matrix.txx 15 KB

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  1. /**
  2. * \file matrix.txx
  3. * \author Dhairya Malhotra, dhairya.malhotra@gmail.com
  4. * \date 2-11-2011
  5. * \brief This file contains inplementation of the class Matrix.
  6. */
  7. #include <omp.h>
  8. #include <cmath>
  9. #include <cstdlib>
  10. #include <cassert>
  11. #include <iostream>
  12. #include <iomanip>
  13. #include <device_wrapper.hpp>
  14. #include <mat_utils.hpp>
  15. #include <mem_mgr.hpp>
  16. #include <profile.hpp>
  17. namespace pvfmm{
  18. template <class T>
  19. std::ostream& operator<<(std::ostream& output, const Matrix<T>& M){
  20. std::ios::fmtflags f(std::cout.flags());
  21. output<<std::fixed<<std::setprecision(4)<<std::setiosflags(std::ios::left);
  22. for(size_t i=0;i<M.Dim(0);i++){
  23. for(size_t j=0;j<M.Dim(1);j++){
  24. float f=((float)M(i,j));
  25. if(fabs(f)<1e-25) f=0;
  26. output<<std::setw(10)<<((double)f)<<' ';
  27. }
  28. output<<";\n";
  29. }
  30. std::cout.flags(f);
  31. return output;
  32. }
  33. template <class T>
  34. Matrix<T>::Matrix(){
  35. dim[0]=0;
  36. dim[1]=0;
  37. own_data=true;
  38. data_ptr=NULL;
  39. dev.dev_ptr=(uintptr_t)NULL;
  40. }
  41. template <class T>
  42. Matrix<T>::Matrix(size_t dim1, size_t dim2, T* data_, bool own_data_){
  43. dim[0]=dim1;
  44. dim[1]=dim2;
  45. own_data=own_data_;
  46. if(own_data){
  47. if(dim[0]*dim[1]>0){
  48. data_ptr=mem::aligned_new<T>(dim[0]*dim[1]);
  49. #if !defined(__MIC__) || !defined(__INTEL_OFFLOAD)
  50. Profile::Add_MEM(dim[0]*dim[1]*sizeof(T));
  51. #endif
  52. if(data_!=NULL) mem::memcopy(data_ptr,data_,dim[0]*dim[1]*sizeof(T));
  53. }else data_ptr=NULL;
  54. }else
  55. data_ptr=data_;
  56. dev.dev_ptr=(uintptr_t)NULL;
  57. }
  58. template <class T>
  59. Matrix<T>::Matrix(const Matrix<T>& M){
  60. dim[0]=M.dim[0];
  61. dim[1]=M.dim[1];
  62. own_data=true;
  63. if(dim[0]*dim[1]>0){
  64. data_ptr=mem::aligned_new<T>(dim[0]*dim[1]);
  65. #if !defined(__MIC__) || !defined(__INTEL_OFFLOAD)
  66. Profile::Add_MEM(dim[0]*dim[1]*sizeof(T));
  67. #endif
  68. mem::memcopy(data_ptr,M.data_ptr,dim[0]*dim[1]*sizeof(T));
  69. }else
  70. data_ptr=NULL;
  71. dev.dev_ptr=(uintptr_t)NULL;
  72. }
  73. template <class T>
  74. Matrix<T>::~Matrix(){
  75. FreeDevice(false);
  76. if(own_data){
  77. if(data_ptr!=NULL){
  78. mem::aligned_delete(data_ptr);
  79. #if !defined(__MIC__) || !defined(__INTEL_OFFLOAD)
  80. Profile::Add_MEM(-dim[0]*dim[1]*sizeof(T));
  81. #endif
  82. }
  83. }
  84. data_ptr=NULL;
  85. dim[0]=0;
  86. dim[1]=0;
  87. }
  88. template <class T>
  89. void Matrix<T>::Swap(Matrix<T>& M){
  90. size_t dim_[2]={dim[0],dim[1]};
  91. T* data_ptr_=data_ptr;
  92. bool own_data_=own_data;
  93. Device dev_=dev;
  94. Vector<char> dev_sig_=dev_sig;
  95. dim[0]=M.dim[0];
  96. dim[1]=M.dim[1];
  97. data_ptr=M.data_ptr;
  98. own_data=M.own_data;
  99. dev=M.dev;
  100. dev_sig=M.dev_sig;
  101. M.dim[0]=dim_[0];
  102. M.dim[1]=dim_[1];
  103. M.data_ptr=data_ptr_;
  104. M.own_data=own_data_;
  105. M.dev=dev_;
  106. M.dev_sig=dev_sig_;
  107. }
  108. template <class T>
  109. void Matrix<T>::ReInit(size_t dim1, size_t dim2, T* data_, bool own_data_){
  110. Matrix<T> tmp(dim1,dim2,data_,own_data_);
  111. this->Swap(tmp);
  112. }
  113. template <class T>
  114. typename Matrix<T>::Device& Matrix<T>::AllocDevice(bool copy){
  115. size_t len=dim[0]*dim[1];
  116. if(dev.dev_ptr==(uintptr_t)NULL && len>0) // Allocate data on device.
  117. dev.dev_ptr=DeviceWrapper::alloc_device((char*)data_ptr, len*sizeof(T));
  118. if(dev.dev_ptr!=(uintptr_t)NULL && copy) // Copy data to device
  119. dev.lock_idx=DeviceWrapper::host2device((char*)data_ptr,(char*)data_ptr,dev.dev_ptr,len*sizeof(T));
  120. dev.dim[0]=dim[0];
  121. dev.dim[1]=dim[1];
  122. return dev;
  123. }
  124. template <class T>
  125. void Matrix<T>::Device2Host(T* host_ptr){
  126. dev.lock_idx=DeviceWrapper::device2host((char*)data_ptr,dev.dev_ptr,(char*)(host_ptr==NULL?data_ptr:host_ptr),dim[0]*dim[1]*sizeof(T));
  127. //#if defined(PVFMM_HAVE_CUDA)
  128. // cudaEventCreate(&lock);
  129. // cudaEventRecord(lock, 0);
  130. //#endif
  131. }
  132. template <class T>
  133. void Matrix<T>::Device2HostWait(){
  134. //#if defined(PVFMM_HAVE_CUDA)
  135. // cudaEventSynchronize(lock);
  136. // cudaEventDestroy(lock);
  137. //#endif
  138. DeviceWrapper::wait(dev.lock_idx);
  139. dev.lock_idx=-1;
  140. }
  141. template <class T>
  142. void Matrix<T>::FreeDevice(bool copy){
  143. if(dev.dev_ptr==(uintptr_t)NULL) return;
  144. if(copy) DeviceWrapper::device2host((char*)data_ptr,dev.dev_ptr,(char*)data_ptr,dim[0]*dim[1]*sizeof(T));
  145. DeviceWrapper::free_device((char*)data_ptr, dev.dev_ptr);
  146. dev.dev_ptr=(uintptr_t)NULL;
  147. dev.dim[0]=0;
  148. dev.dim[1]=0;
  149. }
  150. template <class T>
  151. void Matrix<T>::Write(const char* fname){
  152. FILE* f1=fopen(fname,"wb+");
  153. if(f1==NULL){
  154. std::cout<<"Unable to open file for writing:"<<fname<<'\n';
  155. return;
  156. }
  157. size_t dim_[2]={dim[0],dim[1]};
  158. fwrite(dim_,sizeof(size_t),2,f1);
  159. fwrite(data_ptr,sizeof(T),dim[0]*dim[1],f1);
  160. fclose(f1);
  161. }
  162. template <class T>
  163. size_t Matrix<T>::Dim(size_t i) const{
  164. return dim[i];
  165. }
  166. template <class T>
  167. void Matrix<T>::Resize(size_t i, size_t j){
  168. if(dim[0]==i && dim[1]==j) return;
  169. FreeDevice(false);
  170. if(own_data){
  171. if(data_ptr!=NULL){
  172. mem::aligned_delete(data_ptr);
  173. #if !defined(__MIC__) || !defined(__INTEL_OFFLOAD)
  174. Profile::Add_MEM(-dim[0]*dim[1]*sizeof(T));
  175. #endif
  176. }
  177. }
  178. dim[0]=i;
  179. dim[1]=j;
  180. if(own_data){
  181. if(dim[0]*dim[1]>0){
  182. data_ptr=mem::aligned_new<T>(dim[0]*dim[1]);
  183. #if !defined(__MIC__) || !defined(__INTEL_OFFLOAD)
  184. Profile::Add_MEM(dim[0]*dim[1]*sizeof(T));
  185. #endif
  186. }else
  187. data_ptr=NULL;
  188. }
  189. }
  190. template <class T>
  191. void Matrix<T>::SetZero(){
  192. if(dim[0]*dim[1]>0)
  193. memset(data_ptr,0,dim[0]*dim[1]*sizeof(T));
  194. }
  195. template <class T>
  196. Matrix<T>& Matrix<T>::operator=(const Matrix<T>& M){
  197. if(this!=&M){
  198. FreeDevice(false);
  199. if(own_data && dim[0]*dim[1]!=M.dim[0]*M.dim[1]){
  200. if(data_ptr!=NULL){
  201. mem::aligned_delete(data_ptr); data_ptr=NULL;
  202. #if !defined(__MIC__) || !defined(__INTEL_OFFLOAD)
  203. Profile::Add_MEM(-dim[0]*dim[1]*sizeof(T));
  204. #endif
  205. }
  206. if(M.dim[0]*M.dim[1]>0){
  207. data_ptr=mem::aligned_new<T>(M.dim[0]*M.dim[1]);
  208. #if !defined(__MIC__) || !defined(__INTEL_OFFLOAD)
  209. Profile::Add_MEM(M.dim[0]*M.dim[1]*sizeof(T));
  210. #endif
  211. }
  212. }
  213. dim[0]=M.dim[0];
  214. dim[1]=M.dim[1];
  215. mem::memcopy(data_ptr,M.data_ptr,dim[0]*dim[1]*sizeof(T));
  216. }
  217. return *this;
  218. }
  219. template <class T>
  220. Matrix<T>& Matrix<T>::operator+=(const Matrix<T>& M){
  221. assert(M.Dim(0)==Dim(0) && M.Dim(1)==Dim(1));
  222. Profile::Add_FLOP(dim[0]*dim[1]);
  223. for(size_t i=0;i<M.Dim(0)*M.Dim(1);i++)
  224. data_ptr[i]+=M.data_ptr[i];
  225. return *this;
  226. }
  227. template <class T>
  228. Matrix<T>& Matrix<T>::operator-=(const Matrix<T>& M){
  229. assert(M.Dim(0)==Dim(0) && M.Dim(1)==Dim(1));
  230. Profile::Add_FLOP(dim[0]*dim[1]);
  231. for(size_t i=0;i<M.Dim(0)*M.Dim(1);i++)
  232. data_ptr[i]-=M.data_ptr[i];
  233. return *this;
  234. }
  235. template <class T>
  236. Matrix<T> Matrix<T>::operator+(const Matrix<T>& M2){
  237. Matrix<T>& M1=*this;
  238. assert(M2.Dim(0)==M1.Dim(0) && M2.Dim(1)==M1.Dim(1));
  239. Profile::Add_FLOP(dim[0]*dim[1]);
  240. Matrix<T> M_r(M1.Dim(0),M1.Dim(1),NULL);
  241. for(size_t i=0;i<M1.Dim(0)*M1.Dim(1);i++)
  242. M_r[0][i]=M1[0][i]+M2[0][i];
  243. return M_r;
  244. }
  245. template <class T>
  246. Matrix<T> Matrix<T>::operator-(const Matrix<T>& M2){
  247. Matrix<T>& M1=*this;
  248. assert(M2.Dim(0)==M1.Dim(0) && M2.Dim(1)==M1.Dim(1));
  249. Profile::Add_FLOP(dim[0]*dim[1]);
  250. Matrix<T> M_r(M1.Dim(0),M1.Dim(1),NULL);
  251. for(size_t i=0;i<M1.Dim(0)*M1.Dim(1);i++)
  252. M_r[0][i]=M1[0][i]-M2[0][i];
  253. return M_r;
  254. }
  255. template <class T>
  256. inline T& Matrix<T>::operator()(size_t i,size_t j) const{
  257. assert(i<dim[0] && j<dim[1]);
  258. return data_ptr[i*dim[1]+j];
  259. }
  260. template <class T>
  261. inline T* Matrix<T>::operator[](size_t i) const{
  262. assert(i<dim[0]);
  263. return &data_ptr[i*dim[1]];
  264. }
  265. template <class T>
  266. Matrix<T> Matrix<T>::operator*(const Matrix<T>& M){
  267. assert(dim[1]==M.dim[0]);
  268. Profile::Add_FLOP(2*(((long long)dim[0])*dim[1])*M.dim[1]);
  269. Matrix<T> M_r(dim[0],M.dim[1],NULL);
  270. mat::gemm<T>('N','N',M.dim[1],dim[0],dim[1],
  271. 1.0,M.data_ptr,M.dim[1],data_ptr,dim[1],0.0,M_r.data_ptr,M_r.dim[1]);
  272. return M_r;
  273. }
  274. template <class T>
  275. void Matrix<T>::GEMM(Matrix<T>& M_r, const Matrix<T>& A, const Matrix<T>& B, T beta){
  276. assert(A.dim[1]==B.dim[0]);
  277. assert(M_r.dim[0]==A.dim[0]);
  278. assert(M_r.dim[1]==B.dim[1]);
  279. #if !defined(__MIC__) || !defined(__INTEL_OFFLOAD)
  280. Profile::Add_FLOP(2*(((long long)A.dim[0])*A.dim[1])*B.dim[1]);
  281. #endif
  282. mat::gemm<T>('N','N',B.dim[1],A.dim[0],A.dim[1],
  283. 1.0,B.data_ptr,B.dim[1],A.data_ptr,A.dim[1],beta,M_r.data_ptr,M_r.dim[1]);
  284. }
  285. // cublasgemm wrapper
  286. #if defined(PVFMM_HAVE_CUDA)
  287. template <class T>
  288. void Matrix<T>::CUBLASGEMM(Matrix<T>& M_r, const Matrix<T>& A, const Matrix<T>& B, T beta){
  289. assert(A.dim[1]==B.dim[0]);
  290. assert(M_r.dim[0]==A.dim[0]);
  291. assert(M_r.dim[1]==B.dim[1]);
  292. Profile::Add_FLOP(2*(((long long)A.dim[0])*A.dim[1])*B.dim[1]);
  293. mat::cublasgemm('N', 'N', B.dim[1], A.dim[0], A.dim[1],
  294. 1.0, B.data_ptr, B.dim[1], A.data_ptr, A.dim[1], beta, M_r.data_ptr, M_r.dim[1]);
  295. }
  296. #endif
  297. #define myswap(t,a,b) {t c=a;a=b;b=c;}
  298. template <class T>
  299. void Matrix<T>::RowPerm(const Permutation<T>& P){
  300. Matrix<T>& M=*this;
  301. if(P.Dim()==0) return;
  302. assert(M.Dim(0)==P.Dim());
  303. size_t d0=M.Dim(0);
  304. size_t d1=M.Dim(1);
  305. #pragma omp parallel for
  306. for(size_t i=0;i<d0;i++){
  307. T* M_=M[i];
  308. const T s=P.scal[i];
  309. for(size_t j=0;j<d1;j++) M_[j]*=s;
  310. }
  311. Permutation<T> P_=P;
  312. for(size_t i=0;i<d0;i++)
  313. while(P_.perm[i]!=i){
  314. size_t a=P_.perm[i];
  315. size_t b=i;
  316. T* M_a=M[a];
  317. T* M_b=M[b];
  318. myswap(size_t,P_.perm[a],P_.perm[b]);
  319. for(size_t j=0;j<d1;j++)
  320. myswap(T,M_a[j],M_b[j]);
  321. }
  322. }
  323. template <class T>
  324. void Matrix<T>::ColPerm(const Permutation<T>& P){
  325. Matrix<T>& M=*this;
  326. if(P.Dim()==0) return;
  327. assert(M.Dim(1)==P.Dim());
  328. size_t d0=M.Dim(0);
  329. size_t d1=M.Dim(1);
  330. int omp_p=omp_get_max_threads();
  331. Matrix<T> M_buff(omp_p,d1);
  332. const size_t* perm_=&(P.perm[0]);
  333. const T* scal_=&(P.scal[0]);
  334. #pragma omp parallel for
  335. for(size_t i=0;i<d0;i++){
  336. int pid=omp_get_thread_num();
  337. T* buff=&M_buff[pid][0];
  338. T* M_=M[i];
  339. for(size_t j=0;j<d1;j++)
  340. buff[j]=M_[j];
  341. for(size_t j=0;j<d1;j++){
  342. M_[j]=buff[perm_[j]]*scal_[j];
  343. }
  344. }
  345. }
  346. #undef myswap
  347. #define B1 128
  348. #define B2 32
  349. template <class T>
  350. Matrix<T> Matrix<T>::Transpose(){
  351. Matrix<T>& M=*this;
  352. size_t d0=M.dim[0];
  353. size_t d1=M.dim[1];
  354. Matrix<T> M_r(d1,d0,NULL);
  355. const size_t blk0=((d0+B1-1)/B1);
  356. const size_t blk1=((d1+B1-1)/B1);
  357. const size_t blks=blk0*blk1;
  358. // #pragma omp parallel for
  359. for(size_t k=0;k<blks;k++){
  360. size_t i=(k%blk0)*B1;
  361. size_t j=(k/blk0)*B1;
  362. // for(size_t i=0;i<d0;i+=B1)
  363. // for(size_t j=0;j<d1;j+=B1){
  364. size_t d0_=i+B1; if(d0_>=d0) d0_=d0;
  365. size_t d1_=j+B1; if(d1_>=d1) d1_=d1;
  366. for(size_t ii=i;ii<d0_;ii+=B2)
  367. for(size_t jj=j;jj<d1_;jj+=B2){
  368. size_t d0__=ii+B2; if(d0__>=d0) d0__=d0;
  369. size_t d1__=jj+B2; if(d1__>=d1) d1__=d1;
  370. for(size_t iii=ii;iii<d0__;iii++)
  371. for(size_t jjj=jj;jjj<d1__;jjj++){
  372. M_r[jjj][iii]=M[iii][jjj];
  373. }
  374. }
  375. }
  376. // for(size_t i=0;i<d0;i++)
  377. // for(size_t j=0;j<d1;j++)
  378. // M_r[j][i]=M[i][j];
  379. return M_r;
  380. }
  381. template <class T>
  382. void Matrix<T>::Transpose(Matrix<T>& M_r, const Matrix<T>& M){
  383. size_t d0=M.dim[0];
  384. size_t d1=M.dim[1];
  385. M_r.Resize(d1, d0);
  386. const size_t blk0=((d0+B1-1)/B1);
  387. const size_t blk1=((d1+B1-1)/B1);
  388. const size_t blks=blk0*blk1;
  389. #pragma omp parallel for
  390. for(size_t k=0;k<blks;k++){
  391. size_t i=(k%blk0)*B1;
  392. size_t j=(k/blk0)*B1;
  393. // for(size_t i=0;i<d0;i+=B1)
  394. // for(size_t j=0;j<d1;j+=B1){
  395. size_t d0_=i+B1; if(d0_>=d0) d0_=d0;
  396. size_t d1_=j+B1; if(d1_>=d1) d1_=d1;
  397. for(size_t ii=i;ii<d0_;ii+=B2)
  398. for(size_t jj=j;jj<d1_;jj+=B2){
  399. size_t d0__=ii+B2; if(d0__>=d0) d0__=d0;
  400. size_t d1__=jj+B2; if(d1__>=d1) d1__=d1;
  401. for(size_t iii=ii;iii<d0__;iii++)
  402. for(size_t jjj=jj;jjj<d1__;jjj++){
  403. M_r[jjj][iii]=M[iii][jjj];
  404. }
  405. }
  406. }
  407. }
  408. #undef B2
  409. #undef B1
  410. template <class T>
  411. void Matrix<T>::SVD(Matrix<T>& tU, Matrix<T>& tS, Matrix<T>& tVT){
  412. pvfmm::Matrix<T>& M=*this;
  413. pvfmm::Matrix<T> M_=M;
  414. int n=M.Dim(0);
  415. int m=M.Dim(1);
  416. int k = (m<n?m:n);
  417. tU.Resize(n,k); tU.SetZero();
  418. tS.Resize(k,k); tS.SetZero();
  419. tVT.Resize(k,m); tVT.SetZero();
  420. //SVD
  421. int INFO=0;
  422. char JOBU = 'S';
  423. char JOBVT = 'S';
  424. int wssize = 3*(m<n?m:n)+(m>n?m:n);
  425. int wssize1 = 5*(m<n?m:n);
  426. wssize = (wssize>wssize1?wssize:wssize1);
  427. T* wsbuf = mem::aligned_new<T>(wssize);
  428. pvfmm::mat::svd(&JOBU, &JOBVT, &m, &n, &M[0][0], &m, &tS[0][0], &tVT[0][0], &m, &tU[0][0], &k, wsbuf, &wssize, &INFO);
  429. mem::aligned_delete<T>(wsbuf);
  430. if(INFO!=0) std::cout<<INFO<<'\n';
  431. assert(INFO==0);
  432. for(size_t i=1;i<k;i++){
  433. tS[i][i]=tS[0][i];
  434. tS[0][i]=0;
  435. }
  436. //std::cout<<tU*tS*tVT-M_<<'\n';
  437. }
  438. template <class T>
  439. Matrix<T> Matrix<T>::pinv(T eps){
  440. if(eps<0){
  441. eps=1.0;
  442. while(eps+(T)1.0>1.0) eps*=0.5;
  443. eps=sqrt(eps);
  444. }
  445. Matrix<T> M_r(dim[1],dim[0]);
  446. mat::pinv(data_ptr,dim[0],dim[1],eps,M_r.data_ptr);
  447. this->Resize(0,0);
  448. return M_r;
  449. }
  450. template <class T>
  451. std::ostream& operator<<(std::ostream& output, const Permutation<T>& P){
  452. output<<std::setprecision(4)<<std::setiosflags(std::ios::left);
  453. size_t size=P.perm.Dim();
  454. for(size_t i=0;i<size;i++) output<<std::setw(10)<<P.perm[i]<<' ';
  455. output<<";\n";
  456. for(size_t i=0;i<size;i++) output<<std::setw(10)<<P.scal[i]<<' ';
  457. output<<";\n";
  458. return output;
  459. }
  460. template <class T>
  461. Permutation<T>::Permutation(size_t size){
  462. perm.Resize(size);
  463. scal.Resize(size);
  464. for(size_t i=0;i<size;i++){
  465. perm[i]=i;
  466. scal[i]=1.0;
  467. }
  468. }
  469. template <class T>
  470. Permutation<T> Permutation<T>::RandPerm(size_t size){
  471. Permutation<T> P(size);
  472. for(size_t i=0;i<size;i++){
  473. P.perm[i]=rand()%size;
  474. for(size_t j=0;j<i;j++)
  475. if(P.perm[i]==P.perm[j]){ i--; break; }
  476. P.scal[i]=((T)rand())/RAND_MAX;
  477. }
  478. return P;
  479. }
  480. template <class T>
  481. Matrix<T> Permutation<T>::GetMatrix() const{
  482. size_t size=perm.Dim();
  483. Matrix<T> M_r(size,size,NULL);
  484. for(size_t i=0;i<size;i++)
  485. for(size_t j=0;j<size;j++)
  486. M_r[i][j]=(perm[j]==i?scal[j]:0.0);
  487. return M_r;
  488. }
  489. template <class T>
  490. size_t Permutation<T>::Dim() const{
  491. return perm.Dim();
  492. }
  493. template <class T>
  494. Permutation<T> Permutation<T>::Transpose(){
  495. size_t size=perm.Dim();
  496. Permutation<T> P_r(size);
  497. Vector<PERM_INT_T>& perm_r=P_r.perm;
  498. Vector<T>& scal_r=P_r.scal;
  499. for(size_t i=0;i<size;i++){
  500. perm_r[perm[i]]=i;
  501. scal_r[perm[i]]=scal[i];
  502. }
  503. return P_r;
  504. }
  505. template <class T>
  506. Permutation<T> Permutation<T>::operator*(const Permutation<T>& P){
  507. size_t size=perm.Dim();
  508. assert(P.Dim()==size);
  509. Permutation<T> P_r(size);
  510. Vector<PERM_INT_T>& perm_r=P_r.perm;
  511. Vector<T>& scal_r=P_r.scal;
  512. for(size_t i=0;i<size;i++){
  513. perm_r[i]=perm[P.perm[i]];
  514. scal_r[i]=scal[P.perm[i]]*P.scal[i];
  515. }
  516. return P_r;
  517. }
  518. template <class T>
  519. Matrix<T> Permutation<T>::operator*(const Matrix<T>& M){
  520. if(Dim()==0) return M;
  521. assert(M.Dim(0)==Dim());
  522. size_t d0=M.Dim(0);
  523. size_t d1=M.Dim(1);
  524. Matrix<T> M_r(d0,d1,NULL);
  525. for(size_t i=0;i<d0;i++){
  526. const T s=scal[i];
  527. const T* M_=M[i];
  528. T* M_r_=M_r[perm[i]];
  529. for(size_t j=0;j<d1;j++)
  530. M_r_[j]=M_[j]*s;
  531. }
  532. return M_r;
  533. }
  534. template <class T>
  535. Matrix<T> operator*(const Matrix<T>& M, const Permutation<T>& P){
  536. if(P.Dim()==0) return M;
  537. assert(M.Dim(1)==P.Dim());
  538. size_t d0=M.Dim(0);
  539. size_t d1=M.Dim(1);
  540. Matrix<T> M_r(d0,d1,NULL);
  541. for(size_t i=0;i<d0;i++){
  542. const PERM_INT_T* perm_=&(P.perm[0]);
  543. const T* scal_=&(P.scal[0]);
  544. const T* M_=M[i];
  545. T* M_r_=M_r[i];
  546. for(size_t j=0;j<d1;j++)
  547. M_r_[j]=M_[perm_[j]]*scal_[j];
  548. }
  549. return M_r;
  550. }
  551. }//end namespace