[3683] | 1 | /*!\file PentaVertexInput.c
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| 2 | * \brief: implementation of the PentaVertexInput object
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| 3 | */
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| 4 |
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| 5 | #ifdef HAVE_CONFIG_H
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| 6 | #include "config.h"
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| 7 | #else
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| 8 | #error "Cannot compile with HAVE_CONFIG_H symbol! run configure first!"
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| 9 | #endif
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| 10 |
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| 11 | #include "stdio.h"
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| 12 | #include <string.h>
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| 13 | #include "../objects.h"
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| 14 | #include "../../EnumDefinitions/EnumDefinitions.h"
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| 15 | #include "../../shared/shared.h"
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[4236] | 16 | #include "../../Container/Container.h"
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[3775] | 17 | #include "../../include/include.h"
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[3683] | 18 |
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[4248] | 19 | /*PentaVertexInput constructors and destructor*/
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[3683] | 20 | /*FUNCTION PentaVertexInput::PentaVertexInput(){{{1*/
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| 21 | PentaVertexInput::PentaVertexInput(){
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| 22 | return;
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| 23 | }
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| 24 | /*}}}*/
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[3847] | 25 | /*FUNCTION PentaVertexInput::PentaVertexInput(int in_enum_type,double* values){{{1*/
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[4882] | 26 | PentaVertexInput::PentaVertexInput(int in_enum_type,double* in_values)
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| 27 | :PentaRef(1)
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| 28 | {
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[3683] | 29 |
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[4882] | 30 | /*Set PentaRef*/
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| 31 | this->SetElementType(P1Enum,0);
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| 32 | this->element_type=P1Enum;
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| 33 |
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[3683] | 34 | enum_type=in_enum_type;
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| 35 | values[0]=in_values[0];
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| 36 | values[1]=in_values[1];
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| 37 | values[2]=in_values[2];
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| 38 | values[3]=in_values[3];
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| 39 | values[4]=in_values[4];
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| 40 | values[5]=in_values[5];
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| 41 | }
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| 42 | /*}}}*/
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| 43 | /*FUNCTION PentaVertexInput::~PentaVertexInput(){{{1*/
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| 44 | PentaVertexInput::~PentaVertexInput(){
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| 45 | return;
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| 46 | }
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| 47 | /*}}}*/
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| 48 |
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[4248] | 49 | /*Object virtual functions definitions:*/
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| 50 | /*FUNCTION PentaVertexInput::Echo {{{1*/
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| 51 | void PentaVertexInput::Echo(void){
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| 52 | this->DeepEcho();
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[3683] | 53 | }
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| 54 | /*}}}*/
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| 55 | /*FUNCTION PentaVertexInput::DeepEcho{{{1*/
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| 56 | void PentaVertexInput::DeepEcho(void){
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| 57 |
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| 58 | printf("PentaVertexInput:\n");
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[5103] | 59 | printf(" enum: %i (%s)\n",this->enum_type,EnumToString(this->enum_type));
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[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]);
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[3683] | 61 | }
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| 62 | /*}}}*/
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[4248] | 63 | /*FUNCTION PentaVertexInput::Id{{{1*/
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| 64 | int PentaVertexInput::Id(void){ return -1; }
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[3683] | 65 | /*}}}*/
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[4248] | 66 | /*FUNCTION PentaVertexInput::MyRank{{{1*/
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| 67 | int PentaVertexInput::MyRank(void){
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| 68 | extern int my_rank;
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| 69 | return my_rank;
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[3683] | 70 | }
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| 71 | /*}}}*/
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| 72 | /*FUNCTION PentaVertexInput::Marshall{{{1*/
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| 73 | void PentaVertexInput::Marshall(char** pmarshalled_dataset){
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| 74 |
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| 75 | char* marshalled_dataset=NULL;
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| 76 | int enum_value=0;
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| 77 |
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| 78 | /*recover marshalled_dataset: */
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| 79 | marshalled_dataset=*pmarshalled_dataset;
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| 80 |
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| 81 | /*get enum value of PentaVertexInput: */
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| 82 | enum_value=PentaVertexInputEnum;
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| 83 |
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| 84 | /*marshall enum: */
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| 85 | memcpy(marshalled_dataset,&enum_value,sizeof(enum_value));marshalled_dataset+=sizeof(enum_value);
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| 86 |
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| 87 | /*marshall PentaVertexInput data: */
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| 88 | memcpy(marshalled_dataset,&enum_type,sizeof(enum_type));marshalled_dataset+=sizeof(enum_type);
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| 89 | memcpy(marshalled_dataset,&values,sizeof(values));marshalled_dataset+=sizeof(values);
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| 90 |
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| 91 | *pmarshalled_dataset=marshalled_dataset;
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| 92 | }
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| 93 | /*}}}*/
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| 94 | /*FUNCTION PentaVertexInput::MarshallSize{{{1*/
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| 95 | int PentaVertexInput::MarshallSize(){
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| 96 |
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| 97 | return sizeof(values)+
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| 98 | +sizeof(enum_type)+
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| 99 | +sizeof(int); //sizeof(int) for enum value
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| 100 | }
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| 101 | /*}}}*/
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[4248] | 102 | /*FUNCTION PentaVertexInput::Demarshall{{{1*/
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| 103 | void PentaVertexInput::Demarshall(char** pmarshalled_dataset){
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| 104 |
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| 105 | char* marshalled_dataset=NULL;
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| 106 | int i;
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| 107 |
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| 108 | /*recover marshalled_dataset: */
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| 109 | marshalled_dataset=*pmarshalled_dataset;
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| 110 |
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| 111 | /*this time, no need to get enum type, the pointer directly points to the beginning of the
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| 112 | *object data (thanks to DataSet::Demarshall):*/
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| 113 | memcpy(&enum_type,marshalled_dataset,sizeof(enum_type));marshalled_dataset+=sizeof(enum_type);
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| 114 | memcpy(&values,marshalled_dataset,sizeof(values));marshalled_dataset+=sizeof(values);
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| 115 |
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| 116 | /*return: */
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| 117 | *pmarshalled_dataset=marshalled_dataset;
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| 118 | return;
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[3683] | 119 | }
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| 120 | /*}}}*/
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[4248] | 121 | /*FUNCTION PentaVertexInput::Enum{{{1*/
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| 122 | int PentaVertexInput::Enum(void){
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| 123 |
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| 124 | return PentaVertexInputEnum;
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| 125 |
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| 126 | }
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| 127 | /*}}}*/
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| 128 |
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| 129 | /*PentaVertexInput management*/
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| 130 | /*FUNCTION PentaVertexInput::copy{{{1*/
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| 131 | Object* PentaVertexInput::copy() {
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| 132 |
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| 133 | return new PentaVertexInput(this->enum_type,this->values);
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| 134 |
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| 135 | }
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| 136 | /*}}}*/
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| 137 | /*FUNCTION PentaVertexInput::EnumType{{{1*/
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| 138 | int PentaVertexInput::EnumType(void){
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| 139 |
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| 140 | return this->enum_type;
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| 141 |
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| 142 | }
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| 143 | /*}}}*/
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[3847] | 144 | /*FUNCTION PentaVertexInput::SpawnTriaInput{{{1*/
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| 145 | Input* PentaVertexInput::SpawnTriaInput(int* indices){
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[3683] | 146 |
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[3847] | 147 | /*output*/
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| 148 | TriaVertexInput* outinput=NULL;
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| 149 | double newvalues[3];
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| 150 |
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| 151 | /*Loop over the new indices*/
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| 152 | for(int i=0;i<3;i++){
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| 153 |
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| 154 | /*Check index value*/
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| 155 | ISSMASSERT(indices[i]>=0 && indices[i]<6);
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| 156 |
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| 157 | /*Assign value to new input*/
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| 158 | newvalues[i]=this->values[indices[i]];
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| 159 | }
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| 160 |
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| 161 | /*Create new Tria input*/
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| 162 | outinput=new TriaVertexInput(this->enum_type,&newvalues[0]);
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| 163 |
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| 164 | /*Assign output*/
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| 165 | return outinput;
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| 166 |
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| 167 | }
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| 168 | /*}}}*/
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[4037] | 169 | /*FUNCTION PentaVertexInput::SpawnResult{{{1*/
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[4050] | 170 | ElementResult* PentaVertexInput::SpawnResult(int step, double time){
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[3847] | 171 |
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[4050] | 172 | return new PentaVertexElementResult(this->enum_type,this->values,step,time);
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[4037] | 173 |
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| 174 | }
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| 175 | /*}}}*/
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| 176 |
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[3683] | 177 | /*Object functions*/
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[4922] | 178 | /*FUNCTION PentaVertexInput::GetParameterValue{{{1*/
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[3840] | 179 | void PentaVertexInput::GetParameterValue(double* pvalue,double* gauss){
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| 180 |
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[4921] | 181 | /*Call PentaRef function*/
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| 182 | PentaRef::GetParameterValue(pvalue,&values[0],gauss);
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[3840] | 183 |
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| 184 | }
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[3683] | 185 | /*}}}*/
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[4546] | 186 | /*FUNCTION PentaVertexInput::GetParameterValues{{{1*/
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[3840] | 187 | void PentaVertexInput::GetParameterValues(double* values,double* gauss_pointers, int numgauss){
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| 188 | /*It is assumed that output values has been correctly allocated*/
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| 189 |
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| 190 | int i,j;
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| 191 | double gauss[4];
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| 192 |
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| 193 | for (i=0;i<numgauss;i++){
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| 194 |
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| 195 | /*Get current Gauss point coordinates*/
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| 196 | for (j=0;j<4;j++) gauss[j]=gauss_pointers[i*4+j];
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| 197 |
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| 198 | /*Assign parameter value*/
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| 199 | GetParameterValue(&values[i],&gauss[0]);
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| 200 | }
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| 201 | }
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[3683] | 202 | /*}}}*/
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[4546] | 203 | /*FUNCTION PentaVertexInput::GetParameterDerivativeValue{{{1*/
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[3840] | 204 | void PentaVertexInput::GetParameterDerivativeValue(double* p, double* xyz_list, double* gauss){
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| 205 |
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[4921] | 206 | /*Call PentaRef function*/
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| 207 | PentaRef::GetParameterDerivativeValue(p,&values[0],xyz_list,gauss);
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[3840] | 208 | }
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[3683] | 209 | /*}}}*/
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[4546] | 210 | /*FUNCTION PentaVertexInput::GetVxStrainRate3d{{{1*/
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[3855] | 211 | void PentaVertexInput::GetVxStrainRate3d(double* epsilonvx,double* xyz_list, double* gauss){
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[3840] | 212 | int i,j;
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| 213 |
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| 214 | const int numgrids=6;
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| 215 | const int DOFVELOCITY=3;
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| 216 | double B[8][27];
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| 217 | double B_reduced[6][DOFVELOCITY*numgrids];
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[3875] | 218 | double velocity[numgrids][DOFVELOCITY];
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[3840] | 219 |
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| 220 | /*Get B matrix: */
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| 221 | GetBStokes(&B[0][0], xyz_list, gauss);
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| 222 | /*Create a reduced matrix of B to get rid of pressure */
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| 223 | for (i=0;i<6;i++){
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| 224 | for (j=0;j<3;j++){
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| 225 | B_reduced[i][j]=B[i][j];
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| 226 | }
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| 227 | for (j=4;j<7;j++){
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| 228 | B_reduced[i][j-1]=B[i][j];
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| 229 | }
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| 230 | for (j=8;j<11;j++){
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| 231 | B_reduced[i][j-2]=B[i][j];
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| 232 | }
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| 233 | for (j=12;j<15;j++){
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| 234 | B_reduced[i][j-3]=B[i][j];
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| 235 | }
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| 236 | for (j=16;j<19;j++){
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| 237 | B_reduced[i][j-4]=B[i][j];
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| 238 | }
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| 239 | for (j=20;j<23;j++){
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| 240 | B_reduced[i][j-5]=B[i][j];
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| 241 | }
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| 242 | }
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| 243 |
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| 244 | /*Here, we are computing the strain rate of (vx,0,0)*/
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| 245 | for(i=0;i<numgrids;i++){
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| 246 | velocity[i][0]=this->values[i];
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| 247 | velocity[i][1]=0.0;
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| 248 | velocity[i][2]=0.0;
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| 249 | }
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| 250 | /*Multiply B by velocity, to get strain rate: */
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| 251 | MatrixMultiply(&B_reduced[0][0],6,DOFVELOCITY*numgrids,0,&velocity[0][0],DOFVELOCITY*numgrids,1,0,epsilonvx,0);
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| 252 |
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| 253 | }
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| 254 | /*}}}*/
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[4546] | 255 | /*FUNCTION PentaVertexInput::GetVyStrainRate3d{{{1*/
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[3855] | 256 | void PentaVertexInput::GetVyStrainRate3d(double* epsilonvy,double* xyz_list, double* gauss){
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[3840] | 257 | int i,j;
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| 258 |
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| 259 | const int numgrids=6;
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| 260 | const int DOFVELOCITY=3;
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| 261 | double B[8][27];
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| 262 | double B_reduced[6][DOFVELOCITY*numgrids];
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[3875] | 263 | double velocity[numgrids][DOFVELOCITY];
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[3840] | 264 |
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| 265 | /*Get B matrix: */
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| 266 | GetBStokes(&B[0][0], xyz_list, gauss);
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| 267 | /*Create a reduced matrix of B to get rid of pressure */
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| 268 | for (i=0;i<6;i++){
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| 269 | for (j=0;j<3;j++){
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| 270 | B_reduced[i][j]=B[i][j];
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| 271 | }
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| 272 | for (j=4;j<7;j++){
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| 273 | B_reduced[i][j-1]=B[i][j];
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| 274 | }
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| 275 | for (j=8;j<11;j++){
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| 276 | B_reduced[i][j-2]=B[i][j];
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| 277 | }
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| 278 | for (j=12;j<15;j++){
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| 279 | B_reduced[i][j-3]=B[i][j];
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| 280 | }
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| 281 | for (j=16;j<19;j++){
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| 282 | B_reduced[i][j-4]=B[i][j];
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| 283 | }
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| 284 | for (j=20;j<23;j++){
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| 285 | B_reduced[i][j-5]=B[i][j];
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| 286 | }
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| 287 | }
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| 288 |
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| 289 | /*Here, we are computing the strain rate of (0,vy,0)*/
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| 290 | for(i=0;i<numgrids;i++){
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| 291 | velocity[i][0]=0.0;
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| 292 | velocity[i][1]=this->values[i];
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| 293 | velocity[i][2]=0.0;
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| 294 | }
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| 295 | /*Multiply B by velocity, to get strain rate: */
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| 296 | MatrixMultiply(&B_reduced[0][0],6,DOFVELOCITY*numgrids,0,&velocity[0][0],DOFVELOCITY*numgrids,1,0,epsilonvy,0);
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| 297 |
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| 298 | }
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| 299 | /*}}}*/
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[4546] | 300 | /*FUNCTION PentaVertexInput::GetVzStrainRate3d{{{1*/
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[3855] | 301 | void PentaVertexInput::GetVzStrainRate3d(double* epsilonvz,double* xyz_list, double* gauss){
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[3840] | 302 | int i,j;
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| 303 |
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| 304 | const int numgrids=6;
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| 305 | const int DOFVELOCITY=3;
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| 306 | double B[8][27];
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| 307 | double B_reduced[6][DOFVELOCITY*numgrids];
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[3875] | 308 | double velocity[numgrids][DOFVELOCITY];
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[3840] | 309 |
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| 310 | /*Get B matrix: */
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| 311 | GetBStokes(&B[0][0], xyz_list, gauss);
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| 312 | /*Create a reduced matrix of B to get rid of pressure */
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| 313 | for (i=0;i<6;i++){
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| 314 | for (j=0;j<3;j++){
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| 315 | B_reduced[i][j]=B[i][j];
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| 316 | }
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| 317 | for (j=4;j<7;j++){
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| 318 | B_reduced[i][j-1]=B[i][j];
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| 319 | }
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| 320 | for (j=8;j<11;j++){
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| 321 | B_reduced[i][j-2]=B[i][j];
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| 322 | }
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| 323 | for (j=12;j<15;j++){
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| 324 | B_reduced[i][j-3]=B[i][j];
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| 325 | }
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| 326 | for (j=16;j<19;j++){
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| 327 | B_reduced[i][j-4]=B[i][j];
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| 328 | }
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| 329 | for (j=20;j<23;j++){
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| 330 | B_reduced[i][j-5]=B[i][j];
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| 331 | }
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| 332 | }
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| 333 |
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| 334 | /*Here, we are computing the strain rate of (0,0,vz)*/
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| 335 | for(i=0;i<numgrids;i++){
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| 336 | velocity[i][0]=0.0;
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| 337 | velocity[i][1]=0.0;
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| 338 | velocity[i][2]=this->values[i];
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| 339 | }
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| 340 |
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| 341 | /*Multiply B by velocity, to get strain rate: */
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| 342 | MatrixMultiply(&B_reduced[0][0],6,DOFVELOCITY*numgrids,0,&velocity[0][0],DOFVELOCITY*numgrids,1,0,epsilonvz,0);
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| 343 |
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| 344 | }
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| 345 | /*}}}*/
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[4546] | 346 | /*FUNCTION PentaVertexInput::GetVxStrainRate3dPattyn{{{1*/
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[3855] | 347 | void PentaVertexInput::GetVxStrainRate3dPattyn(double* epsilonvx,double* xyz_list, double* gauss){
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[3840] | 348 |
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[3855] | 349 | int i;
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| 350 | const int numgrids=6;
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| 351 | const int NDOF2=2;
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| 352 | double B[5][NDOF2*numgrids];
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| 353 | double velocity[numgrids][NDOF2];
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| 354 |
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| 355 | /*Get B matrix: */
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| 356 | GetBPattyn(&B[0][0], xyz_list, gauss);
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| 357 |
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| 358 | /*Here, we are computing the strain rate of (vx,0)*/
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| 359 | for(i=0;i<numgrids;i++){
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| 360 | velocity[i][0]=this->values[i];
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| 361 | velocity[i][1]=0.0;
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[3840] | 362 | }
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| 363 |
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[3855] | 364 | /*Multiply B by velocity, to get strain rate: */
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| 365 | MatrixMultiply( &B[0][0],5,NDOF2*numgrids,0,
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| 366 | &velocity[0][0],NDOF2*numgrids,1,0,
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| 367 | epsilonvx,0);
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| 368 |
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[3840] | 369 | }
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| 370 | /*}}}*/
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[4546] | 371 | /*FUNCTION PentaVertexInput::GetVyStrainRate3dPattyn{{{1*/
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[3855] | 372 | void PentaVertexInput::GetVyStrainRate3dPattyn(double* epsilonvy,double* xyz_list, double* gauss){
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| 373 |
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| 374 | int i;
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| 375 | const int numgrids=6;
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| 376 | const int NDOF2=2;
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| 377 | double B[5][NDOF2*numgrids];
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| 378 | double velocity[numgrids][NDOF2];
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| 379 |
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| 380 | /*Get B matrix: */
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| 381 | GetBPattyn(&B[0][0], xyz_list, gauss);
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| 382 |
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| 383 | /*Here, we are computing the strain rate of (0,vy)*/
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| 384 | for(i=0;i<numgrids;i++){
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| 385 | velocity[i][0]=0.0;
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| 386 | velocity[i][1]=this->values[i];
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| 387 | }
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| 388 |
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| 389 | /*Multiply B by velocity, to get strain rate: */
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| 390 | MatrixMultiply( &B[0][0],5,NDOF2*numgrids,0,
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| 391 | &velocity[0][0],NDOF2*numgrids,1,0,
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| 392 | epsilonvy,0);
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| 393 |
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| 394 | }
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| 395 | /*}}}*/
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[4546] | 396 | /*FUNCTION PentaVertexInput::ChangeEnum{{{1*/
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[3732] | 397 | void PentaVertexInput::ChangeEnum(int newenumtype){
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| 398 | this->enum_type=newenumtype;
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| 399 | }
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| 400 | /*}}}*/
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[4546] | 401 | /*FUNCTION PentaVertexInput::GetParameterAverage{{{1*/
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[3830] | 402 | void PentaVertexInput::GetParameterAverage(double* pvalue){
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| 403 | *pvalue=1./6.*(values[0]+values[1]+values[2]+values[3]+values[4]+values[5]);
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| 404 | }
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| 405 | /*}}}*/
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[3840] | 406 |
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| 407 | /*Intermediary*/
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[4471] | 408 | /*FUNCTION PentaVertexInput::SquareMin{{{1*/
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[4042] | 409 | void PentaVertexInput::SquareMin(double* psquaremin, bool process_units,Parameters* parameters){
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| 410 |
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| 411 | int i;
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| 412 | const int numnodes=6;
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| 413 | double valuescopy[numnodes];
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| 414 | double squaremin;
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| 415 |
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| 416 | /*First, copy values, to process units if requested: */
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| 417 | for(i=0;i<numnodes;i++)valuescopy[i]=this->values[i];
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| 418 |
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| 419 | /*Process units if requested: */
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[4043] | 420 | if(process_units)NodalValuesUnitConversion(&valuescopy[0],numnodes,enum_type,parameters);
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[4042] | 421 |
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| 422 | /*Now, figure out minimum of valuescopy: */
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| 423 | squaremin=pow(valuescopy[0],2);
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| 424 | for(i=1;i<numnodes;i++){
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| 425 | if(pow(valuescopy[i],2)<squaremin)squaremin=pow(valuescopy[i],2);
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| 426 | }
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| 427 | /*Assign output pointers:*/
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| 428 | *psquaremin=squaremin;
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| 429 | }
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| 430 | /*}}}*/
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[5017] | 431 | /*FUNCTION PentaVertexInput::ConstrainMin{{{1*/
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| 432 | void PentaVertexInput::ConstrainMin(double minimum){
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| 433 |
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| 434 | int i;
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| 435 | const int numgrids=6;
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| 436 |
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| 437 | for(i=0;i<numgrids;i++) if (values[i]<minimum) values[i]=minimum;
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| 438 | }
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| 439 | /*}}}*/
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[5513] | 440 | /*FUNCTION PentaVertexInput::InfinityNorm{{{1*/
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| 441 | double PentaVertexInput::InfinityNorm(void){
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| 442 |
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| 443 | /*Output*/
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| 444 | const int numgrids=6;
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| 445 | double norm=0;
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| 446 |
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| 447 | for(int i=0;i<numgrids;i++) if(fabs(values[i])>norm) norm=fabs(values[i]);
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| 448 | return norm;
|
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| 449 | }
|
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| 450 | /*}}}*/
|
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[4471] | 451 | /*FUNCTION PentaVertexInput::Scale{{{1*/
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[4047] | 452 | void PentaVertexInput::Scale(double scale_factor){
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| 453 |
|
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| 454 | int i;
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| 455 | const int numgrids=6;
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| 456 |
|
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| 457 | for(i=0;i<numgrids;i++)values[i]=values[i]*scale_factor;
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| 458 | }
|
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| 459 | /*}}}*/
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[4471] | 460 | /*FUNCTION PentaVertexInput::AXPY{{{1*/
|
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[4048] | 461 | void PentaVertexInput::AXPY(Input* xinput,double scalar){
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| 462 |
|
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| 463 | int i;
|
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| 464 | const int numgrids=6;
|
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| 465 | PentaVertexInput* xpentavertexinput=NULL;
|
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| 466 |
|
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| 467 | /*xinput is of the same type, so cast it: */
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[4050] | 468 | xpentavertexinput=(PentaVertexInput*)xinput;
|
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[4048] | 469 |
|
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[4174] | 470 | /*Carry out the AXPY operation depending on type:*/
|
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| 471 | switch(xinput->Enum()){
|
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[4048] | 472 |
|
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[4174] | 473 | case PentaVertexInputEnum:
|
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| 474 | for(i=0;i<numgrids;i++)this->values[i]=this->values[i]+scalar*xpentavertexinput->values[i];
|
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| 475 | return;
|
---|
| 476 |
|
---|
| 477 | default:
|
---|
| 478 | ISSMERROR("not implemented yet");
|
---|
| 479 | }
|
---|
| 480 |
|
---|
[4048] | 481 | }
|
---|
| 482 | /*}}}*/
|
---|
[4471] | 483 | /*FUNCTION PentaVertexInput::Constrain{{{1*/
|
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[4048] | 484 | void PentaVertexInput::Constrain(double cm_min, double cm_max){
|
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| 485 |
|
---|
| 486 | int i;
|
---|
| 487 | const int numgrids=6;
|
---|
| 488 |
|
---|
| 489 | if(!isnan(cm_min)) for(i=0;i<numgrids;i++)if (this->values[i]<cm_min)this->values[i]=cm_min;
|
---|
| 490 | if(!isnan(cm_max)) for(i=0;i<numgrids;i++)if (this->values[i]>cm_max)this->values[i]=cm_max;
|
---|
| 491 |
|
---|
| 492 | }
|
---|
| 493 | /*}}}*/
|
---|
[4471] | 494 | /*FUNCTION PentaVertexInput::Extrude{{{1*/
|
---|
[4274] | 495 | void PentaVertexInput::Extrude(void){
|
---|
| 496 |
|
---|
| 497 | int i;
|
---|
| 498 |
|
---|
| 499 | /*First 3 values copied on 3 last values*/
|
---|
| 500 | for(i=0;i<3;i++) this->values[3+i]=this->values[i];
|
---|
| 501 |
|
---|
| 502 | }
|
---|
| 503 | /*}}}*/
|
---|
[4471] | 504 | /*FUNCTION PentaVertexInput::VerticallyIntegrate{{{1*/
|
---|
| 505 | void PentaVertexInput::VerticallyIntegrate(Input* thickness_input){
|
---|
| 506 |
|
---|
| 507 | /*Intermediaries*/
|
---|
| 508 | int i;
|
---|
| 509 | const int numgrids = 6;
|
---|
| 510 | int num_thickness_values;
|
---|
| 511 | double *thickness_values = NULL;
|
---|
| 512 |
|
---|
| 513 | /*Check that input provided is a thickness*/
|
---|
[5103] | 514 | if (thickness_input->EnumType()!=ThicknessEnum) ISSMERROR("Input provided is not a Thickness (enum_type is %s)",EnumToString(thickness_input->EnumType()));
|
---|
[4471] | 515 |
|
---|
| 516 | /*Get Thickness value pointer*/
|
---|
| 517 | thickness_input->GetValuesPtr(&thickness_values,&num_thickness_values);
|
---|
| 518 |
|
---|
| 519 | /*vertically integrate depending on type:*/
|
---|
| 520 | switch(thickness_input->Enum()){
|
---|
| 521 |
|
---|
| 522 | case PentaVertexInputEnum:
|
---|
| 523 | for(i=0;i<3;i++){
|
---|
| 524 | this->values[i]=0.5*(this->values[i]+this->values[i+3]) * thickness_values[i];
|
---|
| 525 | this->values[i+3]=this->values[i];
|
---|
| 526 | }
|
---|
| 527 | return;
|
---|
| 528 |
|
---|
| 529 | default:
|
---|
| 530 | ISSMERROR("not implemented yet");
|
---|
| 531 | }
|
---|
| 532 | }
|
---|
| 533 | /*}}}*/
|
---|
| 534 | /*FUNCTION PentaVertexInput::PointwiseDivide{{{1*/
|
---|
| 535 | Input* PentaVertexInput::PointwiseDivide(Input* inputB){
|
---|
| 536 |
|
---|
| 537 | /*Ouput*/
|
---|
| 538 | PentaVertexInput* outinput=NULL;
|
---|
| 539 |
|
---|
| 540 | /*Intermediaries*/
|
---|
| 541 | int i;
|
---|
| 542 | PentaVertexInput *xinputB = NULL;
|
---|
| 543 | int B_numvalues;
|
---|
| 544 | double *B_values = NULL;
|
---|
| 545 | const int numgrids = 6;
|
---|
| 546 | double AdotBvalues[numgrids];
|
---|
| 547 |
|
---|
| 548 | /*Check that inputB is of the same type*/
|
---|
[5103] | 549 | if (inputB->Enum()!=PentaVertexInputEnum) ISSMERROR("Operation not permitted because inputB is of type %s",EnumToString(inputB->Enum()));
|
---|
[4471] | 550 | xinputB=(PentaVertexInput*)inputB;
|
---|
| 551 |
|
---|
| 552 | /*Create point wise sum*/
|
---|
| 553 | for(i=0;i<numgrids;i++){
|
---|
| 554 | ISSMASSERT(xinputB->values[i]!=0);
|
---|
| 555 | AdotBvalues[i]=this->values[i]/xinputB->values[i];
|
---|
| 556 | }
|
---|
| 557 |
|
---|
[4899] | 558 | /*Create new Penta vertex input (copy of current input)*/
|
---|
[4471] | 559 | outinput=new PentaVertexInput(this->enum_type,&AdotBvalues[0]);
|
---|
| 560 |
|
---|
| 561 | /*Return output pointer*/
|
---|
| 562 | return outinput;
|
---|
| 563 |
|
---|
| 564 | }
|
---|
| 565 | /*}}}*/
|
---|
[4546] | 566 | /*FUNCTION PentaVertexInput::GetVectorFromInputs{{{1*/
|
---|
[4048] | 567 | void PentaVertexInput::GetVectorFromInputs(Vec vector,int* doflist){
|
---|
| 568 |
|
---|
| 569 | const int numvertices=6;
|
---|
[4502] | 570 | VecSetValues(vector,numvertices,doflist,(const double*)this->values,INSERT_VALUES);
|
---|
[4048] | 571 |
|
---|
[4502] | 572 | } /*}}}*/
|
---|
[4546] | 573 | /*FUNCTION PentaVertexInput::GetValuesPtr{{{1*/
|
---|
[4057] | 574 | void PentaVertexInput::GetValuesPtr(double** pvalues,int* pnum_values){
|
---|
[4055] | 575 |
|
---|
| 576 | *pvalues=this->values;
|
---|
| 577 | *pnum_values=6;
|
---|
| 578 |
|
---|
| 579 | }
|
---|
| 580 | /*}}}*/
|
---|