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https://codeberg.org/vcbferreira/NuFI_deal.ii
synced 2026-08-12 14:33:18 +02:00
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This commit is contained in:
@@ -16,6 +16,8 @@ endif()
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deal_ii_initialize_cached_variables()
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find_package(OpenMP REQUIRED)
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# -------------------------
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add_library(nufi_lib
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@@ -30,6 +32,10 @@ target_include_directories(nufi_lib PUBLIC
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deal_ii_setup_target(nufi_lib)
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target_link_libraries(nufi_lib
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OpenMP::OpenMP_CXX
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)
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# -------------------------
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add_executable(nufi_poisson
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@@ -38,6 +44,8 @@ add_executable(nufi_poisson
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target_link_libraries(nufi_poisson
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nufi_lib
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OpenMP::OpenMP_CXX
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)
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deal_ii_setup_target(nufi_poisson)
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Binary file not shown.
+11
-8
@@ -83,6 +83,7 @@ void interpolate( real *coeffs, const real *values)
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void operator()( const real *in, real *out ) const
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{
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#pragma omp parallel for
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for ( size_t i = 0; i < Parameters::SPLINE_NX; ++i )
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{
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real result = 0;
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@@ -145,24 +146,26 @@ void interpolate( real *coeffs, const real *values)
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inline double integral_space_vector(const double *current_coeffs, double dx = Parameters::SPLINE_DX, size_t Nx = Parameters::SPLINE_NX)
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{
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double integral = 0.0;
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double x = Parameters::X_DOMAIN_LEFT;
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double xmin = Parameters::X_DOMAIN_LEFT;
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#pragma omp parallel for reduction (+:integral)
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for (size_t i=0; i<Nx ; ++i) {
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x += dx;
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integral += eval<1>(x, current_coeffs)*dx;
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double x = xmin + i * dx;
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integral += eval<1>(x, current_coeffs);
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}
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return integral;
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return integral*dx;
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};
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inline double integral_space_vector_squared(const double *current_coeffs, double dx = Parameters::SPLINE_DX, size_t Nx = Parameters::SPLINE_NX)
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{
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double integral = 0.0;
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double x = Parameters::X_DOMAIN_LEFT;
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double xmin = Parameters::X_DOMAIN_LEFT;
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#pragma omp parallel for reduction (+:integral)
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for (size_t i=0; i<Nx ; ++i) {
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x += dx;
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double x = xmin + i*dx;
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double val = eval<1>(x, current_coeffs);
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integral += val*val*dx;
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integral += val*val;
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}
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return integral;
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return integral*dx;
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};
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class Gradient {
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@@ -22,6 +22,7 @@ public:
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void run();
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double eval_rho(unsigned int n, double x, const double *E_coeffs, unsigned int Nv = Parameters::NV) const;
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double eval_ftilda(unsigned int n, double x, double u, const double *E_coeffs) const;
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double eval_f(unsigned int n, double x, double u, const double *E_coeffs) const;
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private:
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+7
-7
@@ -13,16 +13,16 @@ namespace Parameters
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constexpr double LX = std::abs(X_DOMAIN_RIGHT- X_DOMAIN_LEFT);
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constexpr double LX_INV = 1/LX;
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constexpr double V_DOMAIN_LEFT = -10.0;
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constexpr double V_DOMAIN_RIGHT = 10.0;
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constexpr double V_DOMAIN_LEFT = -10.;
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constexpr double V_DOMAIN_RIGHT = 10.;
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constexpr unsigned int NV = 512;
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constexpr double DV = std::abs(V_DOMAIN_RIGHT - V_DOMAIN_LEFT)/NV;
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// deal.ii options
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constexpr unsigned int GLOBAL_REFINEMENT = 7;
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constexpr unsigned int GLOBAL_REFINEMENT = 8;
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constexpr unsigned int FE_DEGREE = 4;
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constexpr unsigned int CONVERGENCE_ITERATIONS = 20000;
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constexpr unsigned int CONVERGENCE_ITERATIONS = 10000;
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constexpr double CONVERGENCE_LIMIT = 1e-12;
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constexpr double EPS = 0.01;
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@@ -30,8 +30,8 @@ namespace Parameters
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constexpr double F0_FACTOR = 0.39894228040143267793994; // 1/sqrt(2pi)
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// NUFI options
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constexpr double DT=1./10.;
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constexpr unsigned int TMAX = 50;
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constexpr double DT=1./16.;
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constexpr unsigned int TMAX = 500;
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//spline options
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constexpr int SPLINE_NX = 256;
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@@ -40,7 +40,7 @@ namespace Parameters
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constexpr size_t SPLINE_ORDER = 4;
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//Plotting options
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constexpr int PLOT_FREQUENCY = 5;
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constexpr int PLOT_FREQUENCY = 10;
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}
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#endif
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+1
-1
@@ -5,7 +5,7 @@
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#include "nufi/nufi_solver.h"
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void save_ftilda( const NuFISolver &solver,
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void save_f( const NuFISolver &solver,
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unsigned int n,
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const double *E_coeffs,
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unsigned int Nx_out,
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@@ -20,6 +20,8 @@ void clear_results_directory(const std::string &dir)
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int main()
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{
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#include <omp.h>
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std::cout << "Threads: " << omp_get_max_threads() << "\n";
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try
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{
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clear_results_directory("results");
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+54
-9
@@ -54,6 +54,42 @@ double NuFISolver::eval_ftilda(unsigned int n,
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return f0(x,u);
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}
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double NuFISolver::eval_f(unsigned int n,
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double x,
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double u,
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const double *E_coeffs) const
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{
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if ( n == 0 ) return f0(x,u);
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const size_t order = Parameters::SPLINE_ORDER;
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const size_t stride_x = 1;
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const size_t stride_t = stride_x*(Nx + order - 1);
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double Ex;
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const double *c;
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// Initial half-step.
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c = E_coeffs + n*stride_t;
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Ex = -eval<1>(x, c);
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u += 0.5*Parameters::DT * Ex;
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while ( --n )
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{
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x = x - Parameters::DT *u;
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c = E_coeffs + n*stride_t;
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Ex = -eval<1>(x, c);
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u = u + Parameters::DT *Ex;
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}
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// The final half-step.
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x -= Parameters::DT*u;
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c = E_coeffs + n*stride_t;
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Ex = -eval<1>(x, c);
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u += 0.5*Parameters::DT*Ex;
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return f0(x,u);
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}
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double NuFISolver::eval_rho(const unsigned int n,
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const double x,
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const double *E_coeffs,
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@@ -63,10 +99,12 @@ double NuFISolver::eval_rho(const unsigned int n,
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const double v_min = Parameters::V_DOMAIN_LEFT;
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double integral = 0.0;
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#pragma omp parallel for reduction (+ : integral)
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for (unsigned int i = 0; i < Nv; ++i)
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integral += eval_ftilda(n, x, v_min + i * dv, E_coeffs) * dv;
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integral += eval_ftilda(n, x, v_min + i * dv, E_coeffs);
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return 1.0 - integral;
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return 1.0 - integral*dv;
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}
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void NuFISolver::run()
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@@ -93,17 +131,21 @@ void NuFISolver::run()
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for (unsigned int it = 0; it < Nt; ++it)
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{
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stopwatch<double> timer;
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double time_elapsed_before = timer.elapsed();
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std::cout << "Timestep " << it << " / " << Nt << std::endl << std::endl;
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std::cout << "Timestep " << it << " / " << Nt << " (simulation time = "<< it*Parameters::DT << ")"<< std::endl;
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// compute rho
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double dx = Parameters::SPLINE_DX;
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double x = Parameters::X_DOMAIN_LEFT;
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for(size_t i = 0; i<Nx; i++, x+=dx)
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#pragma omp parallel for
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for(size_t i = 0; i<Nx; i++)
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{
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double x = Parameters::X_DOMAIN_LEFT + i*dx;
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double ith_rho = eval_rho(it, x, coeffs.get(),Parameters::NV);
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AssertThrow(std::isfinite(ith_rho), ExcMessage("NaN detected in rho"));
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rho.get()[i] = ith_rho;
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}
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@@ -126,7 +168,9 @@ void NuFISolver::run()
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double* current_coeffs = coeffs.get() + it*stride_t;
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interpolate<double, Parameters::SPLINE_ORDER>(current_coeffs, sampled_potential.data());
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std::vector<double> E_x(Nx,0.0) ;
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#pragma omp parallel for
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for(size_t ix=0; ix<Nx; ++ix)
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{
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E_x[ix] = -eval<1>(Parameters::X_DOMAIN_LEFT+ix*dx, current_coeffs);
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@@ -134,12 +178,13 @@ void NuFISolver::run()
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double timer_elapsed = timer.elapsed();
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total_time += timer_elapsed;
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std::cout << "step made in "<< timer_elapsed-time_elapsed_before <<" seconds\n\n";
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if (it % Parameters::PLOT_FREQUENCY == 0)
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{
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std::cout << "Saving results... ";
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save_ftilda(*this, it, coeffs.get(), 128, 128, "results/ftilda_" + std::to_string(it) + ".dat");
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save_rho(*this, it, coeffs.get(), 128, "results/rho_" + std::to_string(it) + ".dat");
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save_f(*this, it, coeffs.get(), Parameters::SPLINE_NX, Parameters::NV, "results/ftilda_" + std::to_string(it) + ".dat");
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save_rho(*this, it, coeffs.get(), Parameters::SPLINE_NX, "results/rho_" + std::to_string(it) + ".dat");
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// save_Efield(it, coeffs.get(), 128, "results/field_" + std::to_string(it) + ".dat");
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save_space_vector(E_x, "field", it);
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+2
-2
@@ -8,7 +8,7 @@
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#include "nufi/nufi_solver.h"
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void save_ftilda( const NuFISolver &solver,
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void save_f( const NuFISolver &solver,
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unsigned int n,
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const double *E_coeffs,
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unsigned int Nx_out,
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@@ -38,7 +38,7 @@ void save_ftilda( const NuFISolver &solver,
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{
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double v = vmin + (j + 0.5)*dv;
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double val = solver.eval_ftilda(n, x, v, E_coeffs);
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double val = solver.eval_f(n, x, v, E_coeffs);
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file << val;
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