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#include "gestionversion.h" |
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#include "mgopt_simp.h" |
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#include "mg_file.h" |
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#include "mg_export.h" |
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#include <string.h> |
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#include <math.h> |
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class SIMP_TETRA |
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{ |
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public: |
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FEM_ELEMENT3* tet; |
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double densite; |
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double new_densite; |
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int design; |
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double new_denergie; |
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double energie; |
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double denergie; |
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double volume; |
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int maille_niveau; |
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int indice; |
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double distance_ref; |
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double distance_ref2; |
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double centre[3]; |
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BOITE_3D get_boite_3D(void) |
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{ |
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return tet->get_boite_3D(); |
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}; |
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vector<SIMP_TETRA*> voisin; |
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vector<SIMP_TETRA*> voisin2; |
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unsigned long get_id(void) {return tet->get_id();}; |
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double distance(SIMP_TETRA* tet2) |
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{ |
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double dx=centre[0]-tet2->centre[0]; |
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double dy=centre[1]-tet2->centre[1]; |
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double dz=centre[2]-tet2->centre[2]; |
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return sqrt(dx*dx+dy*dy+dz*dz); |
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}; |
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}; |
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MGOPT_SIMP::MGOPT_SIMP():MGOPT() |
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{ |
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params.ajouter("f",0.3,"Fraction volumique de la methode SIMP"); |
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params.ajouter("rminc",0.,"0. Valeur de la carte de taille (si pas de maillage le parametre fichiercarte permet d'utiliser une carte de taille) sinon valeur de rmin pour le lissage de la compliance"); |
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params.ajouter("rmind",0.,"0. Valeur de la carte de taille (si pas de maillage le parametre fichiercarte permet d'utiliser une carte de taille) sinon valeur de rmin pour le lissage de la densite"); |
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params.ajouter("coefvoisinc",1.0,"Coefficient de multiplication de rminc"); |
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params.ajouter("coefvoisind",1.0,"Coefficient de multiplication de rmind"); |
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params.ajouter("nbrniveau",150.,"Nombre de matériaux utilisés"); |
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params.ajouter("p",3.,"Coefficient de penalite du module d'Young"); |
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params.ajouter("ro_void",0.001,"Densite minimale consideree comme nulle"); |
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params.ajouter("m",0.2,"Limite d'evolution de densité entre deux itérations"); |
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params.ajouter("eta",0.5,"Coefficent d'affectation du beta"); |
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params.ajouter("type_lissage",1.,"0. Pas de lissage 1. Lissage de la compliance 2. Lissage de la densité 3. Lissage de la compliance et de la densite"); |
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params.ajouter("lissage_densite",1.,"0. Complet 1. Derniere iteration"); |
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params.ajouter("type_lissage_densite",1.,"0. Distance 1. Distance pondéré 2. Gaussien 3. Gaussien pondéré"); |
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params.ajouter("type_lissage_compliance",1.,"0. Sigmund 1997 1. Sigmund 2007"); |
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params.ajouter("kc",1.0,"Ponderation de la distance dans le lissage de la compliance"); |
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params.ajouter("kd",1.0,"Ponderation de la distance dans le lissage de la densité"); |
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params.ajouter("convergence_lagrange",0.1,"Critere de convergence de la recherche du multiplicateur de Lagrange en \%"); |
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params.ajouter("iter_max",50.,"Nombre d'iteration maximale dans le processus SIMP"); |
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params.ajouter("critere_convergence",0.5,"Critere de convergence de la méthode SIMP en \%"); |
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params.ajouter("ro_min",0.8,"Seuil de conservation des éléments"); |
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params.ajouter("iter_vue",0.,"generation d'un fihcier gmsh tous les iter_vue. 0 pas de generation"); |
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} |
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MGOPT_SIMP::MGOPT_SIMP(MGOPT_SIMP &mdd):MGOPT(mdd) |
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{ |
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} |
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MGOPT_SIMP::~MGOPT_SIMP() |
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{ |
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} |
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void MGOPT_SIMP::optimisation(FEM_MAILLAGE* fem) |
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MG_VOLUME* vol=fem->get_mg_geometrie()->get_mg_volume(0); |
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affiche((char*)" Initialisation"); |
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vector<SIMP_TETRA*> lsttet; |
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double f=params.get_valeur("f"); |
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double rminc=params.get_valeur("rminc"); |
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double rmind=params.get_valeur("rmind"); |
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if (((rminc<1e-16)||(rmind<1e-16)) && (carte==NULL)) |
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{ |
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affiche((char*)" Lecture de la carte de taille"); |
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carte=new FCT_GENERATEUR_3D<4>; |
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std::string fichiercarte=params.get_nom("fichiercarte"); |
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carte->lire((char *)fichiercarte.c_str()); |
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} |
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double volume_tot; |
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double volume_design=0; |
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double volume_non_design=0; |
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double unite=fem->get_mg_maillage()->get_mg_geometrie()->get_valeur_unite(); |
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LISTE_FEM_ELEMENT3::iterator it; |
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int ntet=0; |
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for (FEM_ELEMENT3* tet=fem->get_premier_element3(it);tet!=NULL;tet=fem->get_suivant_element3(it)) |
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{ |
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SIMP_TETRA* tet2=new SIMP_TETRA; |
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tet2->tet=tet; |
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tet2->tet->change_numero(ntet); |
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ntet++; |
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tet2->centre[0]=0.; |
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tet2->centre[1]=0.; |
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tet2->centre[2]=0.; |
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int nbnoeud=tet->get_nb_fem_noeud(); |
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for (int i=0;i<nbnoeud;i++) |
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{ |
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tet2->centre[0]=tet2->centre[0]+tet->get_fem_noeud(i)->get_x()*unite; |
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tet2->centre[1]=tet2->centre[1]+tet->get_fem_noeud(i)->get_y()*unite; |
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tet2->centre[2]=tet2->centre[2]+tet->get_fem_noeud(i)->get_z()*unite; |
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} |
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tet2->centre[0]=tet2->centre[0]/nbnoeud; |
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tet2->centre[1]=tet2->centre[1]/nbnoeud; |
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tet2->centre[2]=tet2->centre[2]/nbnoeud; |
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int lig,col; |
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double jac[9],uv[3]={1./4.,1./4.,1./4.}; |
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tet2->volume=1./6.*tet->get_jacobien(jac,uv,lig,col,unite); |
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tet2->distance_ref=rminc; |
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tet2->distance_ref2=rmind; |
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double xyz[3]={tet2->centre[0],tet2->centre[1],tet2->centre[2]}; |
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double val[9]; |
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if (tet2->distance_ref<1e-16) |
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{ |
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carte->evaluer(xyz,val); |
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tet2->distance_ref=1./sqrt(val[0]); |
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} |
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if (tet2->distance_ref2<1e-16) |
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{ |
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carte->evaluer(xyz,val); |
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tet2->distance_ref2=1./sqrt(val[0]); |
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} |
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tet2->distance_ref=params.get_valeur("coefvoisinc")*tet2->distance_ref*unite; |
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tet2->distance_ref2=params.get_valeur("coefvoisind")*tet2->distance_ref2*unite; |
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if (((MG_TETRA*)tet->get_mg_element_maillage())->get_origine()!=IMPOSE) |
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{ |
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tet2->design=1; |
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tet2->densite=f; |
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volume_design=volume_design+tet2->volume; |
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} |
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else |
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{ |
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tet2->design=0; |
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tet2->densite=1.; |
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volume_non_design=volume_non_design+tet2->volume; |
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} |
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lsttet.insert(lsttet.end(),tet2); |
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} |
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volume_tot=volume_design+volume_non_design; |
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double volumemoyen=volume_tot/fem->get_nb_fem_element3(); |
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affiche((char*)" Recherche de voisins"); |
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int nbsimptet=lsttet.size(); |
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for (int i=0;i<nbsimptet;i++) |
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{ |
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SIMP_TETRA* tet=lsttet[i]; |
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if (tet->design==0) continue; |
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ajouter_voisin(i,tet,lsttet); |
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} |
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int nbiteration=1; |
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int ok=0; |
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int niveaumax=(int)params.get_valeur("nbrniveau"); |
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int itervue=(int)params.get_valeur("iter_vue"); |
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double p=params.get_valeur("p"); |
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vector<double> Ctotiter; |
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while (ok==0) |
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{ |
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if (nbiteration>params.get_valeur("iter_max")) break; |
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char message[255]; |
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sprintf(message," Iteration %d",nbiteration); |
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affiche(message); |
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vector<FEM_ELEMENT3*> *lstniveau=new vector<FEM_ELEMENT3*>[niveaumax+1]; |
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double densmin = params.get_valeur("ro_void"); |
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for (int i=0;i<nbsimptet;i++) |
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{ |
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SIMP_TETRA* tet=lsttet[i]; |
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tet->maille_niveau=(int)((tet->densite-densmin)*niveaumax/(1.-densmin))+1; |
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if (tet->maille_niveau>niveaumax) tet->maille_niveau=niveaumax; |
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lstniveau[tet->maille_niveau].insert(lstniveau[tet->maille_niveau].end(),tet->tet); |
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} |
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MG_EXPORT exp; |
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int version_aster=params.get_valeur("version_aster"); |
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exp.aster(vol,fem,nometude,2,(char*)"00000001",p,niveaumax,lstniveau); |
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delete [] lstniveau; |
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affiche((char*)" Calcul aster"); |
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char nomfichiertmp[255]; |
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sprintf(nomfichiertmp,"%s/as_run %s.export 1>aster.log 2>&1",getenv("PATHASTER"),nometude); |
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int code=system(nomfichiertmp); |
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if (code!=0) |
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{ |
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sprintf(nomfichiertmp," Code de sortie aster : %d",code); |
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affiche(nomfichiertmp); |
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} |
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affiche((char*)" Analyse resultat"); |
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recupere_energie(lsttet); |
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double Ctot=0; |
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for (int i=0;i<nbsimptet;i++) |
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{ |
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SIMP_TETRA* tet=lsttet[i]; |
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tet->denergie= -p*2.*tet->energie/tet->densite; |
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Ctot=Ctot+2.*tet->energie; |
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} |
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Ctotiter.insert(Ctotiter.end(),Ctot); |
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sprintf(message," Compliance %le",Ctot); |
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affiche(message); |
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if (nbiteration!=1) |
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{ |
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int nb=Ctotiter.size(); |
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double c1=Ctotiter[nb-2]; |
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double c2=Ctotiter[nb-1]; |
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double ecart=fabs((c2-c1)/c1)*100.; |
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if (ecart<params.get_valeur("critere_convergence")) ok=1; |
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sprintf(message," Ecart %lf%%",ecart); |
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affiche(message); |
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} |
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// lissage compliance |
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double kc=params.get_valeur("kc"); |
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int type_lissage =(int)params.get_valeur("type_lissage"); |
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int lissage_densite =(int)params.get_valeur("lissage_densite"); |
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int type_lissage_densite =(int)params.get_valeur("type_lissage_densite"); |
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int type_lissage_compliance=(int)params.get_valeur("type_lissage_compliance"); |
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for (int i=0;i<nbsimptet;i++) |
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{ |
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SIMP_TETRA* tet=lsttet[i]; |
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if ((type_lissage==0) || (type_lissage==2)) |
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tet->new_denergie=tet->denergie; |
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if ((type_lissage==1) || (type_lissage==3)) |
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{ |
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if (tet->design == 1) |
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{ |
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double hi= pow(tet->distance_ref,kc); |
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double hisensi = hi*tet->densite*tet->denergie; |
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if (type_lissage_compliance==1) |
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{ |
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hi=hi/tet->volume; |
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hisensi=hisensi/max(volumemoyen*0.00001,tet->volume); |
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} |
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int nbvoisin=tet->voisin.size(); |
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for (int j = 0 ; j<nbvoisin ; j++) |
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{ |
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SIMP_TETRA* tet2=tet->voisin[j]; |
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if (tet2->design == 1) |
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{ |
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double dist=tet->distance(tet2); |
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double hj =fabs(pow(tet->distance_ref - dist,kc)); |
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if (type_lissage_compliance==0) |
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{ |
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hisensi=hisensi+tet2->densite*hj*tet2->denergie; |
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hi=hi+hj; |
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} |
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if (type_lissage_compliance==1) |
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{ |
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hisensi=hisensi+tet2->densite*hj*tet2->denergie/max(volumemoyen,tet2->volume); |
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hi=hi+hj/tet2->volume; |
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} |
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hisensi=hisensi+tet2->densite*hj*tet2->denergie; |
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hi=hi+hj; |
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} |
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} |
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tet->new_denergie = hisensi/hi/max(tet->densite,densmin); |
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} |
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else tet->new_denergie=tet->denergie; |
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} |
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} |
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// application formule pas encore connue |
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double l1= 1e-8 ; |
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double l2= 1e8; |
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double m=params.get_valeur("m"); |
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double eta=params.get_valeur("eta"); |
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francois |
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double convergence_lagrange=params.get_valeur("convergence_lagrange"); |
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double critere_densite = 0.0; |
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int oklagrange=0; |
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int compteurlagrange=0; |
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while (oklagrange==0) |
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{ |
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compteurlagrange++; |
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double lmid = 0.5*(l2+l1); |
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critere_densite = 0.0; |
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for (int i=0;i<nbsimptet;i++) |
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{ |
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SIMP_TETRA* tet=lsttet[i]; |
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if (tet->design==1) |
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{ |
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double x1 = tet->densite+m; |
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double beta=-tet->new_denergie/lmid/tet->volume; |
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double x2 = tet->densite*pow(beta,eta); |
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double x3 = min(x1,x2); |
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double x4 = 1.; |
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double x5 = min(x3,x4); |
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double x6 = tet->densite-m; |
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double x7 = max(x5,x6); |
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double x8 = densmin; |
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francois |
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tet->new_densite = max(x7,x8); |
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francois |
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critere_densite = critere_densite + tet->new_densite*tet->volume; |
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} |
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francois |
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else |
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{ |
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tet->new_densite=1.; |
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} |
310 |
francois |
242 |
} |
311 |
francois |
247 |
if (critere_densite - f*volume_design > 0.) |
312 |
francois |
239 |
l1=lmid; |
313 |
|
|
else |
314 |
|
|
l2=lmid; |
315 |
francois |
247 |
if (100.*fabs(critere_densite- f*volume_design )/(f*volume_design)<convergence_lagrange) oklagrange=1; |
316 |
francois |
243 |
if (compteurlagrange>500) oklagrange=2; |
317 |
francois |
242 |
} |
318 |
francois |
247 |
if (oklagrange==1) sprintf(message," Convergence multiplicateur lagrange %le%%",100.*(critere_densite- f*volume_design )/(f*volume_design)); |
319 |
francois |
242 |
if (oklagrange==2) sprintf(message," Divergence multiplicateur lagrange %le %le",l1,l2); |
320 |
|
|
affiche(message); |
321 |
francois |
247 |
// lissage de densite. |
322 |
|
|
double kd=params.get_valeur("kd"); |
323 |
francois |
239 |
for (int i=0;i<nbsimptet;i++) |
324 |
francois |
242 |
{ |
325 |
francois |
239 |
SIMP_TETRA* tet=lsttet[i]; |
326 |
francois |
247 |
if ((type_lissage==2) || (type_lissage==3)) |
327 |
|
|
{ |
328 |
|
|
if (((lissage_densite==1)&&(ok==1)) || (lissage_densite==0)) |
329 |
|
|
{ |
330 |
|
|
if (tet->design == 1) |
331 |
|
|
{ |
332 |
|
|
double widensite=0.; |
333 |
|
|
double wi= 0.; |
334 |
|
|
wi=poid_lissage(0.,tet->distance_ref2,kd,tet->volume,type_lissage_densite); |
335 |
|
|
widensite = wi*tet->new_densite; |
336 |
|
|
int nbvoisin=tet->voisin2.size(); |
337 |
|
|
for (int j = 0 ; j<nbvoisin ; j++) |
338 |
|
|
{ |
339 |
|
|
SIMP_TETRA* tet2=tet->voisin2[j]; |
340 |
|
|
if (tet2->design == 1) |
341 |
|
|
{ |
342 |
|
|
double dist=tet->distance(tet2); |
343 |
|
|
double wj=poid_lissage(dist,tet->distance_ref2,kd,tet2->volume,type_lissage_densite); |
344 |
|
|
wi = wi+wj; |
345 |
|
|
widensite = widensite + tet2->new_densite*wj; |
346 |
|
|
} |
347 |
|
|
} |
348 |
|
|
tet->densite = widensite/wi; |
349 |
|
|
} |
350 |
|
|
else tet->densite=tet->new_densite; |
351 |
|
|
} |
352 |
|
|
else tet->densite=tet->new_densite; |
353 |
|
|
} |
354 |
|
|
else tet->densite=tet->new_densite; |
355 |
francois |
242 |
} |
356 |
francois |
339 |
if (itervue!=0) |
357 |
|
|
if (nbiteration%itervue==0) |
358 |
|
|
{ |
359 |
|
|
affiche((char*)" Sauvegarde résultat iteration"); |
360 |
cuillier |
341 |
sprintf(message,"%s_densite_iter%d.soltmp",nometudesortie,nbiteration); |
361 |
francois |
339 |
//int nbsolution=gestd->get_nb_fem_solution(); |
362 |
|
|
//for (int i=nbsolution;i>0;i--) |
363 |
|
|
//gestd->supprimer_fem_solution_du_gestionnaire(i-1); |
364 |
francois |
342 |
char message2[50]; |
365 |
|
|
sprintf(message2,"Iteration %d",nbiteration); |
366 |
|
|
FEM_SOLUTION* solution=new FEM_SOLUTION(fem,1,message,fem->get_nb_fem_element3(),message2,ENTITE_ELEMENT3); |
367 |
francois |
339 |
gestd->ajouter_fem_solution(solution); |
368 |
|
|
sprintf(message,"Densite"); |
369 |
|
|
solution->change_legende(0,message); |
370 |
|
|
for (int i=0;i<nbsimptet;i++) |
371 |
|
|
{ |
372 |
|
|
SIMP_TETRA* tet=lsttet[i]; |
373 |
|
|
solution->ecrire(i,0,tet->densite); |
374 |
|
|
} |
375 |
|
|
} |
376 |
francois |
239 |
nbiteration++; |
377 |
francois |
339 |
|
378 |
|
|
|
379 |
francois |
239 |
} |
380 |
francois |
339 |
if (itervue!=0) |
381 |
|
|
{ |
382 |
|
|
affiche((char*)" Sauvegarde GMSH résultats iterations"); |
383 |
|
|
MG_EXPORT exp; |
384 |
|
|
char nomfichier[500]; |
385 |
|
|
sprintf(nomfichier,"%s_iterations",nometudesortie); |
386 |
|
|
exp.gmsh(fem,nomfichier); |
387 |
|
|
} |
388 |
francois |
247 |
double seuil=params.get_valeur("ro_min"); |
389 |
francois |
272 |
affiche((char*)" Ecriture des donnees finales"); |
390 |
francois |
239 |
char message[255]; |
391 |
francois |
244 |
sprintf(message,"%s.compliance",nometudesortie); |
392 |
francois |
239 |
FILE *out=fopen(message,"wt"); |
393 |
francois |
271 |
time_t heurefin=time(NULL); |
394 |
|
|
struct tm tfin = *localtime(&heurefin); |
395 |
|
|
fprintf(out,"*****************************************************\n"); |
396 |
|
|
fprintf(out," Optimisateur de topologie\n"); |
397 |
|
|
fprintf(out," ERICCA - UQTR\n"); |
398 |
|
|
fprintf(out,"*****************************************************\n"); |
399 |
|
|
fprintf(out," Etude : %s\n",nometude); |
400 |
francois |
274 |
fprintf(out," Date : %02u-%02u-%04u\n", tdebut.tm_mday, tdebut.tm_mon+1, 1900 + tdebut.tm_year); |
401 |
francois |
271 |
fprintf(out," Heure debut : %02u:%02u:%02u\n", tdebut.tm_hour, tdebut.tm_min, tdebut.tm_sec); |
402 |
|
|
fprintf(out," Heure fin : %02u:%02u:%02u\n", tfin.tm_hour, tfin.tm_min, tfin.tm_sec); |
403 |
|
|
fprintf(out," Parametres : \n"); |
404 |
|
|
int nbparam=params.get_nb(); |
405 |
|
|
for (int i=0;i<nbparam;i++) |
406 |
|
|
{ |
407 |
|
|
fprintf(out," %s=%lf\n",params.get_nom(i).c_str(),params.get_valeur(i)); |
408 |
|
|
} |
409 |
|
|
fprintf(out,"*****************************************************\n"); |
410 |
|
|
fprintf(out," Compliance après chaque itération\n"); |
411 |
|
|
fprintf(out,"*****************************************************\n"); |
412 |
francois |
239 |
for (int i=0;i<Ctotiter.size();i++) |
413 |
|
|
fprintf(out,"%le\n",Ctotiter[i]); |
414 |
francois |
245 |
double crit1=0.; |
415 |
|
|
double crit2=0.; |
416 |
|
|
double crit3=0.; |
417 |
|
|
double critv1[10]={0.,0.,0.,0.,0.,0.,0.,0.,0.,0.}; |
418 |
|
|
double critv2[10]={0.,0.,0.,0.,0.,0.,0.,0.,0.,0.}; |
419 |
|
|
for (int i=0;i<nbsimptet;i++) |
420 |
|
|
{ |
421 |
|
|
SIMP_TETRA* tet=lsttet[i]; |
422 |
|
|
if (tet->design==1) |
423 |
|
|
{ |
424 |
|
|
crit1=crit1+tet->densite*tet->volume; |
425 |
|
|
if (tet->densite>seuil) |
426 |
|
|
{ |
427 |
|
|
crit2=crit2+tet->densite*tet->volume; |
428 |
|
|
crit3=crit3+tet->volume; |
429 |
|
|
} |
430 |
|
|
for (int j=1;j<10;j++) |
431 |
|
|
if (tet->densite>0.1*j) |
432 |
|
|
{ |
433 |
|
|
critv1[j]=critv1[j]+tet->densite*tet->volume; |
434 |
|
|
critv2[j]=critv2[j]+tet->volume; |
435 |
|
|
} |
436 |
|
|
} |
437 |
|
|
} |
438 |
francois |
271 |
fprintf(out,"*****************************************************\n"); |
439 |
|
|
fprintf(out," Résultat\n"); |
440 |
|
|
fprintf(out,"*****************************************************\n"); |
441 |
francois |
245 |
fprintf(out,"Volume du design : %le \n",volume_design); |
442 |
francois |
247 |
fprintf(out,"Objectif du volume de design : %le \n",volume_design*f); |
443 |
francois |
245 |
fprintf(out,"Volume de design obtenu : %le \n",crit1); |
444 |
|
|
fprintf(out,"Volume de design obtenu avec le seuil: %le \n",crit2); |
445 |
|
|
fprintf(out,"Volume reel de design obtenu avec le seuil: %le \n\n",crit3); |
446 |
|
|
fprintf(out," : Volume : Volume reel : Objectif\n"); |
447 |
|
|
fprintf(out," : %le : %le : %le\n",volume_design,volume_design,volume_design); |
448 |
|
|
for (int j=1;j<10;j++) |
449 |
francois |
247 |
fprintf(out,"Volume de design obtenu avec le seuil de %.1f : %le : %le : %le \n",j*0.1,critv1[j],critv2[j],volume_design*f); |
450 |
francois |
245 |
fprintf(out,"*************************************************************\n"); |
451 |
|
|
fclose(out); |
452 |
francois |
239 |
LISTE_FEM_NOEUD::iterator itnoeud; |
453 |
|
|
int nbfemnoeud=fem->get_nb_fem_noeud(); |
454 |
francois |
242 |
/*double *nume=new double[nbfemnoeud]; |
455 |
francois |
239 |
double *deno=new double[nbfemnoeud]; |
456 |
|
|
int cpt=0; |
457 |
|
|
for (FEM_NOEUD *nd=fem->get_premier_noeud(itnoeud);nd!=NULL;nd=fem->get_suivant_noeud(itnoeud)) |
458 |
|
|
{ |
459 |
|
|
nd->change_numero(cpt); |
460 |
|
|
nume[cpt]=0.; |
461 |
|
|
deno[cpt]=0.; |
462 |
|
|
cpt++; |
463 |
francois |
242 |
}*/ |
464 |
francois |
243 |
sprintf(message,"%s_densite1.sol",nometudesortie); |
465 |
francois |
241 |
int nbsolution=gestd->get_nb_fem_solution(); |
466 |
francois |
242 |
for (int i=nbsolution;i>0;i--) |
467 |
cuillier |
341 |
{ |
468 |
francois |
342 |
FEM_SOLUTION* sol=gestd->get_fem_solution(i-1); |
469 |
cuillier |
341 |
std::string nom=sol->get_nom_fichier(); |
470 |
|
|
char message[500],extension[500]; |
471 |
|
|
sprintf(message,"%s",nom.c_str()); |
472 |
|
|
char *p=strrchr(message,'.'); |
473 |
|
|
strncpy(extension,p,strlen(message)+message-p); |
474 |
|
|
if (strcmp(extension,".soltmp")==0) |
475 |
|
|
gestd->supprimer_fem_solution(i-1); |
476 |
|
|
else gestd->supprimer_fem_solution_du_gestionnaire(i-1); |
477 |
|
|
} |
478 |
|
|
|
479 |
|
|
|
480 |
francois |
309 |
FEM_SOLUTION* solution=new FEM_SOLUTION(fem,1,message,fem->get_nb_fem_element3(),"Optimisation",ENTITE_ELEMENT3); |
481 |
francois |
239 |
gestd->ajouter_fem_solution(solution); |
482 |
|
|
solution->change_legende(0,"Densite"); |
483 |
|
|
for (int i=0;i<nbsimptet;i++) |
484 |
|
|
{ |
485 |
|
|
SIMP_TETRA* tet=lsttet[i]; |
486 |
|
|
if (tet->design==1) |
487 |
|
|
if (tet->densite>seuil) |
488 |
|
|
((MG_TETRA*)tet->tet->get_mg_element_maillage())->change_origine(OPTIMISE); |
489 |
|
|
else |
490 |
|
|
((MG_TETRA*)tet->tet->get_mg_element_maillage())->change_origine(MAILLEUR_AUTO); |
491 |
|
|
solution->ecrire(i,0,tet->densite); |
492 |
francois |
242 |
/*for (int j=0;j<tet->tet->get_nb_fem_noeud();j++) |
493 |
francois |
239 |
{ |
494 |
|
|
FEM_NOEUD* noeud=tet->tet->get_fem_noeud(j); |
495 |
|
|
nume[noeud->get_numero()]=nume[noeud->get_numero()]+tet->volume*tet->densite; |
496 |
|
|
deno[noeud->get_numero()]=deno[noeud->get_numero()]+tet->volume; |
497 |
francois |
242 |
} */ |
498 |
francois |
239 |
} |
499 |
francois |
243 |
/*sprintf(message,"%s_densite2.sol",nometudesortie); |
500 |
francois |
239 |
FEM_SOLUTION* solution2=new FEM_SOLUTION(fem,1,message,fem->get_nb_fem_noeud(),"Optimisation",ENTITE_NOEUD); |
501 |
|
|
gestd->ajouter_fem_solution(solution2); |
502 |
|
|
solution2->change_legende(0,"Densite"); |
503 |
|
|
cpt=0; |
504 |
|
|
for (FEM_NOEUD *nd=fem->get_premier_noeud(itnoeud);nd!=NULL;nd=fem->get_suivant_noeud(itnoeud)) |
505 |
|
|
{ |
506 |
|
|
solution2->ecrire(cpt,0,nume[cpt]/deno[cpt]); |
507 |
|
|
cpt++; |
508 |
|
|
} |
509 |
|
|
delete [] deno; |
510 |
francois |
242 |
delete [] nume;*/ |
511 |
francois |
239 |
int nb=lsttet.size(); |
512 |
|
|
for (int i=0;i<nb;i++) delete lsttet[i]; |
513 |
|
|
} |
514 |
|
|
|
515 |
francois |
247 |
double MGOPT_SIMP::poid_lissage(double dist,double distref,double k,double volume,int type) |
516 |
|
|
{ |
517 |
|
|
double wi; |
518 |
|
|
if (type==0) wi=pow(distref-dist,k); |
519 |
|
|
if (type==1) wi=pow(distref-dist,k)*volume; |
520 |
|
|
if (type==2) wi=exp(-dist*dist/2./distref/distref/9.)/2./M_PI/(distref/3.); |
521 |
|
|
if (type==3) wi=volume*exp(-dist*dist/2./distref/distref/9.)/2./M_PI/(distref/3.); |
522 |
|
|
return fabs(wi); |
523 |
|
|
|
524 |
|
|
} |
525 |
francois |
239 |
|
526 |
francois |
240 |
void MGOPT_SIMP::adapte_resultat(char *nomgestd,char *nomparam) |
527 |
|
|
{ |
528 |
|
|
if (nomparam!=NULL) lire_params(nomparam); |
529 |
francois |
272 |
affiche((char*)""); |
530 |
|
|
affiche((char*)"*************************"); |
531 |
|
|
affiche((char*)"Optimisation de topologie"); |
532 |
|
|
affiche((char*)"*************************"); |
533 |
|
|
affiche((char*)""); |
534 |
|
|
affiche((char*)""); |
535 |
|
|
affiche((char*)"Changement du seuil dans les resultats"); |
536 |
francois |
240 |
double seuil=params.get_valeur("seuil"); |
537 |
|
|
gestd=new MG_FILE(nomgestd); |
538 |
|
|
FEM_MAILLAGE* fem=gestd->get_fem_maillage(0); |
539 |
|
|
FEM_SOLUTION* solution=gestd->get_fem_solution(0); |
540 |
|
|
solution->active_solution(0); |
541 |
francois |
309 |
LISTE_FEM_ELEMENT3::iterator it; |
542 |
|
|
for (FEM_ELEMENT3 *tet=fem->get_premier_element3(it);tet!=NULL;tet=fem->get_suivant_element3(it)) |
543 |
francois |
240 |
{ |
544 |
|
|
if (((MG_TETRA*)tet->get_mg_element_maillage())->get_origine()!=IMPOSE) |
545 |
|
|
if (tet->get_solution()>seuil) |
546 |
|
|
((MG_TETRA*)tet->get_mg_element_maillage())->change_origine(OPTIMISE); |
547 |
|
|
else |
548 |
|
|
((MG_TETRA*)tet->get_mg_element_maillage())->change_origine(MAILLEUR_AUTO); |
549 |
|
|
|
550 |
|
|
} |
551 |
francois |
272 |
affiche((char*)"Enregistrement"); |
552 |
francois |
240 |
gestd->enregistrer(nomgestd); |
553 |
francois |
272 |
affiche((char*)"Enregistrement sous GMSH"); |
554 |
francois |
245 |
char *p=strchr(nomgestd,'.'); |
555 |
|
|
strncpy(nometude,nomgestd,p-nomgestd); |
556 |
|
|
nometude[p-nomgestd]=0; |
557 |
|
|
MG_EXPORT exp; |
558 |
|
|
char nomfichier[500]; |
559 |
|
|
sprintf(nomfichier,"%s_mg",nometude); |
560 |
|
|
exp.gmsh(fem->get_mg_maillage(),nomfichier); |
561 |
|
|
sprintf(nomfichier,"%s_fem",nometude); |
562 |
|
|
exp.gmsh(fem,nomfichier); |
563 |
francois |
272 |
affiche((char*)"Fin"); |
564 |
francois |
240 |
} |
565 |
francois |
239 |
|
566 |
|
|
|
567 |
|
|
void MGOPT_SIMP::recupere_energie(vector<class SIMP_TETRA*> lsttet) |
568 |
|
|
{ |
569 |
|
|
char message[750]; |
570 |
|
|
sprintf(message,"%s.resu",nometude); |
571 |
|
|
FILE* in=fopen(message,"rt"); |
572 |
|
|
int fin=0; |
573 |
|
|
do |
574 |
|
|
{ |
575 |
francois |
276 |
char* res=fgets(message,750,in); |
576 |
francois |
239 |
if (feof(in)) fin=1; |
577 |
|
|
char mot1[100]; |
578 |
|
|
char mot2[100]; |
579 |
|
|
char mot3[100]; |
580 |
|
|
char mot4[100]; |
581 |
|
|
char mot5[100]; |
582 |
|
|
char mot6[100]; |
583 |
|
|
char mot7[100]; |
584 |
|
|
char mot8[100]; |
585 |
|
|
char mot9[100]; |
586 |
|
|
char mot10[100]; |
587 |
|
|
int numlu=sscanf(message,"%s %s %s %s %s %s %s %s %s %s",mot1,mot2,mot3,mot4,mot5,mot6,mot7,mot8,mot9,mot10); |
588 |
|
|
if (numlu>9) |
589 |
|
|
if (strcmp(mot1,"CHAMP")==0) |
590 |
|
|
if (strcmp(mot2,"PAR")==0) |
591 |
|
|
if (strcmp(mot3,"ELEMENT")==0) |
592 |
|
|
if (strcmp(mot4,"CONSTANT")==0) |
593 |
|
|
if (strcmp(mot5,"SUR")==0) |
594 |
francois |
322 |
if (strcmp(mot6,"ELEMENT")==0) |
595 |
francois |
239 |
if (strcmp(mot7,"DE")==0) |
596 |
|
|
if (strcmp(mot8,"NOM")==0) |
597 |
|
|
if (strcmp(mot9,"SYMBOLIQUE")==0) |
598 |
francois |
322 |
if (strcmp(mot10,"ENERGIE")==0) |
599 |
francois |
239 |
{ |
600 |
|
|
int fin2=0; |
601 |
|
|
int passe=0; |
602 |
|
|
int nbelement=0; |
603 |
|
|
do |
604 |
|
|
{ |
605 |
|
|
char message[750]; |
606 |
francois |
276 |
char* res=fgets(message,750,in); |
607 |
francois |
239 |
char mot1[500]; |
608 |
|
|
char mot2[500]; |
609 |
|
|
int numlu=sscanf(message,"%s %s",mot1,mot2); |
610 |
|
|
int decalage; |
611 |
|
|
if ((numlu==2) && (strcmp(mot2,"TOTALE")==0)) |
612 |
|
|
{ |
613 |
|
|
char *p=strchr(mot1,'M')+1; |
614 |
|
|
int num=atoi(p); |
615 |
|
|
if (passe==0) {passe=1;decalage=num;} |
616 |
francois |
276 |
char* res=fgets(message,750,in); |
617 |
francois |
239 |
double val; |
618 |
|
|
sscanf(message,"%lf",&val); |
619 |
|
|
lsttet[num-decalage]->energie=val; |
620 |
|
|
nbelement++; |
621 |
|
|
} |
622 |
|
|
if (nbelement == lsttet.size()) {fin2=1;fin=0;} |
623 |
|
|
} |
624 |
|
|
|
625 |
|
|
while (fin2==0); |
626 |
|
|
} |
627 |
|
|
} |
628 |
|
|
while (fin==0); |
629 |
|
|
fclose(in); |
630 |
|
|
} |
631 |
|
|
|
632 |
|
|
|
633 |
|
|
|
634 |
|
|
void MGOPT_SIMP::ajouter_voisin(int i,SIMP_TETRA* tet,vector<SIMP_TETRA*> &lst) |
635 |
|
|
{ |
636 |
|
|
tet->indice=i; |
637 |
|
|
int nbnoeud=tet->tet->get_nb_fem_noeud(); |
638 |
|
|
int correspondance[4]; |
639 |
|
|
if (nbnoeud==4) |
640 |
|
|
{ |
641 |
|
|
correspondance[0]=0; |
642 |
|
|
correspondance[1]=1; |
643 |
|
|
correspondance[2]=2; |
644 |
|
|
correspondance[3]=3; |
645 |
|
|
} |
646 |
|
|
if (nbnoeud==10) |
647 |
|
|
{ |
648 |
|
|
correspondance[0]=0; |
649 |
|
|
correspondance[1]=2; |
650 |
|
|
correspondance[2]=4; |
651 |
|
|
correspondance[3]=9; |
652 |
|
|
} |
653 |
|
|
SIMP_TETRA* tetcour=tet; |
654 |
|
|
int ok=0; |
655 |
|
|
int compteur=0; |
656 |
francois |
247 |
vector<SIMP_TETRA*>& lstvoisin=tet->voisin; |
657 |
|
|
if (tet->distance_ref<tet->distance_ref2) |
658 |
|
|
lstvoisin=tet->voisin2; |
659 |
francois |
239 |
while (ok==0) |
660 |
|
|
{ |
661 |
|
|
for (int j=0;j<4;j++) |
662 |
|
|
{ |
663 |
|
|
int num=correspondance[j]; |
664 |
|
|
FEM_NOEUD *noeud=tetcour->tet->get_fem_noeud(num); |
665 |
francois |
309 |
int nbtetra=noeud->get_lien_element3()->get_nb(); |
666 |
francois |
239 |
for (int k=0;k<nbtetra;k++) |
667 |
|
|
{ |
668 |
francois |
309 |
FEM_ELEMENT3* ftet=noeud->get_lien_element3()->get(k); |
669 |
francois |
239 |
SIMP_TETRA* stet=lst[ftet->get_numero()]; |
670 |
|
|
if (stet->indice!=i) |
671 |
|
|
{ |
672 |
|
|
stet->indice=i; |
673 |
francois |
247 |
double dist=tet->distance(stet); |
674 |
|
|
if (dist<tet->distance_ref) |
675 |
francois |
239 |
tet->voisin.insert(tet->voisin.end(),stet); |
676 |
francois |
247 |
if (dist<tet->distance_ref2) |
677 |
|
|
tet->voisin2.insert(tet->voisin2.end(),stet); |
678 |
francois |
239 |
} |
679 |
|
|
} |
680 |
|
|
} |
681 |
francois |
247 |
if (compteur>=lstvoisin.size()) ok=1; |
682 |
francois |
239 |
else |
683 |
|
|
{ |
684 |
francois |
247 |
tetcour=lstvoisin[compteur]; |
685 |
francois |
239 |
compteur++; |
686 |
|
|
} |
687 |
francois |
247 |
|
688 |
francois |
239 |
} |
689 |
|
|
|
690 |
francois |
274 |
} |