source: Sophya/trunk/SophyaProg/Tests/zthr.cc@ 4038

Last change on this file since 4038 was 3615, checked in by cmv, 16 years ago

Modifs relatives a l'introduction de RandomGeneratorInterface + delete de srandgen.c, cmv 01/05/2009

File size: 14.0 KB
Line 
1#include "sopnamsp.h"
2#include "zthread.h"
3#include "resusage.h"
4
5#include <iostream>
6#include <vector>
7
8#include "tmatrix.h"
9#include "tvector.h"
10#include "matharr.h"
11#include "tarrinit.h"
12#include "randr48.h"
13
14#include <stdlib.h>
15#include <stdio.h>
16
17/* -------------------------------------------------
18 Programme de test des classes de threads de SOPHYA
19 SOPHYA::ZThread SOPHYA::ZMutex ...
20 Exemples d'execution
21 csh> time zthr mtx 2 500
22 csh> time zthr arr 2 500
23 csh> time zthr arrdl 2 500
24 csh> time zthr arrmf 2 500
25 csh> time zthr sync 4 1000
26 csh> time zthr syncp 4 1000
27*/
28
29#include <time.h>
30#include <unistd.h>
31
32#include "timing.h"
33#include "ctimer.h"
34
35
36// --- Structure d'argument pour fonction d'execution dans les threads de test
37typedef struct {
38 int_4 thid, NTh;
39 int_4 M, VSz;
40} ztarg;
41
42// --- fonction de test simple avec boucle de sleep
43void funzt(void *arg)
44{
45time_t t0, t1;
46int i;
47
48ztarg * za = (ztarg *)arg;
49
50t0 = time(NULL);
51printf("+++++ funzt(ThId=%d) Entry to funzt (za.M=%d) +++++\n", za->thid, za->M);
52int imax = za->M;
53for(i=0; i<imax; i++)
54 {
55 sleep(3);
56 t1 = time(NULL)-t0;
57 printf("++funzt(ThId=%d) Dt= %d \n", za->thid, (int)t1);
58 }
59
60return;
61}
62
63void randgenths(Array& mx, double sig)
64{
65 ThSDR48RandGen rg;
66 for(sa_size_t j=0; j<mx.SizeY(); j++)
67 for(sa_size_t i=0; i<mx.SizeX(); i++) mx(i,j) = rg.Gaussian(sig);
68}
69
70// --- fonction de test simple avec calcul matriciel (produit de 2 matrices double)
71void mtx_funzt(void *arg)
72{
73 ztarg * za = (ztarg *)arg;
74 cout << ">>>> mtx-funzt(ThId=" << za->thid << ") - Matrix size= " << za->M << endl;
75
76 sa_size_t m = za->M;
77 Matrix a1(m,m), a2(m,m), mxprod;
78// a1 = RandomSequence(RandomSequence::Gaussian, 0., 4.);
79// a2 = RandomSequence(RandomSequence::Gaussian, 0., 3.);
80 randgenths(a1,4.);
81 randgenths(a2,3.);
82 char buff[128];
83 sprintf(buff, "mtx-funzt(ThId=%d) EndOfInit", za->thid);
84 PrtTim(buff);
85 mxprod = a1*a2;
86 sprintf(buff, "mtx-funzt(ThId=%d) EndOfMxProd", za->thid);
87 PrtTim(buff);
88 return;
89}
90// --- fonction de test simple avec calcul sur tableaux entier I4
91void arr_funzt(void *arg)
92{
93 ztarg * za = (ztarg *)arg;
94 cout << ">>>> arr-funzt(ThId=" << za->thid << ") - Matrix size= " << za->M << endl;
95
96 sa_size_t m = za->M;
97 TMatrix<int_4> a1(m,m), a2(m,m), ares;
98 a1 = RegularSequence(1.,1.);
99 a2 = RegularSequence(5.,3.);
100 char buff[128];
101 sprintf(buff, "arr-funzt(ThId=%d) EndOfInit", za->thid);
102 PrtTim(buff);
103 // ares = 4*a1*12*a2; correction le 23/05/2007 - * (prod.mtx par erreur)
104 ares = (4*a1)+(12*a2);
105 sprintf(buff, "arr-funzt(ThId=%d) EndOfOper", za->thid);
106 PrtTim(buff);
107 return;
108}
109// --- fonction de test simple avec calcul de type DL sur tableaux double 1D
110void arrdl_funzt(void *arg)
111{
112 ztarg * za = (ztarg *)arg;
113 sa_size_t vsz = za->M*za->M;
114 sa_size_t EXS = 10;
115
116 cout << ">>>> arrdl-funzt(ThId=" << za->thid << " DataBlock_Sz=M*M " << vsz
117 << " V2=DLO4(V1) , NOp ~= 10*10*vsz=" << 10*EXS*vsz << endl;
118
119 TVector<r_8> v1(vsz), v2(vsz);
120 TVector<r_8> coeff(EXS);
121// coeff = RandomSequence();
122 randgenths(coeff, 1.);
123 // v1 = RegularSequence(1.,0.001); --- ATTENTION , couteux en temps
124 // NDataBlock<r_8> v1(vsz, false), v2(vsz, false);
125 for(sa_size_t i=0; i<vsz; i++) v1(i) = i*0.001;
126 char buff[128];
127 sprintf(buff, "arrdl-funzt(ThId=%d) EndOfInit", za->thid);
128 PrtTim(buff);
129
130 double c2 = 0.5;
131 double c3 = 1./6.;
132 double c4 = 1./24;
133 for(sa_size_t k=0; k<EXS; k++) {
134 for(sa_size_t i=0; i<vsz; i++) {
135 register double x = v1(i)*coeff(k);
136 v2(i) = x*(1+x*(x*c2+x*(x*c3+x*x*c4)));
137 }
138 }
139 sprintf(buff, "arrdl-funzt(ThId=%d) EndOfOper", za->thid);
140 PrtTim(buff);
141 return;
142}
143// --- fonction de test simple avec calcul de type fonction mathematique sur tableaux double 1D
144void arrmf_funzt(void *arg)
145{
146 ztarg * za = (ztarg *)arg;
147 sa_size_t vsz = za->M*za->M;
148
149 cout << ">>>> arrmf-funzt(ThId=" << za->thid << " VecSz=M*M " << vsz
150 << " V2=Sin(V1) , NOp ~= 50*vsz=" << 50*vsz << endl;
151
152 TVector<r_8> v1(vsz), v2(vsz);
153 //-- v1 = RegularSequence(1.,0.001); COUTEUX en TCPU
154 for(sa_size_t i=0; i<vsz; i++) v1(i) = i*0.001;
155 char buff[128];
156 sprintf(buff, "arrmf-funzt(ThId=%d) EndOfInit", za->thid);
157 PrtTim(buff);
158
159 v2 = Sin(v1);
160 v2 += Cos(v1);
161 sprintf(buff, "arrmf-funzt(ThId=%d) EndOfOper", za->thid);
162 PrtTim(buff);
163 return;
164}
165
166
167// Structure de gestion utilisee par la classe MTVecPool
168typedef struct {
169 bool busy;
170 int stat;
171} St_VecPool;
172
173// -------------------------------------------------------------------
174// Structure de gestion de zones memoire partagee (des vecteurs) entre
175// threads - qui doivent operer successivement sur les vecteurs
176// -------------------------------------------------------------------
177class MTVecPool {
178public:
179 MTVecPool(uint_4 nth, uint_4 vsz, uint_4 nvec)
180 {
181 if (nth > 60) throw ParmError("MTVecPool::MTVecPool() nth > 60");
182 if ((nth < 1) || (vsz < 2))
183 throw ParmError("MTVecPool::MTVecPool() nth<1 OR vsz<2 ");
184 _vmx.SetSize(vsz, nvec);
185 _nth = nth;
186 _vsz = vsz;
187 TVector<int_8> xx(2);
188 for(int k=0; k<nth; k++) _vecp.push_back(xx);
189 cout << "-- MTVecPool(nth=" << nth << ")" << endl;
190 _vmx.Show();
191 }
192 ~MTVecPool() { }
193 // Renvoie un pointeur de vecteur pour thread tid
194 TVector<int_8>* GetVecP(uint_4 tid, uint_4& idx)
195 {
196 if (tid >= _nth) ParmError("MTVecPool::GetVecP() tid > _nth");
197 //DBG cout << "DBG-GetVecP(tid= " << tid << ")" << endl;
198 if (tid == 0) {
199 mex.lock();
200 St_VecPool stv;
201 idx = _vecs.size();
202 _vecp[tid].Share(_vmx.Column(idx));
203 stv.busy = true;
204 stv.stat = 0;
205 _vecs.push_back(stv);
206 mex.unlock();
207 //DBG cout << "DBG-GetVecP(tid= " << tid << ") -> Idx=" << idx << " VecSz=" << &(_vecs[idx].vv) << endl;
208 return (&(_vecp[tid]));
209 }
210 else {
211 mex.lock();
212 bool found = false;
213 while (!found) {
214 for(uint_4 k=0; k<_vecs.size(); k++) {
215 if ( (_vecs[k].stat == tid) && (! _vecs[k].busy) ) {
216 found = true; idx = k;
217 _vecs[k].stat = tid; _vecs[k].busy = true;
218 break;
219 }
220 }
221 if (found) {
222 _vecp[tid].Share(_vmx.Column(idx));
223 mex.unlock();
224 //DBG cout << "DBG-GetVecP(tid= " << tid << ") -> nv=" << hex << rv << dec << endl;
225 return (&(_vecp[tid]));
226 }
227 else {
228 mex.broadcast();
229 mex.wait();
230 }
231 }
232 }
233 }
234 // Renvoie un vecteur pour thread tid
235 TVector<int_8> GetVec(uint_4 tid, uint_4& idx)
236 {
237 if (tid >= _nth) ParmError("MTVecPool::GetVec() tid > _nth");
238 //DBG cout << "DBG-GetVec(tid= " << tid << ")" << endl;
239 if (tid == 0) {
240 mex.lock();
241 St_VecPool stv;
242 idx = _vecs.size();
243 stv.busy = true;
244 stv.stat = 0;
245 _vecs.push_back(stv);
246 mex.unlock();
247 //DBG cout << "DBG-GetVec(tid= " << tid << ") -> Idx=" << idx << " VecSz=" << &(_vecs[idx].vv) << endl;
248 return (_vmx.Column(idx));
249 }
250 else {
251 mex.lock();
252 bool found = false;
253 while (!found) {
254 for(uint_4 k=0; k<_vecs.size(); k++) {
255 if ( (_vecs[k].stat == tid) && (! _vecs[k].busy) ) {
256 found = true; idx = k;
257 _vecs[k].stat = tid; _vecs[k].busy = true;
258 break;
259 }
260 }
261 if (found) {
262 mex.unlock();
263 //DBG cout << "DBG-GetVec(tid= " << tid << ") -> nv=" << hex << rv << dec << endl;
264 return (_vmx.Column(idx));
265 }
266 else {
267 mex.broadcast();
268 mex.wait();
269 }
270 }
271 }
272 }
273
274 // Retourne l'index du vecteur au gestionnaire, qui le marque comme disponible
275 void RetVec(uint_4 idx)
276 {
277 //DBG cout << "DBG-RetVec(idx= " << idx << ")" << endl;
278 ZSync zs(mex, 2);
279 _vecs[idx].busy = false; _vecs[idx].stat++;
280 zs.NOp();
281 }
282
283 // Verifie l'etat memoire de tous les vecteurs et fait des print
284 int Check()
285 {
286 cout << "MTVecPool::Check() NVec=" << _vecs.size() << " VSz="
287 << _vsz << " NThreads=" << _nth << endl;
288 int nerr = 0;
289 int_8 sum = 0;
290 int_8 p2 = 1;
291 int_8 min,max;
292 for(int i=0; i<_nth; i++) { sum += p2; p2 *= 2; }
293 for(uint_4 k=0; k<_vecs.size(); k++) {
294 if ( (_vecs[k].busy) || (_vecs[k].stat != _nth) ) {
295 cout << " Check()/Pb Busy Or Stat for k=" << k << endl;
296 nerr++;
297 }
298 _vmx.Column(k) -= sum;
299 _vmx.Column(k).MinMax(min, max);
300 if ((min!=0) || (max!=0)) {
301 cout << " Check()/Pb vec[k=" << k << "] != (sum=" << sum << ")" << endl;
302 nerr++;
303 }
304 }
305 if (nerr == 0) cout << "MTVecPool::Check() - OK (NErr=0)" << endl;
306 else cout << "MTVecPool::Check() PB NErr=" << nerr << endl;
307 return nerr;
308 }
309
310 // ... variables membres
311 ZMutex mex;
312 uint_4 _vsz;
313 uint_4 _nth;
314 TMatrix<int_8> _vmx;
315 vector< St_VecPool> _vecs;
316 vector< TVector<int_8> > _vecp;
317};
318
319
320static MTVecPool* mtvp = NULL;
321
322// --- fonction de test avec synchronisation entre threads en utilisant pointeur de vecteurs
323void syncp_funzt(void *arg)
324{
325 ztarg * za = (ztarg *)arg;
326 cout << ">>>> syncp_funzt(ThId=" << za->thid << ") - NVec/NLoop= " << za->M << endl;
327
328 if (mtvp == NULL)
329 throw NullPtrError("syncp_funzt: MTVecPool* mtvp = NULL");
330
331 int_4 L = za->M;
332 int_4 VS = za->VSz;
333 int_8 p2 = 1;
334 uint_4 k, ii, tid;
335 tid = za->thid;
336 for(k=0; k<tid; k++) p2 *= 2;
337
338 char buff[128];
339 sprintf(buff, "syncp_funzt(ThId=%d) StarOfLoop", za->thid);
340 PrtTim(buff);
341 uint_4 idx;
342 for(k=0; k<L; k++) {
343 *(mtvp->GetVecP(tid, idx)) += p2;
344 //DBG cout << "DBG-syncp_funzt(tid=" << tid << ", idx=" << idx << endl;
345 mtvp->RetVec(idx);
346 }
347 sprintf(buff, "syncp_funzt(ThId=%d) EndOfLoop", za->thid);
348 PrtTim(buff);
349 return;
350}
351// --- fonction de test avec synchronisation entre threads
352void sync_funzt(void *arg)
353{
354 ztarg * za = (ztarg *)arg;
355 cout << ">>>> sync_funzt(ThId=" << za->thid << ") - NVec/NLoop= " << za->M << endl;
356
357 if (mtvp == NULL)
358 throw NullPtrError("sync_funzt: MTVecPool* mtvp = NULL");
359
360 int_4 L = za->M;
361 int_4 VS = za->VSz;
362 int_8 p2 = 1;
363 uint_4 k, ii, tid;
364 tid = za->thid;
365 for(k=0; k<tid; k++) p2 *= 2;
366
367 char buff[128];
368 sprintf(buff, "sync_funzt(ThId=%d) StarOfLoop", za->thid);
369 PrtTim(buff);
370 uint_4 idx;
371 for(k=0; k<L; k++) {
372 mtvp->GetVec(tid, idx) += p2;
373 //DBG cout << "DBG-sync_funzt(tid=" << tid << ", idx=" << idx << endl;
374 mtvp->RetVec(idx);
375 }
376 sprintf(buff, "sync_funzt(ThId=%d) EndOfLoop", za->thid);
377 PrtTim(buff);
378 return;
379}
380
381class CountLock : public ZMutex {
382 int count;
383public:
384 CountLock() { count = 0; }
385 inline int Count() { lock(); int rc = ++count; unlock(); return(rc);
386 }
387};
388
389
390static int N = 1;
391static int M = 5;
392static int VSZ = 32;
393
394int main(int narg, char *arg[])
395
396{
397
398 if (narg < 4) {
399 cout << " Usage: zthr select N LM [Sz] " << endl;
400 cout << " select= sl -> simple loop with sleep " << endl;
401 cout << " select= mtx -> matrix<r_8> init and multiply mx1*mx2" << endl;
402 cout << " select= arr -> array/matrix<int_4> init and operation c1*a1+c2*a2 " << endl;
403 cout << " select= arrdl -> vectorOpe V2 ~= DLO4(V1), VSz=LM*LM " << endl;
404 cout << " select= arrmf -> vectorOpe V2 = Sin(V1), VSz=LM*LM " << endl;
405 cout << " select= clk -> Mutex lock count " << endl;
406 cout << " select= sync -> Thread synchronisation using ZMutex" << endl;
407 cout << " select= syncp -> Thread synchronisation using ZMutex , Vector pointers" << endl;
408 cout << " N= Number of threads (sl/mtx) or CountLock " << endl;
409 cout << " LM = Loop limit (sl/sync) or Matrix size (mtx) " << endl;
410 cout << " Sz = Vector size for select=sync,syncp (default=32) " << endl;
411 return(1);
412 }
413
414 string sel = arg[1];
415 if ((sel != "sl") && (sel != "mtx") && (sel != "arr") &&
416 (sel != "arrdl") && (sel != "arrmf") &&
417 (sel != "sync") && (sel != "syncp") && (sel != "clk")) {
418 cout << "zthr/erreur argument sel (!= sl / mtx / arr / clk) " << endl;
419 return 2;
420 }
421
422 //-- Decodage arguments
423 N = atoi(arg[2]);
424 M = atoi(arg[3]);
425 if (narg > 4) VSZ = atoi(arg[4]);
426 cout << "zthr/Info: select=" << sel << " N=" << N << " M= " << M
427 << " VSz=" << VSZ << endl;
428
429
430 InitTim();
431 SophyaInit();
432
433 int rc = 0;
434 try {
435 ResourceUsage res(ResourceUsage::RU_All);
436 if ((sel == "mtx") || (sel == "arr") || (sel == "sl") ||
437 (sel == "arrdl") || (sel == "arrmf") ||
438 (sel == "sync") || (sel == "syncp")) {
439 if ( (sel == "sync") || (sel == "syncp")) mtvp = new MTVecPool(N,VSZ,M);
440 vector<ztarg *> vza;
441 vector<ZThread *> vzth;
442 for(int i=0; i<N; i++) {
443 cout << "*****zthr: Creating Thread " << i+1 << " /" << N << endl;
444 ZThread * pzt = new ZThread();
445 ztarg* zap = new ztarg;
446 vzth.push_back(pzt);
447 // ATTENTION : il faut que le thid = 0 ... N-1 (et pas 1)
448 zap->thid = i; zap->M = M;
449 zap->NTh = N; zap->VSz = VSZ;
450 vza.push_back(zap);
451 if (sel == "mtx") pzt->setAction(mtx_funzt, vza[i]);
452 else if (sel == "arr") pzt->setAction(arr_funzt, vza[i]);
453 else if (sel == "arrdl") pzt->setAction(arrdl_funzt, vza[i]);
454 else if (sel == "arrmf") pzt->setAction(arrmf_funzt, vza[i]);
455 else if (sel == "sync") pzt->setAction(sync_funzt, vza[i]);
456 else if (sel == "syncp") pzt->setAction(syncp_funzt, vza[i]);
457 else pzt->setAction(funzt, vza[i]);
458 }
459 cout << "***zthr: Starting threads ... " << endl;
460 PrtTim("***zthr/StarThr");
461 for(int i=0; i<N; i++) vzth[i]->start();
462 sleep(1);
463 cout << "***ResourceUsage before thr[i].join()" << endl;
464 cout << res;
465 cout << "***zthr Joining Threads ..." << endl;
466 for(int i=0; i<N; i++) vzth[i]->join();
467 cout << "***zthr Threads Z1 ... Z" << N << " Finished OK" << endl;
468 cout << " zthr/Resusage: getDataSize() = " << res.getDataSize() << " getStackSize()="
469 << res.getStackSize() << endl;
470 cout << res;
471 for(int i=0; i<N; i++) {
472 delete vzth[i];
473 delete vza[i];
474 }
475 if (mtvp) {
476 Timer tm("MTVecPool::Check()");
477 mtvp->Check();
478 tm.Nop();
479 delete mtvp;
480 }
481 }
482 else {
483 PrtTim("BeginOfCount");
484 CountLock clk;
485 int kk;
486 for(kk=0; kk<atoi(arg[3]); kk++) {
487 clk.Count();
488 }
489 cout << " End CountLock-Test Count= " << clk.Count() << endl;
490 }
491 }
492 catch (PThrowable exc) {
493 cerr << "zthr: catched Exception " << exc.Msg() << endl;
494 rc = 77;
495 }
496 catch (...) {
497 cerr << " catched unknown (...) exception (lpk.cc) " << endl;
498 rc = 78;
499 }
500
501 return(rc);
502
503}
504
505
506
Note: See TracBrowser for help on using the repository browser.