source: issm/trunk/src/c/objects/Inputs/PentaVertexInput.cpp@ 6412

Last change on this file since 6412 was 6412, checked in by Mathieu Morlighem, 14 years ago

moved ISSMERROR to _error_, ISSMASSERT to _assert_ and ISSMPRINTF to _printf_

File size: 15.7 KB
RevLine 
[3683]1/*!\file PentaVertexInput.c
2 * \brief: implementation of the PentaVertexInput object
3 */
4
5#ifdef HAVE_CONFIG_H
6 #include "config.h"
7#else
8#error "Cannot compile with HAVE_CONFIG_H symbol! run configure first!"
9#endif
10
11#include "stdio.h"
12#include <string.h>
13#include "../objects.h"
14#include "../../EnumDefinitions/EnumDefinitions.h"
15#include "../../shared/shared.h"
[4236]16#include "../../Container/Container.h"
[3775]17#include "../../include/include.h"
[3683]18
[4248]19/*PentaVertexInput constructors and destructor*/
[3683]20/*FUNCTION PentaVertexInput::PentaVertexInput(){{{1*/
21PentaVertexInput::PentaVertexInput(){
22 return;
23}
24/*}}}*/
[3847]25/*FUNCTION PentaVertexInput::PentaVertexInput(int in_enum_type,double* values){{{1*/
[4882]26PentaVertexInput::PentaVertexInput(int in_enum_type,double* in_values)
27 :PentaRef(1)
28{
[3683]29
[4882]30 /*Set PentaRef*/
31 this->SetElementType(P1Enum,0);
32 this->element_type=P1Enum;
33
[3683]34 enum_type=in_enum_type;
35 values[0]=in_values[0];
36 values[1]=in_values[1];
37 values[2]=in_values[2];
38 values[3]=in_values[3];
39 values[4]=in_values[4];
40 values[5]=in_values[5];
41}
42/*}}}*/
43/*FUNCTION PentaVertexInput::~PentaVertexInput(){{{1*/
44PentaVertexInput::~PentaVertexInput(){
45 return;
46}
47/*}}}*/
48
[4248]49/*Object virtual functions definitions:*/
50/*FUNCTION PentaVertexInput::Echo {{{1*/
51void PentaVertexInput::Echo(void){
52 this->DeepEcho();
[3683]53}
54/*}}}*/
55/*FUNCTION PentaVertexInput::DeepEcho{{{1*/
56void PentaVertexInput::DeepEcho(void){
57
58 printf("PentaVertexInput:\n");
[5103]59 printf(" enum: %i (%s)\n",this->enum_type,EnumToString(this->enum_type));
[3847]60 printf(" values: [%g %g %g %g %g %g]\n",this->values[0],this->values[1],this->values[2],this->values[3],this->values[4],this->values[5]);
[3683]61}
62/*}}}*/
[4248]63/*FUNCTION PentaVertexInput::Id{{{1*/
64int PentaVertexInput::Id(void){ return -1; }
[3683]65/*}}}*/
[4248]66/*FUNCTION PentaVertexInput::MyRank{{{1*/
67int PentaVertexInput::MyRank(void){
68 extern int my_rank;
69 return my_rank;
[3683]70}
71/*}}}*/
72/*FUNCTION PentaVertexInput::Marshall{{{1*/
73void PentaVertexInput::Marshall(char** pmarshalled_dataset){
74
75 char* marshalled_dataset=NULL;
76 int enum_value=0;
77
78 /*recover marshalled_dataset: */
79 marshalled_dataset=*pmarshalled_dataset;
80
81 /*get enum value of PentaVertexInput: */
82 enum_value=PentaVertexInputEnum;
83
84 /*marshall enum: */
85 memcpy(marshalled_dataset,&enum_value,sizeof(enum_value));marshalled_dataset+=sizeof(enum_value);
86
87 /*marshall PentaVertexInput data: */
88 memcpy(marshalled_dataset,&enum_type,sizeof(enum_type));marshalled_dataset+=sizeof(enum_type);
89 memcpy(marshalled_dataset,&values,sizeof(values));marshalled_dataset+=sizeof(values);
90
91 *pmarshalled_dataset=marshalled_dataset;
92}
93/*}}}*/
94/*FUNCTION PentaVertexInput::MarshallSize{{{1*/
95int PentaVertexInput::MarshallSize(){
96
97 return sizeof(values)+
98 +sizeof(enum_type)+
99 +sizeof(int); //sizeof(int) for enum value
100}
101/*}}}*/
[4248]102/*FUNCTION PentaVertexInput::Demarshall{{{1*/
103void PentaVertexInput::Demarshall(char** pmarshalled_dataset){
104
105 char* marshalled_dataset=NULL;
106 int i;
107
108 /*recover marshalled_dataset: */
109 marshalled_dataset=*pmarshalled_dataset;
110
111 /*this time, no need to get enum type, the pointer directly points to the beginning of the
112 *object data (thanks to DataSet::Demarshall):*/
113 memcpy(&enum_type,marshalled_dataset,sizeof(enum_type));marshalled_dataset+=sizeof(enum_type);
114 memcpy(&values,marshalled_dataset,sizeof(values));marshalled_dataset+=sizeof(values);
115
116 /*return: */
117 *pmarshalled_dataset=marshalled_dataset;
118 return;
[3683]119}
120/*}}}*/
[4248]121/*FUNCTION PentaVertexInput::Enum{{{1*/
122int PentaVertexInput::Enum(void){
123
124 return PentaVertexInputEnum;
125
126}
127/*}}}*/
128
129/*PentaVertexInput management*/
130/*FUNCTION PentaVertexInput::copy{{{1*/
131Object* PentaVertexInput::copy() {
132
133 return new PentaVertexInput(this->enum_type,this->values);
134
135}
136/*}}}*/
137/*FUNCTION PentaVertexInput::EnumType{{{1*/
138int PentaVertexInput::EnumType(void){
139
140 return this->enum_type;
141
142}
143/*}}}*/
[3847]144/*FUNCTION PentaVertexInput::SpawnTriaInput{{{1*/
145Input* PentaVertexInput::SpawnTriaInput(int* indices){
[3683]146
[3847]147 /*output*/
148 TriaVertexInput* outinput=NULL;
149 double newvalues[3];
150
151 /*Loop over the new indices*/
152 for(int i=0;i<3;i++){
153
154 /*Check index value*/
[6412]155 _assert_(indices[i]>=0 && indices[i]<6);
[3847]156
157 /*Assign value to new input*/
158 newvalues[i]=this->values[indices[i]];
159 }
160
161 /*Create new Tria input*/
162 outinput=new TriaVertexInput(this->enum_type,&newvalues[0]);
163
164 /*Assign output*/
165 return outinput;
166
167}
168/*}}}*/
[4037]169/*FUNCTION PentaVertexInput::SpawnResult{{{1*/
[4050]170ElementResult* PentaVertexInput::SpawnResult(int step, double time){
[3847]171
[4050]172 return new PentaVertexElementResult(this->enum_type,this->values,step,time);
[4037]173
174}
175/*}}}*/
176
[3683]177/*Object functions*/
[5647]178/*FUNCTION PentaVertexInput::GetParameterValue(double* pvalue,GaussPenta* gauss){{{1*/
179void PentaVertexInput::GetParameterValue(double* pvalue,GaussPenta* gauss){
[5629]180
181 /*Call PentaRef function*/
182 PentaRef::GetParameterValue(pvalue,&values[0],gauss);
183
184}
185/*}}}*/
[5647]186/*FUNCTION PentaVertexInput::GetParameterDerivativeValue(double* p, double* xyz_list, GaussPenta* gauss){{{1*/
187void PentaVertexInput::GetParameterDerivativeValue(double* p, double* xyz_list, GaussPenta* gauss){
[5629]188
189 /*Call PentaRef function*/
190 PentaRef::GetParameterDerivativeValue(p,&values[0],xyz_list,gauss);
191}
192/*}}}*/
[4546]193/*FUNCTION PentaVertexInput::GetVxStrainRate3d{{{1*/
[5647]194void PentaVertexInput::GetVxStrainRate3d(double* epsilonvx,double* xyz_list, GaussPenta* gauss){
195 int i,j;
196
197 const int numgrids=6;
198 const int DOFVELOCITY=3;
199 double B[8][27];
200 double B_reduced[6][DOFVELOCITY*numgrids];
201 double velocity[numgrids][DOFVELOCITY];
202
203 /*Get B matrix: */
204 GetBStokes(&B[0][0], xyz_list, gauss);
205 /*Create a reduced matrix of B to get rid of pressure */
206 for (i=0;i<6;i++){
207 for (j=0;j<3;j++){
208 B_reduced[i][j]=B[i][j];
209 }
210 for (j=4;j<7;j++){
211 B_reduced[i][j-1]=B[i][j];
212 }
213 for (j=8;j<11;j++){
214 B_reduced[i][j-2]=B[i][j];
215 }
216 for (j=12;j<15;j++){
217 B_reduced[i][j-3]=B[i][j];
218 }
219 for (j=16;j<19;j++){
220 B_reduced[i][j-4]=B[i][j];
221 }
222 for (j=20;j<23;j++){
223 B_reduced[i][j-5]=B[i][j];
224 }
225 }
226
227 /*Here, we are computing the strain rate of (vx,0,0)*/
228 for(i=0;i<numgrids;i++){
229 velocity[i][0]=this->values[i];
230 velocity[i][1]=0.0;
231 velocity[i][2]=0.0;
232 }
233 /*Multiply B by velocity, to get strain rate: */
234 MatrixMultiply(&B_reduced[0][0],6,DOFVELOCITY*numgrids,0,&velocity[0][0],DOFVELOCITY*numgrids,1,0,epsilonvx,0);
235
236}
237/*}}}*/
238/*FUNCTION PentaVertexInput::GetVyStrainRate3d{{{1*/
239void PentaVertexInput::GetVyStrainRate3d(double* epsilonvy,double* xyz_list, GaussPenta* gauss){
240 int i,j;
241
242 const int numgrids=6;
243 const int DOFVELOCITY=3;
244 double B[8][27];
245 double B_reduced[6][DOFVELOCITY*numgrids];
246 double velocity[numgrids][DOFVELOCITY];
247
248 /*Get B matrix: */
249 GetBStokes(&B[0][0], xyz_list, gauss);
250 /*Create a reduced matrix of B to get rid of pressure */
251 for (i=0;i<6;i++){
252 for (j=0;j<3;j++){
253 B_reduced[i][j]=B[i][j];
254 }
255 for (j=4;j<7;j++){
256 B_reduced[i][j-1]=B[i][j];
257 }
258 for (j=8;j<11;j++){
259 B_reduced[i][j-2]=B[i][j];
260 }
261 for (j=12;j<15;j++){
262 B_reduced[i][j-3]=B[i][j];
263 }
264 for (j=16;j<19;j++){
265 B_reduced[i][j-4]=B[i][j];
266 }
267 for (j=20;j<23;j++){
268 B_reduced[i][j-5]=B[i][j];
269 }
270 }
271
272 /*Here, we are computing the strain rate of (0,vy,0)*/
273 for(i=0;i<numgrids;i++){
274 velocity[i][0]=0.0;
275 velocity[i][1]=this->values[i];
276 velocity[i][2]=0.0;
277 }
278 /*Multiply B by velocity, to get strain rate: */
279 MatrixMultiply(&B_reduced[0][0],6,DOFVELOCITY*numgrids,0,&velocity[0][0],DOFVELOCITY*numgrids,1,0,epsilonvy,0);
280
281}
282/*}}}*/
283/*FUNCTION PentaVertexInput::GetVzStrainRate3d{{{1*/
284void PentaVertexInput::GetVzStrainRate3d(double* epsilonvz,double* xyz_list, GaussPenta* gauss){
285 int i,j;
286
287 const int numgrids=6;
288 const int DOFVELOCITY=3;
289 double B[8][27];
290 double B_reduced[6][DOFVELOCITY*numgrids];
291 double velocity[numgrids][DOFVELOCITY];
292
293 /*Get B matrix: */
294 GetBStokes(&B[0][0], xyz_list, gauss);
295 /*Create a reduced matrix of B to get rid of pressure */
296 for (i=0;i<6;i++){
297 for (j=0;j<3;j++){
298 B_reduced[i][j]=B[i][j];
299 }
300 for (j=4;j<7;j++){
301 B_reduced[i][j-1]=B[i][j];
302 }
303 for (j=8;j<11;j++){
304 B_reduced[i][j-2]=B[i][j];
305 }
306 for (j=12;j<15;j++){
307 B_reduced[i][j-3]=B[i][j];
308 }
309 for (j=16;j<19;j++){
310 B_reduced[i][j-4]=B[i][j];
311 }
312 for (j=20;j<23;j++){
313 B_reduced[i][j-5]=B[i][j];
314 }
315 }
316
317 /*Here, we are computing the strain rate of (0,0,vz)*/
318 for(i=0;i<numgrids;i++){
319 velocity[i][0]=0.0;
320 velocity[i][1]=0.0;
321 velocity[i][2]=this->values[i];
322 }
323
324 /*Multiply B by velocity, to get strain rate: */
325 MatrixMultiply(&B_reduced[0][0],6,DOFVELOCITY*numgrids,0,&velocity[0][0],DOFVELOCITY*numgrids,1,0,epsilonvz,0);
326
327}
328/*}}}*/
329/*FUNCTION PentaVertexInput::GetVxStrainRate3dPattyn{{{1*/
330void PentaVertexInput::GetVxStrainRate3dPattyn(double* epsilonvx,double* xyz_list, GaussPenta* gauss){
331
332 int i;
333 const int numgrids=6;
334 const int NDOF2=2;
335 double B[5][NDOF2*numgrids];
336 double velocity[numgrids][NDOF2];
337
338 /*Get B matrix: */
339 GetBPattyn(&B[0][0], xyz_list, gauss);
340
341 /*Here, we are computing the strain rate of (vx,0)*/
342 for(i=0;i<numgrids;i++){
343 velocity[i][0]=this->values[i];
344 velocity[i][1]=0.0;
345 }
346
347 /*Multiply B by velocity, to get strain rate: */
348 MatrixMultiply( &B[0][0],5,NDOF2*numgrids,0,
349 &velocity[0][0],NDOF2*numgrids,1,0,
350 epsilonvx,0);
351
352}
353/*}}}*/
354/*FUNCTION PentaVertexInput::GetVyStrainRate3dPattyn{{{1*/
355void PentaVertexInput::GetVyStrainRate3dPattyn(double* epsilonvy,double* xyz_list, GaussPenta* gauss){
356
357 int i;
358 const int numgrids=6;
359 const int NDOF2=2;
360 double B[5][NDOF2*numgrids];
361 double velocity[numgrids][NDOF2];
362
363 /*Get B matrix: */
364 GetBPattyn(&B[0][0], xyz_list, gauss);
365
366 /*Here, we are computing the strain rate of (0,vy)*/
367 for(i=0;i<numgrids;i++){
368 velocity[i][0]=0.0;
369 velocity[i][1]=this->values[i];
370 }
371
372 /*Multiply B by velocity, to get strain rate: */
373 MatrixMultiply( &B[0][0],5,NDOF2*numgrids,0,
374 &velocity[0][0],NDOF2*numgrids,1,0,
375 epsilonvy,0);
376
377}
378/*}}}*/
[4546]379/*FUNCTION PentaVertexInput::ChangeEnum{{{1*/
[3732]380void PentaVertexInput::ChangeEnum(int newenumtype){
381 this->enum_type=newenumtype;
382}
383/*}}}*/
[4546]384/*FUNCTION PentaVertexInput::GetParameterAverage{{{1*/
[3830]385void PentaVertexInput::GetParameterAverage(double* pvalue){
386 *pvalue=1./6.*(values[0]+values[1]+values[2]+values[3]+values[4]+values[5]);
387}
388/*}}}*/
[3840]389
390/*Intermediary*/
[4471]391/*FUNCTION PentaVertexInput::SquareMin{{{1*/
[4042]392void PentaVertexInput::SquareMin(double* psquaremin, bool process_units,Parameters* parameters){
393
394 int i;
395 const int numnodes=6;
396 double valuescopy[numnodes];
397 double squaremin;
398
399 /*First, copy values, to process units if requested: */
400 for(i=0;i<numnodes;i++)valuescopy[i]=this->values[i];
401
402 /*Process units if requested: */
[5529]403 if(process_units)UnitConversion(&valuescopy[0],numnodes,IuToExtEnum,enum_type,parameters);
[4042]404
405 /*Now, figure out minimum of valuescopy: */
406 squaremin=pow(valuescopy[0],2);
407 for(i=1;i<numnodes;i++){
408 if(pow(valuescopy[i],2)<squaremin)squaremin=pow(valuescopy[i],2);
409 }
410 /*Assign output pointers:*/
411 *psquaremin=squaremin;
412}
413/*}}}*/
[5017]414/*FUNCTION PentaVertexInput::ConstrainMin{{{1*/
415void PentaVertexInput::ConstrainMin(double minimum){
416
417 int i;
418 const int numgrids=6;
419
420 for(i=0;i<numgrids;i++) if (values[i]<minimum) values[i]=minimum;
421}
422/*}}}*/
[5513]423/*FUNCTION PentaVertexInput::InfinityNorm{{{1*/
424double PentaVertexInput::InfinityNorm(void){
425
426 /*Output*/
427 const int numgrids=6;
428 double norm=0;
429
430 for(int i=0;i<numgrids;i++) if(fabs(values[i])>norm) norm=fabs(values[i]);
431 return norm;
432}
433/*}}}*/
[5659]434/*FUNCTION PentaVertexInput::Max{{{1*/
435double PentaVertexInput::Max(void){
436
437 const int numgrids=6;
438 double max=values[0];
439
440 for(int i=1;i<numgrids;i++){
441 if(values[i]>max) max=values[i];
442 }
443 return max;
444}
445/*}}}*/
446/*FUNCTION PentaVertexInput::MaxAbs{{{1*/
447double PentaVertexInput::MaxAbs(void){
448
449 const int numgrids=6;
450 double max=fabs(values[0]);
451
452 for(int i=1;i<numgrids;i++){
453 if(fabs(values[i])>max) max=fabs(values[i]);
454 }
455 return max;
456}
457/*}}}*/
458/*FUNCTION PentaVertexInput::Min{{{1*/
459double PentaVertexInput::Min(void){
460
461 const int numgrids=6;
462 double min=values[0];
463
464 for(int i=1;i<numgrids;i++){
465 if(values[i]<min) min=values[i];
466 }
467 return min;
468}
469/*}}}*/
470/*FUNCTION PentaVertexInput::MinAbs{{{1*/
471double PentaVertexInput::MinAbs(void){
472
473 const int numgrids=6;
474 double min=fabs(values[0]);
475
476 for(int i=1;i<numgrids;i++){
477 if(fabs(values[i])<min) min=fabs(values[i]);
478 }
479 return min;
480}
481/*}}}*/
[4471]482/*FUNCTION PentaVertexInput::Scale{{{1*/
[4047]483void PentaVertexInput::Scale(double scale_factor){
484
485 int i;
486 const int numgrids=6;
487
488 for(i=0;i<numgrids;i++)values[i]=values[i]*scale_factor;
489}
490/*}}}*/
[4471]491/*FUNCTION PentaVertexInput::AXPY{{{1*/
[4048]492void PentaVertexInput::AXPY(Input* xinput,double scalar){
493
494 int i;
495 const int numgrids=6;
496
497 /*xinput is of the same type, so cast it: */
498
[4174]499 /*Carry out the AXPY operation depending on type:*/
500 switch(xinput->Enum()){
[4048]501
[6200]502 case PentaVertexInputEnum:{
503 PentaVertexInput* cast_input=(PentaVertexInput*)xinput;
504 for(i=0;i<numgrids;i++)this->values[i]=this->values[i]+scalar*(cast_input->values[i]);}
[4174]505 return;
[6200]506 case ControlInputEnum:{
507 ControlInput* cont_input=(ControlInput*)xinput;
[6412]508 if(cont_input->values->Enum()!=PentaVertexInputEnum) _error_("not supported yet");
[6200]509 PentaVertexInput* cast_input=(PentaVertexInput*)cont_input->values;
510 for(i=0;i<numgrids;i++)this->values[i]=this->values[i]+scalar*(cast_input->values[i]);}
511 return;
[4174]512 default:
[6412]513 _error_("not implemented yet");
[4174]514 }
515
[4048]516}
517/*}}}*/
[4471]518/*FUNCTION PentaVertexInput::Constrain{{{1*/
[4048]519void PentaVertexInput::Constrain(double cm_min, double cm_max){
520
521 int i;
522 const int numgrids=6;
523
524 if(!isnan(cm_min)) for(i=0;i<numgrids;i++)if (this->values[i]<cm_min)this->values[i]=cm_min;
525 if(!isnan(cm_max)) for(i=0;i<numgrids;i++)if (this->values[i]>cm_max)this->values[i]=cm_max;
526
527}
528/*}}}*/
[4471]529/*FUNCTION PentaVertexInput::Extrude{{{1*/
[4274]530void PentaVertexInput::Extrude(void){
531
532 int i;
533
534 /*First 3 values copied on 3 last values*/
535 for(i=0;i<3;i++) this->values[3+i]=this->values[i];
536
537}
538/*}}}*/
[4471]539/*FUNCTION PentaVertexInput::VerticallyIntegrate{{{1*/
540void PentaVertexInput::VerticallyIntegrate(Input* thickness_input){
541
542 /*Intermediaries*/
543 int i;
544 const int numgrids = 6;
545 int num_thickness_values;
546 double *thickness_values = NULL;
547
548 /*Check that input provided is a thickness*/
[6412]549 if (thickness_input->EnumType()!=ThicknessEnum) _error_("Input provided is not a Thickness (enum_type is %s)",EnumToString(thickness_input->EnumType()));
[4471]550
551 /*Get Thickness value pointer*/
552 thickness_input->GetValuesPtr(&thickness_values,&num_thickness_values);
553
554 /*vertically integrate depending on type:*/
555 switch(thickness_input->Enum()){
556
557 case PentaVertexInputEnum:
558 for(i=0;i<3;i++){
559 this->values[i]=0.5*(this->values[i]+this->values[i+3]) * thickness_values[i];
560 this->values[i+3]=this->values[i];
561 }
562 return;
563
564 default:
[6412]565 _error_("not implemented yet");
[4471]566 }
567}
568/*}}}*/
569/*FUNCTION PentaVertexInput::PointwiseDivide{{{1*/
570Input* PentaVertexInput::PointwiseDivide(Input* inputB){
571
572 /*Ouput*/
573 PentaVertexInput* outinput=NULL;
574
575 /*Intermediaries*/
576 int i;
577 PentaVertexInput *xinputB = NULL;
578 int B_numvalues;
579 double *B_values = NULL;
580 const int numgrids = 6;
581 double AdotBvalues[numgrids];
582
583 /*Check that inputB is of the same type*/
[6412]584 if (inputB->Enum()!=PentaVertexInputEnum) _error_("Operation not permitted because inputB is of type %s",EnumToString(inputB->Enum()));
[4471]585 xinputB=(PentaVertexInput*)inputB;
586
587 /*Create point wise sum*/
588 for(i=0;i<numgrids;i++){
[6412]589 _assert_(xinputB->values[i]!=0);
[4471]590 AdotBvalues[i]=this->values[i]/xinputB->values[i];
591 }
592
[4899]593 /*Create new Penta vertex input (copy of current input)*/
[4471]594 outinput=new PentaVertexInput(this->enum_type,&AdotBvalues[0]);
595
596 /*Return output pointer*/
597 return outinput;
598
599}
600/*}}}*/
[4546]601/*FUNCTION PentaVertexInput::GetVectorFromInputs{{{1*/
[4048]602void PentaVertexInput::GetVectorFromInputs(Vec vector,int* doflist){
603
604 const int numvertices=6;
[4502]605 VecSetValues(vector,numvertices,doflist,(const double*)this->values,INSERT_VALUES);
[4048]606
[4502]607} /*}}}*/
[4546]608/*FUNCTION PentaVertexInput::GetValuesPtr{{{1*/
[4057]609void PentaVertexInput::GetValuesPtr(double** pvalues,int* pnum_values){
[4055]610
611 *pvalues=this->values;
612 *pnum_values=6;
613
614}
615/*}}}*/
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