152 lines
5.1 KiB
C++
152 lines
5.1 KiB
C++
#include "Header.h"
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#include <Eigen/Dense>
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using namespace Eigen;
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Solver::Solver(double _A, double _B, double _C, double _D, int _N, int _l, int _u) {
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A = _A, B = _B, C = _C, D = _D, N = _N;
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upper = _u, lower = _l;
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L = upper - lower;
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dx = L / N;
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}
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void Solver::Execute_Linear(double val1, double val2) {
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MatrixXd local = MatrixXd::Zero(2, 2);
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local(0, 0) = A / dx - B / 2.;
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local(0, 1) = -A / dx + B / 2.;
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local(1, 0) = -A / dx - B / 2.;
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local(1, 1) = A / dx + B / 2.;
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std::cout << "Local matrix:\n" << local << std::endl;
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VectorXd local_load(2);
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local_load(0) = C * dx / 2;
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local_load(1) = C * dx / 2;
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// Ансаблированные матрицы и вектор
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MatrixXd ansamb = MatrixXd::Zero(N + 1, N + 1);
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VectorXd global_load = VectorXd::Zero(N + 1);
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// Ансамблирование для каждого конечного элемента
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for (int elem = 0; elem < N; ++elem) {
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int node_i = elem;
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int node_j = elem + 1;
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// Матрица жесткости
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ansamb(node_i, node_i) += local(0, 0);
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ansamb(node_i, node_j) += local(0, 1);
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ansamb(node_j, node_i) += local(1, 0);
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ansamb(node_j, node_j) += local(1, 1);
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// Вектор нагрузки
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global_load(node_i) += local_load(0);
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global_load(node_j) += local_load(1);
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}
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std::cout << "Before:" << std::endl;
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std::cout << "Ansamb matrix:\n" << ansamb << std::endl;
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std::cout << "Ansamb load vector:\n" << global_load << std::endl;
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// ГУ 1-го рода
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double u_left = val1; // u(1) = 5
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double u_right = val2; // u(6) = 15
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// Обнуляем первую строку и столбец матрицы, устанавливаем диагональ = 1
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ansamb.row(0).setZero();
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ansamb.col(0).setZero();
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ansamb(0, 0) = 1.0;
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global_load(0) = u_left;
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// Обнуляем последнюю строку и столбец матрицы, устанавливаем диагональ = 1
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ansamb.row(N).setZero();
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ansamb.col(N).setZero();
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ansamb(N, N) = 1.0;
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global_load(N) = u_right;
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std::cout << "\nAfter:" << std::endl;
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std::cout << "Modified matrix:\n" << ansamb << std::endl;
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std::cout << "Modified load vector:\n" << global_load << std::endl;
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VectorXd solution = ansamb.fullPivLu().solve(global_load);
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std::cout << "\nSolution:" << std::endl;
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std::cout << solution << std::endl;
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std::ofstream file("matrix_2.txt");
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for (int i = 0; i < N + 1; i++) {
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file << solution(i) << ' ';
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}
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file << std::endl;
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}
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void Solver::Execute_Cubic(double val1, double val2) {
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int mat_dim = 1 + N * 3;
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Eigen::MatrixXd Amat(mat_dim, mat_dim);
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Eigen::VectorXd b(mat_dim);
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Amat.setZero();
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b.setZero();
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// Assemble matrix
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for (int i = 0; i < mat_dim - 3; i += 3) {
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Amat(i, i + 0) -= A * 37.0 / 10.0 / dx;
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Amat(i, i + 1) -= A * (-189.0) / 40.0 / dx;
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Amat(i, i + 2) -= A * 27.0 / 20.0 / dx;
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Amat(i, i + 3) -= A * (-13.0) / 40.0 / dx;
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Amat(i + 1, i + 0) -= A * (-189.0) / 40.0 / dx;
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Amat(i + 1, i + 1) -= A * 54.0 / 5.0 / dx;
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Amat(i + 1, i + 2) -= A * (-297.0) / 40.0 / dx;
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Amat(i + 1, i + 3) -= A * 27.0 / 20.0 / dx;
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Amat(i + 2, i + 0) -= A * 27.0 / 20.0 / dx;
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Amat(i + 2, i + 1) -= A * (-297.0) / 40.0 / dx;
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Amat(i + 2, i + 2) -= A * 54.0 / 5.0 / dx;
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Amat(i + 2, i + 3) -= A * (-189.0) / 40.0 / dx;
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Amat(i + 3, i + 0) -= A * (-13.0) / 40.0 / dx;
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Amat(i + 3, i + 1) -= A * 27.0 / 20.0 / dx;
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Amat(i + 3, i + 2) -= A * (-189.0) / 40.0 / dx;
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Amat(i + 3, i + 3) -= A * 37.0 / 10.0 / dx;
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Amat(i + 0, i + 0) += B * (-1.0) / 2.0;
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Amat(i + 0, i + 1) += B * 57.0 / 80.0;
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Amat(i + 0, i + 2) += B * (-3.0) / 10.0;
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Amat(i + 0, i + 3) += B * 7.0 / 80.0;
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Amat(i + 1, i + 0) += B * (-57.0) / 80.0;
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Amat(i + 1, i + 2) += B * 81.0 / 80.0;
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Amat(i + 1, i + 3) += B * (-3.0) / 10;
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Amat(i + 2, i + 0) += B * 3.0 / 10.0;
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Amat(i + 2, i + 1) += B * (-81.0) / 80.0;
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Amat(i + 2, i + 3) += B * 57.0 / 80.0;
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Amat(i + 3, i + 0) += B * (-7.0) / 80.0;
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Amat(i + 3, i + 1) += B * 3.0 / 10.0;
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Amat(i + 3, i + 2) += B * (-57.0) / 80.0;
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Amat(i + 3, i + 3) += B * 1.0 / 2.0;
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}
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// Assembdxe vector
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for (int i = 0; i < mat_dim - 3; i += 3) {
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b(i) -= D * dx / 8.0;
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b(i + 1) -= D * 3.0 * dx / 8.0;
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b(i + 2) -= D * 3.0 * dx / 8.0;
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b(i + 3) -= D * dx / 8.0;
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}
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Amat.row(0).setZero();
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Amat(0, 0) = dx / 3.0 + 1;
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Amat(0, 1) = -1;
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b(0) = 0;
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Amat.row(mat_dim - 1).setZero();
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Amat(mat_dim - 1, mat_dim - 1) = 1;
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b(mat_dim - 1) = val2;
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// Решение системы
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VectorXd solution = Amat.colPivHouseholderQr().solve(b);
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std::cout << "\nSolution:" << std::endl;
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std::cout << solution << std::endl;
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std::ofstream file("matrix_cubic.txt");
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for (int i = 0; i < solution.size(); i++) {
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file << solution(i) << ' ';
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}
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file << std::endl;
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} |