source: Sophya/trunk/SophyaLib/SkyMap/spherehealpix.cc@ 2987

Last change on this file since 2987 was 2987, checked in by ansari, 19 years ago

remplacement Show() par this->Show() suite compila avec gcc-4 , Reza , 22/6/2006

File size: 18.7 KB
RevLine 
[2615]1#include "sopnamsp.h"
[843]2#include "machdefs.h"
3#include <math.h>
4#include <complex>
5
6#include "pexceptions.h"
7#include "fiondblock.h"
8#include "spherehealpix.h"
9#include "strutil.h"
[1196]10
[843]11extern "C"
12{
13#include <stdio.h>
14#include <stdlib.h>
15#include <unistd.h>
16}
17
[1195]18using namespace SOPHYA;
[843]19
[1217]20/*!
21 \class SOPHYA::SphereHEALPix
[2303]22 \ingroup SkyMap
[2808]23 \brief Spherical maps in HEALPix pixelisation scheme.
24
[2303]25 Class implementing spherical maps, in the HEALPix pixelisation scheme,
26 with template data types (double, float, complex, ...)
[843]27
[1217]28
29\verbatim
[2960]30 Adapted from :
[1217]31 -----------------------------------------------------------------------
32 version 0.8.2 Aug97 TAC Eric Hivon, Kris Gorski
33 -----------------------------------------------------------------------
34
35 the sphere is split in 12 diamond-faces containing nside**2 pixels each
36 the numbering of the pixels (in the nested scheme) is similar to
37 quad-cube
38 In each face the first pixel is in the lowest corner of the diamond
39 the faces are (x,y) coordinate on each face
40
41 . . . . <--- North Pole
42 / \ / \ / \ / \ ^ ^
43 . 0 . 1 . 2 . 3 . <--- z = 2/3 \ /
44 \ / \ / \ / \ / y \ / x
45 4 . 5 . 6 . 7 . 4 <--- equator \ /
46 / \ / \ / \ / \ \/
47 . 8 . 9 .10 .11 . <--- z = -2/3 (0,0) : lowest corner
48 \ / \ / \ / \ /
49 . . . . <--- South Pole
50\endverbatim
51 phi:0 2Pi
52
53 in the ring scheme pixels are numbered along the parallels
54 the first parallel is the one closest to the north pole and so on
55 on each parallel, pixels are numbered starting from the one closest
56 to phi = 0
57
58 nside MUST be a power of 2 (<= 8192)
59
60*/
61
[843]62/* --Methode-- */
63
[2978]64//! Default constructor - optional pixelisation scheme parameter
[843]65template<class T>
[2978]66SphereHEALPix<T>::SphereHEALPix(bool fgring) : fgring_(fgring), pixels_(),
67 sliceBeginIndex_(), sliceLenght_()
[843]68
69{
70 InitNul();
71}
72
[2978]73/*! \brief Constructor with specification of nside and optional pixelisation scheme
74
[1217]75 \param <m> : "nside" of the Healpix algorithm
[2978]76 \param <fgring> : if true -> RING pixelisation (default), if not NESTED
[1217]77
78 The total number of pixels will be Npix = 12*nside**2
79
80 nside MUST be a power of 2 (<= 8192)
81*/
82
[843]83template<class T>
[2978]84SphereHEALPix<T>::SphereHEALPix(int_4 m, bool fgring)
[843]85
86{
[2978]87 fgring_ = fgring;
[843]88 InitNul();
89 Pixelize(m);
90 SetThetaSlices();
91}
[2960]92//! Copy constructor
[843]93template<class T>
[853]94SphereHEALPix<T>::SphereHEALPix(const SphereHEALPix<T>& s, bool share)
[843]95 : pixels_(s.pixels_, share), sliceBeginIndex_(s.sliceBeginIndex_, share),
96 sliceLenght_(s.sliceLenght_, share)
97//--
98{
99 nSide_= s.nSide_;
100 nPix_ = s.nPix_;
101 omeg_ = s.omeg_;
[2978]102 fgring_ = s.fgring_;
[2885]103 if(s.mInfo_) this->mInfo_= new DVList(*s.mInfo_);
[843]104}
[906]105//++
106template<class T>
107SphereHEALPix<T>::SphereHEALPix(const SphereHEALPix<T>& s)
108 : pixels_(s.pixels_), sliceBeginIndex_(s.sliceBeginIndex_),
109 sliceLenght_(s.sliceLenght_)
110// copy constructor
111//--
112{
113 nSide_= s.nSide_;
114 nPix_ = s.nPix_;
115 omeg_ = s.omeg_;
[2978]116 fgring_ = s.fgring_;
[2885]117 if(s.mInfo_) this->mInfo_= new DVList(*s.mInfo_);
[979]118 // CloneOrShare(s);
[906]119}
120
[1419]121//! Clone if \b a is not temporary, share if temporary
122/*! \sa NDataBlock::CloneOrShare(const NDataBlock<T>&) */
[892]123template<class T>
124void SphereHEALPix<T>::CloneOrShare(const SphereHEALPix<T>& a)
125{
[979]126 nSide_= a.nSide_;
127 nPix_ = a.nPix_;
128 omeg_ = a.omeg_;
[2978]129 fgring_ = a.fgring_;
[892]130 pixels_.CloneOrShare(a.pixels_);
131 sliceBeginIndex_.CloneOrShare(a.sliceBeginIndex_);
132 sliceLenght_.CloneOrShare(a.sliceLenght_);
[2885]133 if (this->mInfo_) {delete this->mInfo_; this->mInfo_ = NULL;}
134 if (a.mInfo_) this->mInfo_ = new DVList(*(a.mInfo_));
[1419]135}
[979]136
[1419]137//! Share data with a
138template<class T>
139void SphereHEALPix<T>::Share(const SphereHEALPix<T>& a)
140{
141 nSide_= a.nSide_;
142 nPix_ = a.nPix_;
143 omeg_ = a.omeg_;
[2978]144 fgring_ = a.fgring_;
[1419]145 pixels_.Share(a.pixels_);
146 sliceBeginIndex_.Share(a.sliceBeginIndex_);
147 sliceLenght_.Share(a.sliceLenght_);
[2885]148 if (this->mInfo_) {delete this->mInfo_; this->mInfo_ = NULL;}
149 if (a.mInfo_) this->mInfo_ = new DVList(*(a.mInfo_));
[892]150}
151
[979]152////////////////////////// methodes de copie/share
[892]153template<class T>
154SphereHEALPix<T>& SphereHEALPix<T>::Set(const SphereHEALPix<T>& a)
[980]155{
[2978]156 if (this != &a) {
[980]157 if (a.NbPixels() < 1)
[1419]158 throw RangeCheckError("SphereHEALPix<T>::Set(a ) - SphereHEALPix a not allocated ! ");
[980]159 if (NbPixels() < 1) CloneOrShare(a);
160 else CopyElt(a);
161
[2885]162 if (this->mInfo_) delete this->mInfo_;
163 this->mInfo_ = NULL;
164 if (a.mInfo_) this->mInfo_ = new DVList(*(a.mInfo_));
[2978]165 }
[892]166 return(*this);
[980]167}
[892]168
[979]169template<class T>
170SphereHEALPix<T>& SphereHEALPix<T>::CopyElt(const SphereHEALPix<T>& a)
171{
172 if (NbPixels() < 1)
[2978]173 throw RangeCheckError("SphereHEALPix<T>::CopyElt(a) - Not Allocated SphereHEALPix ! ");
[979]174 if (NbPixels() != a.NbPixels())
[2978]175 throw(SzMismatchError("SphereHEALPix<T>::CopyElt(a) SizeMismatch")) ;
[979]176 nSide_= a.nSide_;
177 nPix_ = a.nPix_;
178 omeg_ = a.omeg_;
179 int k;
[2985]180 if (fgring_ == a.fgring_)
[2978]181 for (k=0; k< nPix_; k++) pixels_(k) = a.pixels_(k);
182 else {
183 if (fgring_) for (k=0; k< nPix_; k++)
184 pixels_(k) = a.pixels_(ring2nest(nSide_, k));
185 else for (k=0; k< nPix_; k++)
186 pixels_(k) = a.pixels_(nest2ring(nSide_, k));
187 }
[979]188 for (k=0; k< a.sliceBeginIndex_.Size(); k++) sliceBeginIndex_(k) = a.sliceBeginIndex_(k);
189 for (k=0; k< a.sliceLenght_.Size(); k++) sliceLenght_(k) = a.sliceLenght_(k);
190 return(*this);
191}
[1419]192
[843]193template<class T>
[853]194SphereHEALPix<T>::~SphereHEALPix()
[843]195{
196}
197
[1217]198/*! \fn void SOPHYA::SphereHEALPix::Resize(int_4 m)
[2960]199 \param <m> "nside" of the HEALPix algorithm
[1217]200
201 The total number of pixels will be Npix = 12*nside**2
202
203 nside MUST be a power of 2 (<= 8192)
204*/
[843]205template<class T>
[853]206void SphereHEALPix<T>::Resize(int_4 m)
[843]207{
[2960]208 if ((m <= 0 && nSide_ > 0)) {
209 cout << "SphereHEALPix<T>::Resize(m) with m<=0, NOT resized" << endl;
210 return;
[843]211 }
212 InitNul();
213 Pixelize(m);
214 SetThetaSlices();
215}
216
[2978]217
218//! return type of the map pixelisation : RING or NESTED
[843]219template<class T>
[2978]220string SphereHEALPix<T>::TypeOfMap() const
221{
222 if (fgring_) return string("RING");
223 else return string("NESTED");
224}
225
226template<class T>
[853]227void SphereHEALPix<T>::Pixelize( int_4 m)
[843]228// prépare la pixelisation Gorski (m a la même signification
229// que pour le constructeur)
230{
[2960]231 if (m<=0 || m> 8192) {
232 cout << "SphereHEALPix<T>::Pixelize() m=" << m <<" out of range [0,8192]" << endl;
233 throw ParmError("SphereHEALPix<T>::Pixelize() m out of range");
234 }
235 // verifier que m est une puissance de deux
236 int x= m;
237 while (x%2==0) x/=2;
238 if(x != 1) {
239 cout << "SphereHEALPix<T>::Pixelize() m=" << m << " != 2^n " << endl;
240 throw ParmError("SphereHEALPix<T>::Pixelize() m!=2^n");
241 }
242
[843]243 // On memorise les arguments d'appel
244 nSide_= m;
245
246 // Nombre total de pixels sur la sphere entiere
247 nPix_= 12*nSide_*nSide_;
248
249 // pour le moment les tableaux qui suivent seront ranges dans l'ordre
250 // de l'indexation GORSKY "RING"
251 // on pourra ulterieurement changer de strategie et tirer profit
252 // de la dualite d'indexation GORSKY (RING et NEST) : tout dependra
253 // de pourquoi c'est faire
254
255 // Creation et initialisation du vecteur des contenus des pixels
256 pixels_.ReSize(nPix_);
257 pixels_.Reset();
258
259 // solid angle per pixel
260 omeg_= 4.0*Pi/nPix_;
261}
262
263template<class T>
[853]264void SphereHEALPix<T>::InitNul()
[843]265//
266// initialise à zéro les variables de classe
267{
268 nSide_= 0;
269 nPix_ = 0;
270 omeg_ = 0.;
271// pixels_.Reset(); - Il ne faut pas mettre les pixels a zero si share !
272}
273
274/* --Methode-- */
[1217]275/* Nombre de pixels du decoupage */
276/*! \fn int_4 SOPHYA::SphereHEALPix::NbPixels() const
277
278 Return number of pixels of the splitting
279*/
[843]280template<class T>
[853]281int_4 SphereHEALPix<T>::NbPixels() const
[843]282{
283 return(nPix_);
284}
285
[1217]286
287/*! \fn uint_4 SOPHYA::SphereHEALPix::NbThetaSlices() const
288
289 \return number of slices in theta direction on the sphere
290*/
[843]291template<class T>
[853]292uint_4 SphereHEALPix<T>::NbThetaSlices() const
[843]293{
294 uint_4 nbslices = uint_4(4*nSide_-1);
[2978]295 if (nSide_<=0) {
296 nbslices = 0;
297 throw PException(" sphere not pixelized, NbSlice=0 ");
298 }
[843]299 return nbslices;
300}
301
[2968]302//! Return the theta angle for slice defined by \b index
303template<class T>
304r_8 SphereHEALPix<T>::ThetaOfSlice(int_4 index) const
305{
306 uint_4 nbslices = uint_4(4*nSide_-1);
307 if (index<0 || index >= nbslices)
308 throw RangeCheckError(" SphereHEALPix::ThetaOfSlice() index out of range");
309 r_8 theta, phi0;
310 PixThetaPhi(sliceBeginIndex_(index), theta, phi0);
311 return theta;
312}
313
[2973]314//! Return true : All theta slices have a symmetric slice at Pi-Theta in SphereHEALPix
315template <class T>
316bool SphereHEALPix<T>::HasSymThetaSlice() const
317{
318 return true;
319}
320//! Return the slice index for the symmetric slice at theta=Pi-ThetaOfSlice(idx)
321template <class T>
322int_4 SphereHEALPix<T>::GetSymThetaSliceIndex(int_4 idx) const
323{
324 if(idx < 0 || idx >= NbThetaSlices())
325 throw RangeCheckError("SphereHEALPix::GetSymThetaSliceIndex index out of range");
326 return (NbThetaSlices()-1-idx);
327}
328
[1217]329/*! \fn void SOPHYA::SphereHEALPix::GetThetaSlice(int_4 index,r_8& theta,TVector<r_8>& phi,TVector<T>& value) const
330
331 For a theta-slice with index 'index', return :
332
333 the corresponding "theta"
334
335 a vector containing the phi's of the pixels of the slice
336
337 a vector containing the corresponding values of pixels
338*/
[843]339template<class T>
[853]340void SphereHEALPix<T>::GetThetaSlice(int_4 index,r_8& theta,TVector<r_8>& phi,TVector<T>& value) const
[843]341{
[2978]342 if (index<0 || index >= NbThetaSlices()) {
[853]343 cout << " SphereHEALPix::GetThetaSlice : Pixel index out of range" <<endl;
[2968]344 throw RangeCheckError(" SphereHEALPix::GetThetaSlice() index out of range");
[2978]345 }
[843]346
347 int_4 iring= sliceBeginIndex_(index);
348 int_4 lring = sliceLenght_(index);
349
[2978]350 phi.ReSize(lring);
351 value.ReSize(lring);
[843]352
353 double TH= 0.;
354 double FI= 0.;
[2978]355 if (fgring_) { // RING pixelisation scheme
356 for(int_4 kk = 0; kk < lring;kk++) {
[843]357 PixThetaPhi(kk+iring,TH,FI);
358 phi(kk)= FI;
[2978]359 value(kk)= pixels_(kk+iring);
[843]360 }
[2985]361 PixThetaPhi(iring, theta, FI);
[2978]362 }
363 else { // NESTED pixelisation scheme
364 for(int_4 kk = 0; kk < lring;kk++) {
365 int kkn = ring2nest(nSide_, kk+iring);
366 PixThetaPhi(kkn,TH,FI);
367 phi(kk)= FI;
368 value(kk)= pixels_(kkn);
369 }
[2985]370 PixThetaPhi(ring2nest(nSide_,iring), theta, FI);
[2978]371 }
[2985]372 // theta= TH;
[843]373}
[1217]374/*! \fn void SOPHYA::SphereHEALPix::GetThetaSlice(int_4 sliceIndex,r_8& theta, r_8& phi0, TVector<int_4>& pixelIndices,TVector<T>& value) const
[843]375
[1217]376 For a theta-slice with index 'index', return :
377
378 the corresponding "theta"
379
380 the corresponding "phi" for first pixel of the slice
381
382 a vector containing indices of the pixels of the slice
383
384 (equally distributed in phi)
385
386 a vector containing the corresponding values of pixels
387*/
388
[843]389template<class T>
[853]390void SphereHEALPix<T>::GetThetaSlice(int_4 sliceIndex,r_8& theta, r_8& phi0, TVector<int_4>& pixelIndices,TVector<T>& value) const
[843]391
392{
393
394 if (sliceIndex<0 || sliceIndex >= NbThetaSlices())
395 {
[853]396 cout << " SphereHEALPix::GetThetaSlice : Pixel index out of range" <<endl;
397 throw RangeCheckError(" SphereHEALPix::GetThetaSlice : Pixel index out of range");
[843]398 }
399 int_4 iring= sliceBeginIndex_(sliceIndex);
400 int_4 lring = sliceLenght_(sliceIndex);
401 pixelIndices.ReSize(lring);
402 value.ReSize(lring);
403
[2978]404 if (fgring_) { // RING pixelisation scheme
405 for(int_4 kk = 0; kk < lring;kk++) {
[843]406 pixelIndices(kk)= kk+iring;
[2978]407 value(kk)= pixels_(kk+iring);
[843]408 }
[2978]409 PixThetaPhi(iring, theta, phi0);
410 }
411 else { // NESTED pixelisation scheme
412 for(int_4 kk = 0; kk < lring;kk++) {
413 int_4 kkn = ring2nest(nSide_, kk+iring);
414 pixelIndices(kk)= kkn;
415 value(kk)= pixels_(kkn);
416 }
417 PixThetaPhi(ring2nest(nSide_,iring), theta, phi0);
418 }
[843]419}
[1217]420
[843]421template<class T>
[853]422void SphereHEALPix<T>::SetThetaSlices()
[843]423{
424 sliceBeginIndex_.ReSize(4*nSide_-1);
425 sliceLenght_.ReSize(4*nSide_-1);
[2985]426 int_4 sliceIndex;
427 int_4 offp = 0;
428 for (sliceIndex=0; sliceIndex< nSide_-1; sliceIndex++) {
429 // sliceBeginIndex_(sliceIndex) = 2*sliceIndex*(sliceIndex+1);
430 sliceBeginIndex_(sliceIndex) = offp;
431 sliceLenght_(sliceIndex) = 4*(sliceIndex+1);
432 offp += sliceLenght_(sliceIndex);
433 }
434 for (sliceIndex= nSide_-1; sliceIndex< 3*nSide_; sliceIndex++) {
435 // sliceBeginIndex_(sliceIndex) = 2*nSide_*(2*sliceIndex-nSide_+1);
436 sliceBeginIndex_(sliceIndex) = offp;
437 sliceLenght_(sliceIndex) = 4*nSide_;
438 offp += sliceLenght_(sliceIndex);
439 }
440 for (sliceIndex= 3*nSide_; sliceIndex< 4*nSide_-1; sliceIndex++) {
441 int_4 nc= 4*nSide_-1-sliceIndex;
442 // sliceBeginIndex_(sliceIndex) = nPix_-2*nc*(nc+1);
443 sliceBeginIndex_(sliceIndex) = offp;
444 sliceLenght_(sliceIndex) = 4*nc;
445 offp += sliceLenght_(sliceIndex);
446 }
[843]447}
448
[1217]449
450
[2978]451//! \return value of the \b k th pixel
[843]452template<class T>
[853]453T& SphereHEALPix<T>::PixVal(int_4 k)
[843]454
455{
456 if((k < 0) || (k >= nPix_))
[2978]457 throw RangeCheckError("SphereHEALPix::PixVal() Pixel index out of range");
[843]458 return pixels_(k);
459}
460
[2978]461//! \return value of the \b k th pixel
[843]462template<class T>
[853]463T const& SphereHEALPix<T>::PixVal(int_4 k) const
[843]464
465{
466 if((k < 0) || (k >= nPix_))
[2978]467 throw RangeCheckError("SphereHEALPix::PIxVal Pixel index out of range");
[843]468 return *(pixels_.Data()+k);
469}
470
[1217]471
472/*! \fn bool SOPHYA::SphereHEALPix::ContainsSph(double theta, double phi) const
473
474\return true if teta,phi in map
475*/
[843]476template<class T>
[1217]477bool SphereHEALPix<T>::ContainsSph(double theta, double phi) const
[843]478{
479return(true);
480}
481
[1217]482/*! \fn int_4 SOPHYA::SphereHEALPix::PixIndexSph(double theta,double phi) const
483
484 \return "RING" index of the pixel corresponding to direction (theta, phi).
485 */
[843]486template<class T>
[853]487int_4 SphereHEALPix<T>::PixIndexSph(double theta,double phi) const
[843]488
489{
[2978]490 if (fgring_) return ang2pix_ring(nSide_,theta,phi);
491 else return ang2pix_nest(nSide_,theta,phi);
[843]492}
493
[1217]494
[2978]495//! \return (theta,phi) coordinates of middle of pixel with "RING" index k
[843]496template<class T>
[853]497void SphereHEALPix<T>::PixThetaPhi(int_4 k,double& theta,double& phi) const
[843]498{
[2978]499 if (fgring_) pix2ang_ring(nSide_,k,theta,phi);
500 else pix2ang_nest(nSide_,k,theta,phi);
[843]501}
502
[2978]503//! Set all pixels to value v
[843]504template <class T>
[853]505T SphereHEALPix<T>::SetPixels(T v)
[843]506{
507pixels_.Reset(v);
508return(v);
509}
510
511
[1217]512
[2978]513//! Conversion from NESTED index into RING index
[843]514template<class T>
[853]515int_4 SphereHEALPix<T>::NestToRing(int_4 k) const
[843]516{
517 return nest2ring(nSide_,k);
518}
519
[2978]520//! Conversion from RING index into NESTED index
[843]521template<class T>
[853]522int_4 SphereHEALPix<T>::RingToNest(int_4 k) const
[843]523{
524 return ring2nest(nSide_,k);
525}
526
[1419]527// ...... Operations de calcul ......
[843]528
[1419]529//! Fill a SphereHEALPix with a constant value \b a
[843]530template <class T>
[1419]531SphereHEALPix<T>& SphereHEALPix<T>::SetT(T a)
532{
533 if (NbPixels() < 1)
534 throw RangeCheckError("SphereHEALPix<T>::SetT(T ) - SphereHEALPix not dimensionned ! ");
535 pixels_ = a;
536 return (*this);
537}
538
[2978]539//! Add a constant value \b x to a SphereHEALPix
[1419]540template <class T>
541SphereHEALPix<T>& SphereHEALPix<T>::Add(T a)
542 {
[2290]543 cout << " c'est mon Add " << endl;
[1419]544 if (NbPixels() < 1)
545 throw RangeCheckError("SphereHEALPix<T>::Add(T ) - SphereHEALPix not dimensionned ! ");
[2290]546 // pixels_ += a;
547 pixels_.Add(a);
[1419]548 return (*this);
549}
550
551/*! Substract a constant value \b a to a SphereHEALPix */
552template <class T>
[1624]553SphereHEALPix<T>& SphereHEALPix<T>::Sub(T a,bool fginv)
[1419]554{
555 if (NbPixels() < 1)
556 throw RangeCheckError("SphereHEALPix<T>::Sub(T ) - SphereHEALPix not dimensionned ! ");
[1624]557 pixels_.Sub(a,fginv);
[1419]558 return (*this);
559}
560
561/*! multiply a SphereHEALPix by a constant value \b a */
562template <class T>
563SphereHEALPix<T>& SphereHEALPix<T>::Mul(T a)
564{
565 if (NbPixels() < 1)
566 throw RangeCheckError("SphereHEALPix<T>::Mul(T ) - SphereHEALPix not dimensionned ! ");
567 pixels_ *= a;
568 return (*this);
569}
570
571/*! divide a SphereHEALPix by a constant value \b a */
572template <class T>
573SphereHEALPix<T>& SphereHEALPix<T>::Div(T a)
574{
575 if (NbPixels() < 1)
576 throw RangeCheckError("SphereHEALPix<T>::Div(T ) - SphereHEALPix not dimensionned ! ");
577 pixels_ /= a;
578 return (*this);
579}
580
581// >>>> Operations avec 2nd membre de type SphereHEALPix
582//! Add two SphereHEALPix
583
584template <class T>
585SphereHEALPix<T>& SphereHEALPix<T>::AddElt(const SphereHEALPix<T>& a)
586{
587 if (NbPixels() != a.NbPixels() )
[2978]588 throw(SzMismatchError("SphereHEALPix<T>::AddElt(a) SizeMismatch")) ;
589 if (fgring_ != a.fgring_)
590 throw(ParmError("SphereHEALPix<T>::AddElt(a) different pixelisation RING<>NESTED")) ;
591
[1419]592 pixels_ += a.pixels_;
593 return (*this);
594}
595
596//! Substract two SphereHEALPix
597template <class T>
598SphereHEALPix<T>& SphereHEALPix<T>::SubElt(const SphereHEALPix<T>& a)
599{
600 if (NbPixels() != a.NbPixels() )
[2978]601 throw(SzMismatchError("SphereHEALPix<T>::SubElt(a) SizeMismatch")) ;
602 if (fgring_ != a.fgring_)
603 throw(ParmError("SphereHEALPix<T>::SubElt(a) different pixelisation RING<>NESTED")) ;
604
[1419]605 pixels_ -= a.pixels_;
606 return (*this);
607}
608
609//! Multiply two SphereHEALPix (elements by elements)
610template <class T>
611SphereHEALPix<T>& SphereHEALPix<T>::MulElt(const SphereHEALPix<T>& a)
612{
613 if (NbPixels() != a.NbPixels() )
[2978]614 throw(SzMismatchError("SphereHEALPix<T>::MulElt(a) SizeMismatch")) ;
615 if (fgring_ != a.fgring_)
616 throw(ParmError("SphereHEALPix<T>::MulElt(a) different pixelisation RING<>NESTED")) ;
617
[1419]618 pixels_ *= a.pixels_;
619 return (*this);
620}
621
[1551]622//! Divide two SphereHEALPix (elements by elements) - No protection for divide by 0
623template <class T>
624SphereHEALPix<T>& SphereHEALPix<T>::DivElt(const SphereHEALPix<T>& a)
625{
626 if (NbPixels() != a.NbPixels() )
[2978]627 throw(SzMismatchError("SphereHEALPix<T>::DivElt(a) SizeMismatch")) ;
628 if (fgring_ != a.fgring_)
629 throw(ParmError("SphereHEALPix<T>::DivElt(a) different pixelisation RING<>NESTED")) ;
[1551]630 pixels_ /= a.pixels_;
631 return (*this);
632}
[1419]633
634
635
[1551]636
[1419]637template <class T>
[853]638void SphereHEALPix<T>::print(ostream& os) const
[843]639{
[2987]640 this->Show(os);
[2978]641 os << "SphereHEALPix<T>(" << TypeOfMap() << ") NSide= "
642 << nSide_ << " nPix_ = " << nPix_ << " omeg_ = " << omeg_ << endl;
643
[2885]644 if(this->mInfo_) os << " DVList Info= " << *(this->mInfo_) << endl;
[2978]645 os << "... Pixel values : ";
[843]646 for(int i=0; i < nPix_; i++)
647 {
648 if(i%5 == 0) os << endl;
649 os << pixels_(i) <<", ";
650 }
651 os << endl;
652
653
654}
655
656
657
658//*******************************************************************
659
660#ifdef __CXX_PRAGMA_TEMPLATES__
[853]661#pragma define_template SphereHEALPix<uint_2>
[1304]662#pragma define_template SphereHEALPix<int_4>
[853]663#pragma define_template SphereHEALPix<r_8>
664#pragma define_template SphereHEALPix<r_4>
665#pragma define_template SphereHEALPix< complex<r_4> >
666#pragma define_template SphereHEALPix< complex<r_8> >
[843]667#endif
668#if defined(ANSI_TEMPLATES) || defined(GNU_TEMPLATES)
[2869]669namespace SOPHYA {
[853]670template class SphereHEALPix<uint_2>;
[1304]671template class SphereHEALPix<int_4>;
[853]672template class SphereHEALPix<r_8>;
673template class SphereHEALPix<r_4>;
674template class SphereHEALPix< complex<r_4> >;
675template class SphereHEALPix< complex<r_8> >;
[2869]676}
[843]677#endif
678
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