Normalizing an FFT Vector
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bil
el 1 de Abr. de 2023
Comentada: David Goodmanson
el 5 de Abr. de 2023
Hey all,
I am currently trying to understand how exactly to normalize an fft eigenstate in the context of the 1-d particle in an infinite well. My code is as below:
L = 100;
x = linspace(0,L,L+1);
psi = sqrt(2/L)*sin(pi*x/L); %particle in a box ground state%
norm = trapz(x,psi.*conj(psi)); %normalized state has L-2 norm = 1%
F_T = fft(psi);
norm2 = trapz(2*pi*x/L, F_T.*conj(F_T));
The psi is the discretized array for my particle in position space that, as calculated in "norm", has L-2 norm of 1. Now I wanted to transform this into momentum space via the fft, but when I try to get the L-2 norm of it again as in "norm2", the norm is no longer 1. I have seen suggestions of dividing the fft by online but it doesn't seem to resolve the issue either. Any advice would be appreciated.
Thanks!
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Paul
el 1 de Abr. de 2023
Editada: Paul
el 2 de Abr. de 2023
Hi bil,
Define psi
syms x real
L = 100;
psi(x) = sqrt(sym(2)/L)*sin(sym(pi)*x/L)*rectangularPulse(0,L,x); %particle in a box ground state%
Its energy computed in the space domain is
Ecs = int(psi(x)*conj(psi(x)),x,-inf,inf)
Hmm, int can't handle that with the inf limits. Recompute with finite limits
Ecs = int(psi(x)*conj(psi(x)),x,-1e10,1e10)
Its Continuous Fourier Transform (CFT)
syms w real
Psi(w) = simplify(fourier(psi(x),x,w))
figure
fplot(abs(Psi(w)))
hold on
xlabel('rad/sec')
Its energy computed in the frequency domain is
Ecf = int(Psi(w)*conj(Psi(w)),w,-inf,inf)/2/sym(pi)
Can't find a closed form expression.
Verify the imaginary part of the integrand is 0
imag(Psi(w)*conj(Psi(w)))
Integrate just the real part
Ecf = int(simplify(real(Psi(w)*conj(Psi(w)))),w,-inf,inf)/2/sym(pi)
As expected, Ecf = Ecs.
Samples of psi. I'm going to change the number of samples to illustrate a point later.
N = 289;
x = linspace(0,L,N);
dx = x(2) - x(1)
psi = double(psi(x)); %particle in a box ground state%
Approximation of the energy integral via trapz yields the exact answer.
Ecs = trapz(x,psi.*conj(psi)) %normalized state has L-2 norm = 1%
The energy in the discrete space samples is
Eds = sum(psi.*conj(psi))
The continuous space energy is approximated by scaling by dx
Ecapproximate = Eds*dx
"DTFT" of the samples (quotes becasue the indpendependent variable is space, not time), w in rad/sample
[dtft,w] = freqz(psi,1,linspace(-pi,pi,2048));
Add to the plot. The DTFT has to be scaled by dx to approximate the CFT
plot(w/dx,abs(dtft*dx))
Discrete energy computed from the DTFT
Edtft = trapz(w,dtft.*conj(dtft))/2/pi
Approximate Ec after scaling by dx
Ecapproximate = Edtft*dx
DFT of the samples of psi
dft = fftshift(fft(psi));
Discrete energy in the frequency domain
Edft = sum(dft.*conj(dft))/N
Mulitply by dx to approximate Ec
Ecapproximate = Edft*dx
Can also approximate Ec via trapezoidal integration of the DFT
Define frequency vector (N is odd), rad/distance
w = ((-(N-1)/2):((N-1)/2))/N*2*pi/dx;
Integrate, divide by 2*pi as required when w is in rad/sample
Ecapproximate = trapz(w,(dft*dx).*conj(dft*dx))/2/pi
Add DFT to plot
stem(w,abs(dft)*dx)
xlim([-0.5 0.5])
legend('CFT','DTFT','DFT')
7 comentarios
Paul
el 4 de Abr. de 2023
Hi David,
Matlab had trouble too. If you can go back through the history of this Answer you'll see that I was originally using vpaintegral because I couldn't wrangle Matlab into finding a closed form expression. It wasn't until I forced Matlab to only integrate the real part of the integrand that it could come up with a closed form solution (I'm pretty sure I tried rewriting it in terms of complex exponentials first). But even that result is interesting.
Repeating the code from above.
syms x real
L = 100;
psi(x) = sqrt(sym(2)/L)*sin(sym(pi)*x/L)*rectangularPulse(0,L,x);
syms w real
Psi(w) = simplify(fourier(psi(x),x,w))
I = Psi(w)*conj(Psi(w))
I = simplify(real(I))
So the integrand has a form that at least looks potentially tractable. Maybe. But, I wouldn't want to integrate it by hand. The anti-derivative looks very complicated to me
E(w) = simplify(int(I,w))
But taking the limits results in the miracle, even with those log functions that (I think) only cancel each other in the limit
limit(E(x),x,inf) - limit(E(x),x,-inf)
David Goodmanson
el 5 de Abr. de 2023
Hi Paul,
Although this analytical solution aspect is not as important as the sum total of what you showed in your answer, I have a couple of comments. In this case with the limits of integration at +-inf, it does work to find the indefinite integral as a set of real functions and evauate it at the end points, but I don't think it's preferred. And for those functions, it appears that you might have to take someone's else's word for it on the values at +-inf.
The method I mentioned reduced everyhing to solving [ Int sin(x)/x = pi ]. That's dead easy to prove with complex variables. Even better, one can also go with complex integration of the original integrand from the get-go and deal with second order poles, which gives a shorter and more direct derivation than the one I posted.
Más respuestas (1)
VBBV
el 1 de Abr. de 2023
Try with fftshift function ,
L = 100;
x = linspace(0,L,L+1);
psi = sqrt(2/L)*sin(pi*x/L); %particle in a box ground state%
%<<norm is standard builtin function in matlab
Norm = trapz(x,psi.*conj(psi)) %normalized state has L-2 norm = 1%
F_T = (fftshift(psi));
F_T = norm(F_T)
2 comentarios
Paul
el 1 de Abr. de 2023
I thought the point in the Question is to transform to the frequency domain. But I don't see anything in the frequency domain in this Answer?
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