
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| 147 | //! Appends a new value to the sequence
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| 148 | EnumeratedSequence & EnumeratedSequence::operator , (MuTyV const & v)
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| 149 | {
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| 150 |   vecv_.push_back(v);
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| 151 |   return(*this);
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| 152 | }
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| 153 | 
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| 154 | //! Initialize the sequence with a single value \b v
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| 155 | EnumeratedSequence & EnumeratedSequence::operator = (MuTyV const & v)
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| 156 | {
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| 157 |   vecv_.clear();
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| 158 |   vecv_.push_back(v);
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| 159 |   return(*this);
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| 160 | }
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| 161 | 
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| 162 | //! Copy operator
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| 163 | EnumeratedSequence & EnumeratedSequence::operator = (EnumeratedSequence const & seq)
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| 164 | {
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| 165 |   Clear();
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| 166 |   Append(seq);
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| 167 |   return(*this);  
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| 168 | }
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| 169 | 
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| 170 | 
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| 171 | //! Prints the list to the output stream \b os
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| 172 | void EnumeratedSequence::Print(ostream& os) const 
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| 173 | {
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| 174 |   os << " EnumeratedSequence::Print() - Size()= " << Size() << endl;
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| 175 |   for(int k=0; k<vecv_.size(); k++) {
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| 176 |     os << vecv_[k];
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| 177 |     if ((k > 0) && (k%10 == 0))  os << endl;
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| 178 |     else os << " " ;
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| 179 |   }
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| 180 |   os << endl;
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| 181 |   return;
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| 182 | }
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| 183 | 
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| 184 | //! Append the \b seq to the end of the sequence.
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| 185 | /*!
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| 186 |   \return the number of added elements.
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| 187 | */ 
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| 188 | sa_size_t EnumeratedSequence::Append(EnumeratedSequence const & seq)
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| 189 | {
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| 190 |   for(int k=0; k<seq.vecv_.size(); k++) 
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| 191 |     vecv_.push_back(seq.vecv_[k]);
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| 192 |   return(seq.vecv_.size());
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| 193 | }
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| 194 | 
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| 195 | //! Decodes the string, appending values to the end of the sequence.
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| 196 | /*!
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| 197 |   \param str : string to be decoded
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| 198 |   \param nbad : number of unmatched quotes or parenthesis (returned value)
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| 199 |   \param sep : word separator in string. Each word is decoded as a MuTyV value.
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| 200 |   \return the number of added elements.
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| 201 | */ 
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| 202 | sa_size_t EnumeratedSequence::Append(string const & str, int& nbad, const char* sep)
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| 203 | {
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| 204 |   nbad = 0;
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| 205 |   sa_size_t n = 0;
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| 206 |   size_t l = str.length();
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| 207 |   if (l < 1) return(0);
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| 208 |   //  if ((str[0] == '#') || (str[0] == '*')) return(0);
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| 209 |   size_t q = 0;
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| 210 |   size_t p = 0;
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| 211 |   /*
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| 212 |   size_t p = str.find_first_not_of(sep);
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| 213 |   if ((str[p] == '+') || (str[p] == '-')) {
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| 214 |     if (p == l-1)  return(0);
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| 215 |     if (!isdigit(str[p+1])) return(0);
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| 216 |   }
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| 217 |   else if (!isdigit(str[p]) && (str[p] != '\'') && (str[p] != '(') ) return(0);
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| 218 |   */
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| 219 |   while(q < l) {
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| 220 |     p = str.find_first_not_of(sep,q);
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| 221 |     if (p >= l)  break;
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| 222 |     if (str[p] == '\'')    {  // Decodage d'un string
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| 223 |       q = str.find('\'',p+1);
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| 224 |       if (q < l) {
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| 225 |         vecv_.push_back(MuTyV(str.substr(p+1,q-p-1)));
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| 226 |         n++;    q++;
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| 227 |       }
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| 228 |       else nbad++;
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| 229 |     }
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| 230 |     else if (str[p] == '(')    {  // Decodage d'un complex
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| 231 |       q = str.find(')',p);
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| 232 |       if (q < l) {
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| 233 |         q++;
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| 234 |         MuTyV mtv(str.substr(p,q-p));
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| 235 |         complex<r_8> z = mtv.operator complex<r_8>();
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| 236 |         vecv_.push_back(MuTyV(z));
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| 237 |         n++;
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| 238 |       }
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| 239 |       else nbad++;      
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| 240 |     }
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| 241 |     else { 
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| 242 |       q = str.find_first_of(sep,p);
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| 243 |       if ( !isdigit(str[p]) && !(str[p] == '+')
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| 244 |         && !(str[p] == '-') && !(str[p] == '.') ) { // une chaine
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| 245 |         vecv_.push_back(MuTyV(str.substr(p,q-p)));
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| 246 |         n++;
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| 247 |       }
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| 248 |       else {  // C'est un nombre 
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| 249 |         if (str.find_first_of(".eE",p) < q)   { // c'est un flottant
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| 250 |           r_8 x = atof(str.substr(p,q-p).c_str());
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| 251 |           vecv_.push_back(MuTyV(x));
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| 252 |         }
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| 253 |         else {   // un entier
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| 254 |           int_8 l = atol(str.substr(p,q-p).c_str());
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| 255 |           vecv_.push_back(MuTyV(l));
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| 256 |         }
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| 257 |         n++;
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| 258 |       }
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| 259 |     }
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| 260 |   }
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| 261 |   return (n);
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| 262 | }
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| 263 | 
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| 264 | //! Decodes the input ASCII stream, creating a sequence of values
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| 265 | /*! \param is : Input ASCII stream
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| 266 |     \param nr : Number of non empty (or comment) lines in stream (return value)
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| 267 |     \param nc : Number of columns (= ntot/nlines) (return value)
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| 268 |     \param clm : Lines starting with clm character are treated as comment lines
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| 269 |     \param sep : word separator in lines
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| 270 |     \return Number of decoded elements
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| 271 | */
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| 272 | sa_size_t EnumeratedSequence::FillFromFile(istream& is, sa_size_t& nr, sa_size_t& nc,
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| 273 |                                            char clm, const char* sep)
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| 274 | {
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| 275 |   nr = 0;
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| 276 |   nc = 0;
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| 277 |   sa_size_t n = 0;
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| 278 |   char buff[256];
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| 279 |   string line;
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| 280 |   int nbad, nbadtot, nel;
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| 281 |   nbadtot = nbad = 0;
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| 282 |   while (!is.eof()) {
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| 283 |     is.clear(); 
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| 284 |     is.getline(buff, 256);
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| 285 |     //    cout << " DBG : buff=" << buff << " :state=" << is.rdstate() << endl;
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| 286 |     line += buff;  nel = 0;
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| 287 |     if (is.good()) {
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| 288 |       if ((line.length() > 0) && (line[0]!=clm)) {
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| 289 |         nel = Append(line, nbad);
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| 290 |         if (nel > 0)  { 
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| 291 |           nr++;  n += nel;
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| 292 |         }
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| 293 |         nbadtot += nbad;
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| 294 |       }
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| 295 |       //              cout << " Decoding line = " << line << " Nel= " << nel << endl;
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| 296 |       line = "";
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| 297 |     }
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| 298 |   }
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| 299 |   if ((line.length() > 0) && (line[0]!=clm)) {
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| 300 |     nel = Append(line, nbad);
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| 301 |     //        cout << " Decoding Eline = " << line << " Nel= " << nel << endl;
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| 302 |     if (nel > 0)  { 
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| 303 |       nr++;  n += nel;
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| 304 |     }
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| 305 |     nbadtot += nbad;
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| 306 |     line = ""; 
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| 307 |   }
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| 308 |   if (nbadtot > 0) 
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| 309 |     cout << "EnumeratedSequence::FillFromFile()/Warning " << nbadtot 
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| 310 |          << " bad match (quotes or parenthesis) in stream " << endl;
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| 311 |   nc = n/nr;
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| 312 |   return (n);
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| 313 | }
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| 314 | 
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| 315 | //////////////////////////////////////////////////////////
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| 316 | /*!
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| 317 |   \class SOPHYA::Range
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| 318 |   \ingroup TArray
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| 319 |   Class to define a range of indexes
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| 320 | */
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| 321 | 
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| 322 | //! Constructor
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| 323 | /*!
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| 324 |   Define a range of indexes
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| 325 |   \param start : start index (inclusive)
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| 326 |   \param end : end index (inclusive)
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| 327 |   \param size : size (number of elements, used if end \<= start)
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| 328 |   \param step : step (or stride)
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| 329 | 
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| 330 |   \warning If \b end \> \b start, \b size is computed automatically
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| 331 |   \warning If not \b size is fixed and \b end recomputed
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| 332 |  */
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| 333 | Range::Range(sa_size_t start, sa_size_t end, sa_size_t size, sa_size_t step)
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| 334 | {
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| 335 |   start_ = start;
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| 336 |   step_ = (step > 0) ? step : 1;
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| 337 |   if (end > start) {  // Taille calcule automatiquement 
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| 338 |     end_ = end;
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| 339 |     if (step_ > ((end_-start_)+1))  size_ = 1;
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| 340 |     else size_ = ((end-start)+1)/step_;
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| 341 |   }
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| 342 |   else {     // Taille fixee
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| 343 |     size_ = size;
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| 344 |     end_ = start_+size_*step_;
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| 345 |   }
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| 346 | }
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| 347 | 
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| 348 | /*
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| 349 | Range & Range::operator = (sa_size_t start)
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| 350 | {
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| 351 |   start_ = start;
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| 352 |   size_ = 1;
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| 353 |   step_ = 1;
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| 354 |   return (*this);
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| 355 | }
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| 356 | */
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| 357 | 
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| 358 | 
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| 359 | //////////////////////////////////////////////////////////
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| 360 | /*!
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| 361 |   \class SOPHYA::IdentityMatrix
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| 362 |   \ingroup TArray
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| 363 |   Class to define an identity matrix
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| 364 | */
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| 365 | 
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| 366 | //! Constructor of a (n,n) diagonal matrix with value diag on the diagonal
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| 367 | IdentityMatrix::IdentityMatrix(double diag, sa_size_t n)
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| 368 | {
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| 369 |   size_ = n;
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| 370 |   diag_ = diag;
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| 371 | }
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