Borrar filtros
Borrar filtros

fft matlab, scaling amplitude problem

3 visualizaciones (últimos 30 días)
Bob GH
Bob GH el 30 de Mayo de 2013
Hi I've faced a problem in my homework coding. please help me to solve it.
I wrote a code for a problem, which i have its results. but after taking fft function from input, the amplitude of output is twice more than expected result.
what are the reasons that might be caused this?
I really appreciate it.
  1 comentario
Bob GH
Bob GH el 30 de Mayo de 2013
I wrote a part of my code related to fft :
clc; clear all;
fm=40; T=10; a=0; N=32768; %2^15 Cm=1.5; h=(T-a)/N; omega=2*pi*fm/T; hh=1/h; Iamp=2.25e3; V(1)=-65;
mhf(1)=mhfinf(V(1));
mhs(1)=mhsinf(V(1));
mNap(1)=mNapinf(V(1));
EL=leak(V(1),mhf(1),mhs(1),mNap(1));
t(1)=a;
Iinp(1)=a;
for j=1:N-1
Iinp(j+1)=Iamp*sin(omega*(t(j)^2));
%%%%%%%%% 4 step method of Runge-Kutta
K1=h*fftNapH(t(j),[V(j); mhf(j); mhs(j); mNap(j)],EL,Iinp(j+1)); deffv1=K1(1,1);mhf1=K1(2,1);mhs1=K1(3,1);mNap1=K1(4,1);
K2=h*fftNapH(t(j)+(h/2),[V(j)+(deffv1/2);mhf(j)+(mhf1/2);mhs(j)+(mhs1/2);mNap(j)+(mNap1/2)],EL,Iinp(j+1)); deffv2=K2(1,1);mhf2=K2(2,1);mhs2=K2(3,1);mNap2=K2(4,1);
K3=h*fftNapH(t(j)+(h/2),[V(j)+(deffv2/2);mhf(j)+(mhf2/2);mhs(j)+(mhs2/2);mNap(j)+(mNap2/2)],EL,Iinp(j+1)); deffv3=K3(1,1);mhf3=K3(2,1);mhs3=K3(3,1);mNap3=K3(4,1);
K4=h*fftNapH(t(j)+h,[V(j)+deffv3;mhf(j)+mhf3;mhs(j)+mhs3;mNap(j)+mNap3],EL,Iinp(j+1)); deffv4=K4(1,1);mhf4=K4(2,1);mhs4=K4(3,1);mNap4=K4(4,1);
V(j+1)=V(j)+1/6*(deffv1+(2*deffv2)+(2*deffv3)+deffv4); mhf(j+1)=mhf(j)+1/6*(mhf1+2*mhf2+2*mhf3+mhf4); mhs(j+1)=mhs(j)+1/6*(mhs1+2*mhs2+2*mhs3+mhs4); mNap(j+1)=mNap(j)+1/6*(mNap1+2*mNap2+2*mNap3+mNap4);
t(j+1)=t(j)+h;
end
V2=fft(V1,N); V3=V2(1:N/2); amp=abs(V3); ampb=amp(2:length(amp)); % remove DC part f= (0:N/2-1)*hh/N;
figure(2),plot(f,ampb) xlabel('Freq') ylabel('Amplitude') axis([0 50 0 2000])

Iniciar sesión para comentar.

Iniciar sesión para responder a esta pregunta.

Respuestas (2)

Wayne King
Wayne King el 30 de Mayo de 2013
You should always show your code:
fs = 1000;
t = 0:1/fs:1-1/fs;
L = length(x);
xdft = fft(x)/L;
plot(abs(xdft))
Exactly as I expect two peaks with amplitude 0.5
Or
xdft = 2*fft(x)/L;
xdft = xdft(1:length(x)/2+1);
plot(abs(xdft))
  4 comentarios
Mostrar 2 comentarios más antiguos
Bob GH
Bob GH el 30 de Mayo de 2013
thanks for your reply Wayne King. i wrote a relevant part of my code
Bob GH
Bob GH el 30 de Mayo de 2013
I wrote a part of my code related to fft :
clc; clear all;
fm=40; T=10; a=0; N=32768; %2^15 Tfft=10; Cm=1.5; h=(T-a)/N; omega=2*pi*fm/T; hh=1/h; Iamp=2.25e3; V(1)=-65;
mhf(1)=mhfinf(V(1));
mhs(1)=mhsinf(V(1));
mNap(1)=mNapinf(V(1));
EL=leak(V(1),mhf(1),mhs(1),mNap(1));
t(1)=a;
Iinp(1)=a;
for j=1:N-1
Iinp(j+1)=Iamp*sin(omega*(t(j)^2));
%%%%%%%%% 4 step method of Runge-Kutta
K1=h*fftNapH(t(j),[V(j); mhf(j); mhs(j); mNap(j)],EL,Iinp(j+1)); deffv1=K1(1,1);mhf1=K1(2,1);mhs1=K1(3,1);mNap1=K1(4,1);
K2=h*fftNapH(t(j)+(h/2),[V(j)+(deffv1/2);mhf(j)+(mhf1/2);mhs(j)+(mhs1/2);mNap(j)+(mNap1/2)],EL,Iinp(j+1)); deffv2=K2(1,1);mhf2=K2(2,1);mhs2=K2(3,1);mNap2=K2(4,1);
K3=h*fftNapH(t(j)+(h/2),[V(j)+(deffv2/2);mhf(j)+(mhf2/2);mhs(j)+(mhs2/2);mNap(j)+(mNap2/2)],EL,Iinp(j+1)); deffv3=K3(1,1);mhf3=K3(2,1);mhs3=K3(3,1);mNap3=K3(4,1);
K4=h*fftNapH(t(j)+h,[V(j)+deffv3;mhf(j)+mhf3;mhs(j)+mhs3;mNap(j)+mNap3],EL,Iinp(j+1)); deffv4=K4(1,1);mhf4=K4(2,1);mhs4=K4(3,1);mNap4=K4(4,1);
V(j+1)=V(j)+1/6*(deffv1+(2*deffv2)+(2*deffv3)+deffv4); mhf(j+1)=mhf(j)+1/6*(mhf1+2*mhf2+2*mhf3+mhf4); mhs(j+1)=mhs(j)+1/6*(mhs1+2*mhs2+2*mhs3+mhs4); mNap(j+1)=mNap(j)+1/6*(mNap1+2*mNap2+2*mNap3+mNap4);
t(j+1)=t(j)+h;
end
V2=fft(V1,N); V3=V2(1:N/2); amp=abs(V3); ampb=amp(2:length(amp)); % remove DC part f= (0:N/2-1)*hh/N;
figure(2),plot(f,ampb) xlabel('Freq') ylabel('Amplitude') axis([0 50 0 2000])

Iniciar sesión para comentar.

Azzi Abdelmalek
Azzi Abdelmalek el 30 de Mayo de 2013
That means that, before calculating the fft, you've made some errors, which we can't find, because you have not posted the code.
  2 comentarios
Bob GH
Bob GH el 30 de Mayo de 2013
thanks for your reply. actually, It has 10++ line of code and i do not know which part do you need? is there any distinguished reason for my problem? because, my result is exactly twice of expected result.
Wayne King
Wayne King el 30 de Mayo de 2013
Editada: Wayne King el 30 de Mayo de 2013
Does 10++ mean 12 lines? If it is a reasonable number, please post it all. Did you look at the code I posted below?

Iniciar sesión para comentar.

Categorías

Más información sobre Fourier Analysis and Filtering en Help Center y File Exchange.

Etiquetas

Community Treasure Hunt

Find the treasures in MATLAB Central and discover how the community can help you!

Start Hunting!

Translated by