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francois |
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//------------------------------------------------------------ |
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//------------------------------------------------------------ |
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// MAGiC |
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// Jean Christophe Cuilli�re et Vincent FRANCOIS |
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// D�partement de G�nie M�canique - UQTR |
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//------------------------------------------------------------ |
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// Le projet MAGIC est un projet de recherche du d�partement |
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// de g�nie m�canique de l'Universit� du Qu�bec � |
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// Trois Rivi�res |
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// Les librairies ne peuvent �tre utilis�es sans l'accord |
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// des auteurs (contact : francois@uqtr.ca) |
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//------------------------------------------------------------ |
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//------------------------------------------------------------ |
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// |
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// stcylindrical.cpp |
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// |
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//------------------------------------------------------------ |
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//------------------------------------------------------------ |
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// COPYRIGHT 2000 |
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// Version du 02/03/2006 � 11H24 |
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//------------------------------------------------------------ |
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//------------------------------------------------------------ |
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#include "gestionversion.h" |
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#include "stcylindrical.h" |
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#include "st_gestionnaire.h" |
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#include "constantegeo.h" |
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#include <math.h> |
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ST_CYLINDRICAL::ST_CYLINDRICAL(long LigneCourante,std::string idori,long axis2,double ray):ST_SURFACE(LigneCourante,idori),id_axis2_placement_3d(axis2),rayon(ray) |
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{ |
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} |
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ST_CYLINDRICAL::ST_CYLINDRICAL(double *xyz,double *dirz,double *dirx,double ray):ST_SURFACE(),rayon(ray) |
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{ |
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initialiser(xyz,dirz,dirx); |
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} |
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long ST_CYLINDRICAL::get_id_axis2_placement_3d(void) |
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{ |
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return id_axis2_placement_3d; |
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} |
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double ST_CYLINDRICAL::get_rayon(void) |
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{ |
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return rayon; |
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} |
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void ST_CYLINDRICAL::evaluer(double *uv,double *xyz) |
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{ |
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OT_VECTEUR_3D local(rayon*cos(uv[0]),rayon*sin(uv[0]),uv[1]); |
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OT_VECTEUR_3D global=origine+repere*local; |
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xyz[0]=global.get_x(); |
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xyz[1]=global.get_y(); |
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xyz[2]=global.get_z(); |
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} |
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void ST_CYLINDRICAL::deriver(double *uv,double *xyzdu, double *xyzdv) |
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{ |
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OT_VECTEUR_3D localu(-rayon*sin(uv[0]),rayon*cos(uv[0]),0.); |
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OT_VECTEUR_3D localv(0.,0.,1.); |
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OT_VECTEUR_3D globalu=repere*localu; |
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OT_VECTEUR_3D globalv=repere*localv; |
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xyzdu[0]=globalu.get_x(); |
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xyzdu[1]=globalu.get_y(); |
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xyzdu[2]=globalu.get_z(); |
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xyzdv[0]=globalv.get_x(); |
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xyzdv[1]=globalv.get_y(); |
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xyzdv[2]=globalv.get_z(); |
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} |
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void ST_CYLINDRICAL::deriver_seconde(double *uv,double* xyzduu,double* xyzduv,double* xyzdvv,double *xyz , double *xyzdu , double *xyzdv ) |
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{ |
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OT_VECTEUR_3D local(-rayon*cos(uv[0]),-rayon*sin(uv[0]),0.); |
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OT_VECTEUR_3D global=repere*local; |
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xyzduu[0]=global.get_x(); |
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xyzduu[1]=global.get_y(); |
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xyzduu[2]=global.get_z(); |
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xyzduv[0]=0.; |
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xyzduv[1]=0.; |
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xyzduv[2]=0.; |
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xyzdvv[0]=0.; |
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xyzdvv[1]=0.; |
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xyzdvv[2]=0.; |
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if ((xyzdu!=NULL) && (xyzdv!=NULL ) ) deriver(uv,xyzdu,xyzdv); |
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if (xyz!=NULL) evaluer(uv,xyz); |
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} |
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void ST_CYLINDRICAL::inverser(double *uv,double *xyz,double precision) |
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{ |
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double sign; |
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OT_VECTEUR_3D global(xyz[0],xyz[1],xyz[2]); |
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OT_MATRICE_3D transpose_repere; |
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repere.transpose(transpose_repere); |
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OT_VECTEUR_3D vecteur=transpose_repere*(global-origine); |
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double valeur; |
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valeur=vecteur.get_x()/rayon; |
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if (valeur>1) valeur=1; |
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if (valeur<-1) valeur=-1; |
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uv[0]=acos(valeur); |
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sign=vecteur.get_y()/rayon; |
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if (sign<-0.000001) uv[0]= 2.*M_PI-uv[0]; |
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uv[1]=vecteur.get_z(); |
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} |
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int ST_CYLINDRICAL::est_periodique_u(void) |
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{ |
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return 1; |
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} |
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int ST_CYLINDRICAL::est_periodique_v(void) |
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{ |
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return 0; |
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} |
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double ST_CYLINDRICAL::get_periode_u(void) |
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{ |
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return 2.*M_PI; |
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} |
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double ST_CYLINDRICAL::get_periode_v(void) |
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{ |
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return 0; |
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} |
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double ST_CYLINDRICAL::get_umin(void) |
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{ |
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return 0.; |
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} |
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double ST_CYLINDRICAL::get_umax(void) |
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{ |
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return 2.*M_PI; |
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} |
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double ST_CYLINDRICAL::get_vmin(void) |
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{ |
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return -1e300; |
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} |
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double ST_CYLINDRICAL::get_vmax(void) |
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{ |
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return 1e300; |
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} |
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void ST_CYLINDRICAL::initialiser(ST_GESTIONNAIRE *gest) |
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{ |
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ST_AXIS2_PLACEMENT_3D* axe=gest->lst_axis2_placement_3d.getid(id_axis2_placement_3d); |
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ST_DIRECTION* dirz=gest->lst_direction.getid(axe->get_id_direction1()); |
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ST_DIRECTION* dirx=gest->lst_direction.getid(axe->get_id_direction2()); |
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ST_POINT* point=gest->lst_point.getid(axe->get_id_point()); |
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double xyz[3]; |
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point->evaluer(xyz); |
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double *directz=dirz->get_direction(); |
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double *directx=dirx->get_direction(); |
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initialiser(xyz,directz,directx); |
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} |
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void ST_CYLINDRICAL::initialiser(double *xyz,double *dirz,double *dirx) |
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{ |
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double axex[3]; |
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origine.change_x(xyz[0]); |
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origine.change_y(xyz[1]); |
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origine.change_z(xyz[2]); |
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OT_VECTEUR_3D z(dirz[0],dirz[1],dirz[2]); |
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z.norme(); |
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if (dirx==NULL) |
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{ |
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axex[0]=1.; |
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if (!(OPERATEUR::egal(z.get_z(),0.,0.0000001))) |
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{ |
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axex[1]=0; |
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axex[2]=-axex[0]*z.get_x()/z.get_z(); |
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} |
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else if (!(OPERATEUR::egal(z.get_y(),0.,0.0000001))) |
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{ |
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axex[2]=0; |
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axex[1]=-axex[0]*z.get_x()/z.get_y(); |
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} |
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else |
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{ |
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axex[0]=0.; |
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axex[1]=1.; |
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axex[2]=0.; |
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} |
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dirx=axex; |
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} |
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OT_VECTEUR_3D x(dirx[0],dirx[1],dirx[2]); |
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x.norme(); |
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OT_VECTEUR_3D y=z&x; |
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repere.change_vecteur1(x); |
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repere.change_vecteur2(y); |
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repere.change_vecteur3(z); |
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} |
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int ST_CYLINDRICAL::get_type_geometrique(TPL_LISTE_ENTITE<double> ¶m) |
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{ |
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param.ajouter(origine.get_x()); |
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param.ajouter(origine.get_y()); |
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param.ajouter(origine.get_z()); |
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param.ajouter(repere.get_vecteur1().get_x()); |
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param.ajouter(repere.get_vecteur1().get_y()); |
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param.ajouter(repere.get_vecteur1().get_z()); |
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param.ajouter(repere.get_vecteur3().get_x()); |
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param.ajouter(repere.get_vecteur3().get_y()); |
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param.ajouter(repere.get_vecteur3().get_z()); |
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param.ajouter(rayon); |
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param.ajouter(rayon); |
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return MGCo_CYLINDRE; |
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} |
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void ST_CYLINDRICAL::est_util(ST_GESTIONNAIRE* gest) |
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{ |
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util=true; |
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ST_AXIS2_PLACEMENT_3D *axe=gest->lst_axis2_placement_3d.getid(id_axis2_placement_3d); |
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axe->est_util(gest); |
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} |
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void ST_CYLINDRICAL::get_param_NURBS(int& indx_premier_ptctr,TPL_LISTE_ENTITE<double> ¶m) |
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{ |
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// For a plan the net controls point is |
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double uv[2]; |
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double xyz[3]; |
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// The first parameter indicate the code access |
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param.ajouter(2); |
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// The follewing two parameters of the list indicate the orders of the net points |
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param.ajouter(4); |
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param.ajouter(2); |
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// The follewing two parameters indicate the number of rows and colons of the control points |
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// respectively to the two parameters directions |
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param.ajouter(7); |
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param.ajouter(2); |
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// this present the knot vector in the u-direction |
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param.ajouter(0); |
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param.ajouter(0); |
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param.ajouter(0); |
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param.ajouter(0.25); |
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param.ajouter(0.5); |
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param.ajouter(0.5); |
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param.ajouter(0.75); |
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param.ajouter(1); |
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param.ajouter(1); |
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param.ajouter(1); |
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//This present the knot vector in the v-direction |
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param.ajouter(0); |
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param.ajouter(0); |
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param.ajouter(1); |
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param.ajouter(1); |
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//evaluation pour umin cad la premiere cercle |
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// note that the cordinate of the control points are given in the homogeneous cordinates |
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for (int j=0;j<2;j++) |
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{ |
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double z_inf=10e6; |
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if (j==0) |
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z_inf=-z_inf; |
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if (j==1) |
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z_inf=z_inf; |
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// The first control point have local cordinate (rayon,0) |
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OT_VECTEUR_3D loc(rayon,0,z_inf); |
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OT_VECTEUR_3D glob=origine+repere*loc; |
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xyz[0]=glob.get_x(); |
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xyz[1]=glob.get_y(); |
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xyz[2]=glob.get_z(); |
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param.ajouter(xyz[0]); |
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param.ajouter(xyz[1]); |
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param.ajouter(xyz[2]); |
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param.ajouter(1); |
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// the second control point have such local cordinate (rayon,rayon) |
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loc.change_y(rayon); |
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glob=origine+repere*loc; |
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xyz[0]=glob.get_x(); |
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xyz[1]=glob.get_y(); |
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xyz[2]=glob.get_z(); |
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param.ajouter(xyz[0]); |
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param.ajouter(xyz[1]); |
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param.ajouter(xyz[2]); |
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param.ajouter(0.5); |
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//the third control point have such local cordinate (-rayon,rayon) |
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loc.change_x(-rayon); |
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glob=origine+repere*loc; |
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xyz[0]=glob.get_x(); |
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xyz[1]=glob.get_y(); |
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xyz[2]=glob.get_z(); |
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param.ajouter(xyz[0]); |
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param.ajouter(xyz[1]); |
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param.ajouter(xyz[2]); |
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param.ajouter(0.5); |
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//The forth point have the local cordinate at(-rayon,rayon) |
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loc.change_y(0); |
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glob=origine+repere*loc; |
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xyz[0]=glob.get_x(); |
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xyz[1]=glob.get_y(); |
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xyz[2]=glob.get_z(); |
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param.ajouter(xyz[0]); |
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param.ajouter(xyz[1]); |
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param.ajouter(xyz[2]); |
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param.ajouter(1); |
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//the fifth control point have the corfinate in the local cordinate (-rayon,-rayon) |
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loc.change_y(-rayon); |
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glob=origine+repere*loc; |
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xyz[0]=glob.get_x(); |
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xyz[1]=glob.get_y(); |
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xyz[2]=glob.get_z(); |
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param.ajouter(xyz[0]); |
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param.ajouter(xyz[1]); |
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param.ajouter(xyz[2]); |
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param.ajouter(0.5); |
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//The sixth control point have the cordiante in the local coordinate (rayon,-rayon) |
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loc.change_x(rayon); |
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glob=origine+repere*loc; |
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xyz[0]=glob.get_x(); |
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xyz[1]=glob.get_y(); |
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xyz[2]=glob.get_z(); |
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param.ajouter(xyz[0]); |
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param.ajouter(xyz[1]); |
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param.ajouter(xyz[2]); |
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param.ajouter(0.5); |
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//The last control point have the same local cordinate with rhe first control point (rayon, 0) |
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loc.change_y(0); |
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glob=origine+repere*loc; |
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xyz[0]=glob.get_x(); |
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xyz[1]=glob.get_y(); |
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xyz[2]=glob.get_z(); |
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param.ajouter(xyz[0]); |
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param.ajouter(xyz[1]); |
385 |
|
|
param.ajouter(xyz[2]); |
386 |
|
|
param.ajouter(1); |
387 |
|
|
} |
388 |
|
|
|
389 |
|
|
indx_premier_ptctr=19; |
390 |
|
|
} |
391 |
|
|
|