White zero mean gaussian random process with different variance

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Salman Farid
Salman Farid il 1 Apr 2019
Commentato: Adam Danz il 2 Apr 2019
Hi,
i want to generate White zero mean gaussian random process with different variance.
i am generating using below code, is that right??
C0 = normrnd(0,sigmatau0);
for n=1:10
C_s(n) = normrnd(0,sigmataun_s(n));
C_b(n) = normrnd(0,sigmataun_b(n));
end
sigmatau0,sigmatau_s and sigmatau_b is already define
thank you

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Adam Danz
Adam Danz il 1 Apr 2019
Modificato: Adam Danz il 1 Apr 2019
Yes, normrnd() is the function you want to use. The second input specifies the sandard deviation. You are generating one sample at each standard deviation -- is that really what you want to do?
Don't forget to allocate your loop variables.
C_s = zeros(1,10);
C_b = C_s;
for n = 1:10
...
end
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Salman Farid
Salman Farid il 2 Apr 2019
Modificato: Salman Farid il 2 Apr 2019
sigmatau0 = 2e-6;
sigmard = 5e-7;
for n=1:10
sigmataun_s(n) = sigmatau0 + sigmard.*((2*(n)+1-(-1).^n)./4);
sigmataun_b(n) = sigmatau0 + sigmard.*((2*(n)-1+(-1).^n)./4);
end
C0 = normrnd(0,sigmatau0);
C_s = zeros(1,10);
C_b= C_s;
for n=1:10
C_s(n) = normrnd(0,sigmataun_s(n));
C_b(n) = normrnd(0,sigmataun_b(n));
end
i already define it like this, but i am not sure if its right or not?
Adam Danz
Adam Danz il 2 Apr 2019
I didn't understand that time-interval question (and I'm still not sure that the code is doing what you want it to do). You are generating 10 randome numbers. Each of those 10 random numbers come from a different distribution with different standard deviations (all mean 0). Furthermore, the standard deviations are tiny (all very close to 0) so all of your random draws will be near 0.
Your first for-loop can be replaced with this:
n = 1:10;
sigmataun_s = sigmatau0 + sigmard.*((2*(n)+1-(-1).^n)./4);
sigmataun_b = sigmatau0 + sigmard.*((2*(n)-1+(-1).^n)./4);
You're using these variables to specify the standard deviation in normrnd() but both of these variables are vectors containing very small values (eg: 0.000005).

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