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bullet3/examples/ReducedDeformableDemo/BasicTest.cpp

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/*
Bullet Continuous Collision Detection and Physics Library
Copyright (c) 2019 Google Inc. http://bulletphysics.org
This software is provided 'as-is', without any express or implied warranty.
In no event will the authors be held liable for any damages arising from the use of this software.
Permission is granted to anyone to use this software for any purpose,
including commercial applications, and to alter it and redistribute it freely,
subject to the following restrictions:
1. The origin of this software must not be misrepresented; you must not claim that you wrote the original software. If you use this software in a product, an acknowledgment in the product documentation would be appreciated but is not required.
2. Altered source versions must be plainly marked as such, and must not be misrepresented as being the original software.
3. This notice may not be removed or altered from any source distribution.
*/
#include "BasicTest.h"
///btBulletDynamicsCommon.h is the main Bullet include file, contains most common include files.
#include "btBulletDynamicsCommon.h"
#include "BulletSoftBody/btDeformableMultiBodyDynamicsWorld.h"
#include "BulletSoftBody/btSoftBody.h"
#include "BulletSoftBody/btSoftBodyHelpers.h"
#include "BulletSoftBody/btDeformableBodySolver.h"
#include "BulletSoftBody/btSoftBodyRigidBodyCollisionConfiguration.h"
#include "BulletDynamics/Featherstone/btMultiBodyConstraintSolver.h"
#include "../CommonInterfaces/CommonParameterInterface.h"
#include <stdio.h> //printf debugging
#include "../CommonInterfaces/CommonDeformableBodyBase.h"
#include "../Utils/b3ResourcePath.h"
///The BasicTest shows the contact between volumetric deformable objects and rigid objects.
static btScalar E = 50;
static btScalar nu = 0.3;
// static btScalar damping_alpha = 0.1;
// static btScalar damping_beta = 0.01;
static btScalar damping_alpha = 0.0;
static btScalar damping_beta = 0.0;
static btScalar COLLIDING_VELOCITY = 0;
class BasicTest : public CommonDeformableBodyBase
{
typedef btAlignedObjectArray<btSoftBody::Node> tNodeArray;
// btDeformableLinearElasticityForce* m_linearElasticity;
btDeformableMassSpringForce* m_massSpring;
static const unsigned int m_startMode = 6; // actual mode# should +1
static const unsigned int m_nReduced = 1;
static const unsigned int selected_mode = 0;
unsigned int m_nFull;
btScalar sim_time;
bool first_step;
// compute reduced degree of freedoms
void mapToReducedDofs(btSoftBody* psb)
{
btAssert(psb->m_reducedDofs.size() == m_nReduced);
for (int j = 0; j < m_nReduced; ++j)
{
for (int i = 0; i < m_nFull; ++i)
for (int k = 0; k < 3; ++k)
{
int idx_f = 3 * i + k;
psb->m_reducedDofs[j] = psb->m_modes[j][idx_f] * (psb->m_nodes[i].m_x[k] - psb->m_x0[idx_f]);
// psb->m_reducedVelocity[j] = psb->m_modes[j][idx_f] * psb->m_nodes[i].m_v[k];
}
}
}
// compute full degree of freedoms
void mapToFullDofs(btSoftBody* psb)
{
btAssert(psb->m_nodes.size() == m_nFull);
for (int j = 0; j < m_nReduced; ++j)
{
for (int i = 0; i < m_nFull; ++i)
for (int k = 0; k < 3; ++k)
{
int idx_f = 3 * i + k;
psb->m_nodes[i].m_x[k] = psb->m_x0[idx_f] + psb->m_modes[j][idx_f] * psb->m_reducedDofs[j];
// psb->m_nodes[i].m_v[k] = psb->m_modes[j][idx_f] * psb->m_reducedVelocity[j];
}
}
}
// get deformed shape
void getDeformedShape(btSoftBody* psb, const int mode_n, const btScalar scale = 1)
{
for (int i = 0; i < psb->m_nodes.size(); ++i)
for (int k = 0; k < 3; ++k)
psb->m_nodes[i].m_x[k] += psb->m_modes[mode_n][3 * i + k] * scale;
}
public:
BasicTest(struct GUIHelperInterface* helper)
: CommonDeformableBodyBase(helper)
{
// m_linearElasticity = 0;
m_massSpring = nullptr;
m_nFull = 0;
sim_time = 0;
first_step = true;
}
virtual ~BasicTest()
{
}
void initPhysics();
void exitPhysics();
// TODO: disable pick force, non-interactive for now.
bool pickBody(const btVector3& rayFromWorld, const btVector3& rayToWorld) {
return false;
}
void resetCamera()
{
float dist = 20;
float pitch = 0;
float yaw = 90;
float targetPos[3] = {0, 3, 0};
m_guiHelper->resetCamera(dist, yaw, pitch, targetPos[0], targetPos[1], targetPos[2]);
}
void Ctor_RbUpStack()
{
float mass = 0.5;
btCollisionShape* shape = new btBoxShape(btVector3(2, 2, 2));
btTransform startTransform;
startTransform.setIdentity();
startTransform.setOrigin(btVector3(0,-2,0));
btRigidBody* rb = createRigidBody(mass, startTransform, shape);
rb->setLinearVelocity(btVector3(0,+COLLIDING_VELOCITY, 0));
}
void stepSimulation(float deltaTime)
{
btSoftBody* psb = static_cast<btDeformableMultiBodyDynamicsWorld*>(m_dynamicsWorld)->getSoftBodyArray()[0];
// TODO: remove this. very hacky way of adding initial deformation
if (first_step && !psb->m_bUpdateRtCst)
{
getDeformedShape(psb, 0);
first_step = false;
mapToReducedDofs(psb);
}
// compute reduced dofs
psb->m_reducedDofs.resize(m_nReduced);
psb->m_reducedVelocity.resize(m_nReduced);
sim_time += deltaTime;
// std::cout << psb->m_eigenvalues[0] << "\t" << sim_time << "\t" << deltaTime << "\t" << sin(psb->m_eigenvalues[0] * sim_time) << "\n";
// float internalTimeStep = 1. / 60.f;
float internalTimeStep = 1;
m_dynamicsWorld->stepSimulation(1, 1, internalTimeStep);
// for (int i = 0; i < m_nReduced; ++i)
// std::cout << psb->m_reducedDofs[i] << "\t";
// std::cout << "\n";
// map reduced dof back to full
mapToFullDofs(psb);
}
virtual void renderScene()
{
CommonDeformableBodyBase::renderScene();
btDeformableMultiBodyDynamicsWorld* deformableWorld = getDeformableDynamicsWorld();
for (int i = 0; i < deformableWorld->getSoftBodyArray().size(); i++)
{
btSoftBody* psb = (btSoftBody*)deformableWorld->getSoftBodyArray()[i];
{
btSoftBodyHelpers::DrawFrame(psb, deformableWorld->getDebugDrawer());
btSoftBodyHelpers::Draw(psb, deformableWorld->getDebugDrawer(), deformableWorld->getDrawFlags());
}
}
}
};
void BasicTest::initPhysics()
{
m_guiHelper->setUpAxis(1);
///collision configuration contains default setup for memory, collision setup
m_collisionConfiguration = new btSoftBodyRigidBodyCollisionConfiguration();
///use the default collision dispatcher. For parallel processing you can use a diffent dispatcher (see Extras/BulletMultiThreaded)
m_dispatcher = new btCollisionDispatcher(m_collisionConfiguration);
m_broadphase = new btDbvtBroadphase();
btDeformableBodySolver* deformableBodySolver = new btDeformableBodySolver();
btDeformableMultiBodyConstraintSolver* sol = new btDeformableMultiBodyConstraintSolver();
sol->setDeformableSolver(deformableBodySolver);
m_solver = sol;
m_dynamicsWorld = new btDeformableMultiBodyDynamicsWorld(m_dispatcher, m_broadphase, sol, m_collisionConfiguration, deformableBodySolver);
btVector3 gravity = btVector3(0, 0, 0);
m_dynamicsWorld->setGravity(gravity);
m_guiHelper->createPhysicsDebugDrawer(m_dynamicsWorld);
// create volumetric soft body
{
std::string filename("../../../examples/SoftDemo/mesh.vtk");
btSoftBody* psb = btSoftBodyHelpers::CreateFromVtkFile(getDeformableDynamicsWorld()->getWorldInfo(), filename.c_str());
m_nFull = psb->m_nodes.size();
psb->m_reducedModel = true;
// read in eigenmodes, stiffness and mass matrices
std::string eigenvalues_file("../../../examples/SoftDemo/eigenvalues.bin");
btSoftBodyHelpers::readBinary(psb->m_eigenvalues, m_startMode, m_nReduced, 3 * m_nFull, eigenvalues_file.c_str());
std::string Kr_file("../../../examples/SoftDemo/K_r_diag_mat.bin");
btSoftBodyHelpers::readBinary(psb->m_Kr, m_startMode, m_nReduced, 3 * m_nFull, Kr_file.c_str());
std::string Mr_file("../../../examples/SoftDemo/M_r_diag_mat.bin");
btSoftBodyHelpers::readBinary(psb->m_Mr, m_startMode, m_nReduced, 3 * m_nFull, Mr_file.c_str());
std::string modes_file("../../../examples/SoftDemo/modes.bin");
btSoftBodyHelpers::readBinaryMat(psb->m_modes, m_startMode, m_nReduced, 3 * m_nFull, modes_file.c_str()); // default to 3D
// for (int i = 0; i < 3*m_nFull; ++i)
// std::cout << psb->m_modes[0][i] << '\n';
// std::string M_file("../../../examples/SoftDemo/M_diag_mat.bin");
// btSoftBodyHelpers::readBinary(psb->m_M, buffer_n_modes, M_file.c_str());
// get rest position
psb->m_x0.resize(3 * psb->m_nodes.size());
for (int i = 0; i < psb->m_nodes.size(); ++i)
for (int k = 0; k < 3; ++k)
psb->m_x0[3 * i + k] = psb->m_nodes[i].m_x[k];
// btAlignedObjectArray<btAlignedObjectArray<btScalar> > M_red;
// M_red.resize(m_nReduced);
// for (int i = 0; i < m_nReduced; ++i) {
// M_red.resize(m_nReduced);
// }
// for (int i = 0; i < m_nFull; ++i) {
// for (int j = 0; j < m_nReduced; ++j) {
// for (int k = 0; k < m_nFull; ++k) {
// for (int l = 0; l < m_nReduced; ++l) {
// btScalar tmp = psb->m_modes[i][j] * psb->m_M[i] * psb->m_modes[k][l];
// std::cout << tmp << '\n';
// }
// }
// }
// }
// std::ofstream outfile1("before_map.txt");
// for (int i = 0; i < psb->m_nodes.size(); ++i) {
// for (int k = 0; k < 3; ++k)
// outfile1 << psb->m_nodes[i].m_x[k] << '\n';
// }
// outfile1.close();
// mapToFullDofs(psb->m_modes, psb->m_reducedNodes, psb->m_reducedVelocity, psb->m_nodes);
// std::ofstream outfile2("after_map.txt");
// for (int i = 0; i < psb->m_nodes.size(); ++i) {
// for (int k = 0; k < 3; ++k)
// outfile2 << psb->m_nodes[i].m_x[k] << '\n';
// }
// outfile2.close();
getDeformableDynamicsWorld()->addSoftBody(psb);
psb->scale(btVector3(2, 2, 2));
psb->translate(btVector3(0, 7, 0));
psb->getCollisionShape()->setMargin(0.1);
psb->setTotalMass(0.5);
psb->m_cfg.kKHR = 1; // collision hardness with kinematic objects
psb->m_cfg.kCHR = 1; // collision hardness with rigid body
psb->m_cfg.kDF = 0;
psb->m_cfg.collisions = btSoftBody::fCollision::SDF_RD;
psb->m_cfg.collisions |= btSoftBody::fCollision::SDF_RDN;
psb->m_sleepingThreshold = 0;
btSoftBodyHelpers::generateBoundaryFaces(psb);
psb->setVelocity(btVector3(0, -COLLIDING_VELOCITY, 0));
// btDeformableLinearElasticityForce* linearElasticity = new btDeformableLinearElasticityForce(100,100,0.01);
// m_linearElasticity = linearElasticity;
m_massSpring = new btDeformableMassSpringForce(10.0, 0.0); //TODO: this stiffness needs to match the modes
getDeformableDynamicsWorld()->addForce(psb, m_massSpring);
m_forces.push_back(m_massSpring);
}
getDeformableDynamicsWorld()->setImplicit(false);
getDeformableDynamicsWorld()->setLineSearch(false);
getDeformableDynamicsWorld()->setUseProjection(true);
getDeformableDynamicsWorld()->getSolverInfo().m_deformable_erp = 0.3;
getDeformableDynamicsWorld()->getSolverInfo().m_deformable_maxErrorReduction = btScalar(200);
getDeformableDynamicsWorld()->getSolverInfo().m_leastSquaresResidualThreshold = 1e-3;
getDeformableDynamicsWorld()->getSolverInfo().m_splitImpulse = true;
getDeformableDynamicsWorld()->getSolverInfo().m_numIterations = 100;
// add a few rigid bodies
// Ctor_RbUpStack(); // TODO: no rigid body for now
m_guiHelper->autogenerateGraphicsObjects(m_dynamicsWorld);
// {
// SliderParams slider("Young's Modulus", &E);
// slider.m_minVal = 0;
// slider.m_maxVal = 2000;
// if (m_guiHelper->getParameterInterface())
// m_guiHelper->getParameterInterface()->registerSliderFloatParameter(slider);
// }
// {
// SliderParams slider("Poisson Ratio", &nu);
// slider.m_minVal = 0.05;
// slider.m_maxVal = 0.49;
// if (m_guiHelper->getParameterInterface())
// m_guiHelper->getParameterInterface()->registerSliderFloatParameter(slider);
// }
// {
// SliderParams slider("Mass Damping", &damping_alpha);
// slider.m_minVal = 0;
// slider.m_maxVal = 1;
// if (m_guiHelper->getParameterInterface())
// m_guiHelper->getParameterInterface()->registerSliderFloatParameter(slider);
// }
// {
// SliderParams slider("Stiffness Damping", &damping_beta);
// slider.m_minVal = 0;
// slider.m_maxVal = 0.1;
// if (m_guiHelper->getParameterInterface())
// m_guiHelper->getParameterInterface()->registerSliderFloatParameter(slider);
// }
}
void BasicTest::exitPhysics()
{
//cleanup in the reverse order of creation/initialization
removePickingConstraint();
//remove the rigidbodies from the dynamics world and delete them
int i;
for (i = m_dynamicsWorld->getNumCollisionObjects() - 1; i >= 0; i--)
{
btCollisionObject* obj = m_dynamicsWorld->getCollisionObjectArray()[i];
btRigidBody* body = btRigidBody::upcast(obj);
if (body && body->getMotionState())
{
delete body->getMotionState();
}
m_dynamicsWorld->removeCollisionObject(obj);
delete obj;
}
// delete forces
for (int j = 0; j < m_forces.size(); j++)
{
btDeformableLagrangianForce* force = m_forces[j];
delete force;
}
m_forces.clear();
//delete collision shapes
for (int j = 0; j < m_collisionShapes.size(); j++)
{
btCollisionShape* shape = m_collisionShapes[j];
delete shape;
}
m_collisionShapes.clear();
delete m_dynamicsWorld;
delete m_solver;
delete m_broadphase;
delete m_dispatcher;
delete m_collisionConfiguration;
}
class CommonExampleInterface* ReducedBasicTestCreateFunc(struct CommonExampleOptions& options)
{
return new BasicTest(options.m_guiHelper);
}