Impl
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@ -0,0 +1,6 @@
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<?xml version="1.0" encoding="UTF-8"?>
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<project version="4">
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<component name="Encoding">
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<file url="file://$PROJECT_DIR$/labo_ik/SVD.h" charset="UTF-8" />
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</component>
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</project>
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@ -23,8 +23,9 @@ include_directories(${PROJECT_SOURCE_DIR}/../labo01/src ${COMMON_INCLUDES})
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find_package(OpenGL REQUIRED)
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find_package(OpenGL REQUIRED)
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# Add .cpp and .h files
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# Add .cpp and .h files
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set(HEADERS IKApplication.h IKGLCanvas.h LinkUI.h TargetUI.h Armature.h IKSolver.h SVD.h)
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set(HEADERS IKApplication.h IKGLCanvas.h LinkUI.h TargetUI.h Armature.h IKSolver.h)
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set(SOURCE main.cpp IKApplication.cpp IKGLCanvas.cpp LinkUI.cpp TargetUI.cpp Armature.cpp IKSolver.cpp)
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set(SOURCE main.cpp IKApplication.cpp IKGLCanvas.cpp LinkUI.cpp TargetUI.cpp Armature.cpp IKSolver.cpp
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SVD.h)
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add_executable(labo_ik ${SOURCE} ${HEADERS})
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add_executable(labo_ik ${SOURCE} ${HEADERS})
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target_link_libraries(labo_ik nanogui OpenGL ${NANOGUI_EXTRA_LIBS})
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target_link_libraries(labo_ik nanogui OpenGL ${NANOGUI_EXTRA_LIBS})
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@ -41,6 +41,15 @@ void jacobian(Jacobianf &m_J, Link *link, Vector3f &ri, int i) {
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}
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}
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}
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}
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template<typename _Scalar, int _Rows, int _Storage>
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float dotP(SubMatrix<_Scalar, _Rows, Dynamic, _Storage> a, Vector<_Scalar, _Rows> b) {
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_Scalar product = 0;
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for (int i = 0; i < b.size(); i++) {
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product += a(i, 0) * b(i);
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}
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return product;
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}
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void IKSolver::solve() {
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void IKSolver::solve() {
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const int numLinks = m_armature->links.size();
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const int numLinks = m_armature->links.size();
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const int dim = 3 * (numLinks);
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const int dim = 3 * (numLinks);
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@ -67,8 +76,28 @@ void IKSolver::solve() {
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// TODO Compute the change in the joint angles by solving:
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// TODO Compute the change in the joint angles by solving:
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// df/dtheta * delta_theta = delta_x
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// df/dtheta * delta_theta = delta_x
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// where df/dtheta is the Jacobian matrix.
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// where df/dtheta is the Jacobian matrix.
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//
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auto svd = SVD(m_J);
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//
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svd.decompose();
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// svd.getSigma() * svd.getV().transpose() * d_theta - svd.getU().transpose() * dx;
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int rank = 0;
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for (int i = 0; i < svd.getSigma().size(); i++) {
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if (svd.getSigma()(i) == 0) {
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break;
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}
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rank++;
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}
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auto d_theta = Vector<float, Dynamic>(rank);
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auto z = Vector<float, Dynamic>(rank);
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for (int i = 0; i < rank; i++) {
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auto ui = svd.getU().block(i, 0, 3, 1);
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auto si = svd.getSigma()(i);
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z(i) = dotP(ui, dx) / si;
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}
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d_theta = svd.getV() * z;
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// TODO Perform gradient descent method with line search
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// TODO Perform gradient descent method with line search
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// to move the end effector toward the target position.
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// to move the end effector toward the target position.
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@ -78,6 +107,13 @@ void IKSolver::solve() {
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//
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//
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// Hint: whenever you change the joint angles, you must also call
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// Hint: whenever you change the joint angles, you must also call
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// armature->updateKinematics() to compute the global position.
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// armature->updateKinematics() to compute the global position.
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//
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float alpha = 1;
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Vector<float, Dynamic> initial_theta;
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m_armature->pack(initial_theta);
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do {
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m_armature->unpack(initial_theta + alpha * d_theta);
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m_armature->updateKinematics();
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alpha /= 2;
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} while (getError(dx) < error);
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}
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}
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@ -327,7 +327,7 @@ namespace gti320
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const int ncols = m_U.cols();
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const int ncols = m_U.cols();
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const int nrows = m_U.rows();
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const int nrows = m_U.rows();
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Vector<_Scalar> su(nrows), sv(ncols);
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Vector<_Scalar> su(nrows), sv(ncols);
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do { inc *= 3; inc++; } while (inc <= ncols); // Sort using Shell’s sort.
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do { inc *= 3; inc++; } while (inc <= ncols); // Sort using Shell<EFBFBD>s sort.
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do {
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do {
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inc /= 3;
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inc /= 3;
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