Compute energy, enstrophy and alpha all at once
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@ -97,7 +97,7 @@ int main (
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energy(parameters.K1, parameters.K2, parameters.N1, parameters.N2, parameters.nsteps, parameters.nu, parameters.delta, parameters.L, u0, g, parameters.print_freq, nthreads);
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}
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else if(command==COMMAND_ALPHA){
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alpha(parameters.K1, parameters.K2, parameters.N1, parameters.N2, parameters.nsteps, parameters.nu, parameters.delta, parameters.L, u0, g, parameters.print_freq, nthreads);
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eea(parameters.K1, parameters.K2, parameters.N1, parameters.N2, parameters.nsteps, parameters.nu, parameters.delta, parameters.L, u0, g, parameters.print_freq, nthreads);
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}
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else if(command==COMMAND_QUIET){
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quiet(parameters.K1, parameters.K2, parameters.N1, parameters.N2, parameters.nsteps, parameters.nu, parameters.delta, parameters.L, u0, g, nthreads);
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@ -92,8 +92,8 @@ int energy(
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fft_vect fft1;
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fft_vect fft2;
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fft_vect ifft;
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int kx,ky;
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double energy;
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double avg;
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ns_init_tmps(&u, &tmp1, &tmp2, &tmp3, &fft1, &fft2, &ifft, K1, K2, N1, N2, nthreads);
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// copy initial condition
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@ -107,12 +107,7 @@ int energy(
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ins_step(u, K1, K2, N1, N2, nu, delta, L, g, fft1, fft2, ifft, tmp1, tmp2, tmp3);
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if(t%print_freq==0){
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energy=0.;
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for(kx=-K1;kx<=K1;kx++){
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for (ky=-K2;ky<=K2;ky++){
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energy+=__real__ (u[klookup(kx,ky,2*K1+1,2*K2+1)]*conj(u[klookup(kx,ky,2*K1+1,2*K2+1)]));
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}
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}
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energy=compute_energy(u, K1, K2);
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// running average
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if(t>0){
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@ -128,8 +123,8 @@ int energy(
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return(0);
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}
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// compute alpha as a function of time in the I-NS equation
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int alpha(
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// compute energy, enstrophy, alpha as a function of time in the I-NS equation
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int eea(
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int K1,
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int K2,
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int N1,
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@ -147,8 +142,8 @@ int alpha(
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_Complex double* tmp1;
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_Complex double* tmp2;
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_Complex double* tmp3;
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_Complex double alpha;
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_Complex double avg;
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double alpha, energy, enstrophy;
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double avg_e,avg_a,avg_en;
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unsigned int t;
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fft_vect fft1;
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fft_vect fft2;
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@ -160,21 +155,28 @@ int alpha(
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// init running average
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avg=0;
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avg_e=0;
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avg_a=0;
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avg_en=0;
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// iterate
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for(t=0;t<nsteps;t++){
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ins_step(u, K1, K2, N1, N2, nu, delta, L, g, fft1, fft2, ifft, tmp1, tmp2, tmp3);
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energy=compute_energy(u, K1, K2);
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alpha=compute_alpha(u, K1, K2, g);
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enstrophy=compute_enstrophy(u, K1, K2, L);
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// running average
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if(t>0){
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avg=avg-(avg-alpha)/t;
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avg_e=avg_e-(avg_e-energy)/t;
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avg_a=avg_a-(avg_a-alpha)/t;
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avg_en=avg_en-(avg_en-enstrophy)/t;
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}
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if(t>0 && t%print_freq==0){
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fprintf(stderr,"% .15e % .15e % .15e % .15e % .15e\n",t*delta, __real__ avg, __imag__ avg, __real__ alpha, __imag__ alpha);
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printf("% .15e % .15e % .15e % .15e % .15e\n",t*delta, __real__ avg, __imag__ avg, __real__ alpha, __imag__ alpha);
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fprintf(stderr,"%d % .8e % .8e % .8e % .8e % .8e % .8e % .8e\n",t,t*delta, avg_a, avg_e, avg_en, alpha, energy, enstrophy);
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printf("%8d % .15e % .15e % .15e % .15e % .15e % .15e % .15e\n",t,t*delta, avg_a, avg_e, avg_en, alpha, energy, enstrophy);
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}
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}
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@ -539,7 +541,7 @@ int ns_T_nofft(
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}
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// compute alpha
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_Complex double compute_alpha(
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double compute_alpha(
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_Complex double* u,
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int K1,
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int K2,
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@ -556,7 +558,40 @@ _Complex double compute_alpha(
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}
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}
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return(num/denom);
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return __real__ (num/denom);
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}
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// compute energy
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double compute_energy(
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_Complex double* u,
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int K1,
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int K2
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){
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int kx,ky;
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double out=0.;
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for(kx=-K1;kx<=K1;kx++){
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for (ky=-K2;ky<=K2;ky++){
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out+=__real__ (u[klookup(kx,ky,2*K1+1,2*K2+1)]*conj(u[klookup(kx,ky,2*K1+1,2*K2+1)]));
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}
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}
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return out;
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}
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// compute enstrophy
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double compute_enstrophy(
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_Complex double* u,
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int K1,
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int K2,
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double L
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){
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int kx,ky;
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double out=0.;
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for(kx=-K1;kx<=K1;kx++){
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for (ky=-K2;ky<=K2;ky++){
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out+=__real__ (4*M_PI*M_PI/L/L*(kx*kx+ky*ky)*u[klookup(kx,ky,2*K1+1,2*K2+1)]*conj(u[klookup(kx,ky,2*K1+1,2*K2+1)]));
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}
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}
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return out;
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}
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@ -18,8 +18,8 @@ int uk( int K1, int K2, int N1, int N2, unsigned int nsteps, double nu, double d
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// compute the energy as a function of time
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int energy( int K1, int K2, int N1, int N2, unsigned int nsteps, double nu, double delta, double L, _Complex double* u0, _Complex double* g, unsigned int print_freq, unsigned int nthreads);
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// compute alpha
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int alpha( int K1, int K2, int N1, int N2, unsigned int nsteps, double nu, double delta, double L, _Complex double* u0, _Complex double* g, unsigned int print_freq, unsigned int nthreads);
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// compute energy, enstrophy and alpha
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int eea( int K1, int K2, int N1, int N2, unsigned int nsteps, double nu, double delta, double L, _Complex double* u0, _Complex double* g, unsigned int print_freq, unsigned int nthreads);
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// compute solution as a function of time, but do not print anything (useful for debugging)
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int quiet( int K1, int K2, int N1, int N2, unsigned int nsteps, double nu, double delta, double L, _Complex double* u0, _Complex double* g, unsigned int nthreads);
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@ -46,7 +46,11 @@ int ns_T( _Complex double* u, int K1, int K2, int N1, int N2, fft_vect fft1, fft
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int ns_T_nofft( _Complex double* out, _Complex double* u, int K1, int K2, int N1, int N2);
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// compute alpha
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_Complex double compute_alpha( _Complex double* u, int K1, int K2, _Complex double* g);
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double compute_alpha( _Complex double* u, int K1, int K2, _Complex double* g);
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// compute energy
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double compute_energy( _Complex double* u, int K1, int K2);
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// compute enstrophy
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double compute_enstrophy( _Complex double* u, int K1, int K2, double L);
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// get index for kx,ky in array of size S
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int klookup( int kx, int ky, int S1, int S2);
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