Recursion to compute convolution

15 Nov. 2020
3 Respuestas
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Actualizado a las 18 Nov. 2020
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Hello,
consider the sum of i.i.d. random variables with :
Is it possible to implement this recursively?
If it is, can anybody tell me how I can do that or give at least a hint?

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Image Analyst
Image Analyst el 15 de Nov. de 2020
If you want convolution, simply use the built-inconv() function. Don't do it manually - the hard way.
Alex Schmdit
Alex Schmdit el 15 de Nov. de 2020
Thank you. But how do I use it here? conv() takes only to input arguments?
Image Analyst
Image Analyst el 15 de Nov. de 2020
I don't know what that formula is, especially the index for P which is S(n-1)==(k - j), but I'm just going by what you say - that you want convolution. There is a built in function for that, that takes several arguments. First one is the main signal. Second argument is the filter weights of the scanning/sliding filter window. Third argument is whether you want the full convolution, only the valid elements, or an output that is the same size as the input signal. Look up the documentation and online tutorials about what convolution is. Find one that has diagrams that show the window as it slides along -- I'm sure there are lots of convolution tutorials out there.
Alex Schmdit
Alex Schmdit el 15 de Nov. de 2020
Editada: Alex Schmdit el 15 de Nov. de 2020
I am not sure we are talking about the same thing. If I want to compute the probability of a random variable and know its distribution, I can easy compute it. The distribution of sum of random variable is computed using convolution. For example take . Therefore:
The second factor would be . How do I use conv() here?

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Bruno Luong
Bruno Luong el 15 de Nov. de 2020
Editada: Bruno Luong el 15 de Nov. de 2020

1 voto

Here is a hint, you must replace XXX and YYY with something (after all it's your homework)
function P = Psum(n, k, alpha)
if k < n
error('not valid parameter');
end
P1 = @(j) 1/j^alpha - 1/(j+1)^alpha;
if n == 1
P = XXX;
else
P = 0;
for j=1:k-n+1
P = P + YYY *P1(j);
end
end
end

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Alex Schmdit
Alex Schmdit el 15 de Nov. de 2020
Thank you for answer. So in the case n==1, XXX=PSum(k-j)^P1(j).
In the other case I get: YYY=PSum(k-j). Is that a possible way which works in Matlab?
Bruno Luong
Bruno Luong el 15 de Nov. de 2020
Editada: Bruno Luong el 15 de Nov. de 2020
Wrong in both.
You should get (I think)
>> Psum(7,10,2)
ans =
0.1250
Alex Schmdit
Alex Schmdit el 15 de Nov. de 2020
Why do you set P=0 in the else part? I has to be YYY=PSum(n-1,k-j,alpha)
Alex Schmdit
Alex Schmdit el 15 de Nov. de 2020
XXX=P1(j)
Bruno Luong
Bruno Luong el 15 de Nov. de 2020
Editada: Bruno Luong el 15 de Nov. de 2020
XXX=P1(k)
You are now good!
Alex Schmdit
Alex Schmdit el 15 de Nov. de 2020
Thank youi very much. Can you explain me why you resest P=0 in the else part?
Bruno Luong
Bruno Luong el 15 de Nov. de 2020
To make a P = P + ... in the for-loop returns the right sum at the end.
Alex Schmdit
Alex Schmdit el 15 de Nov. de 2020
Last question. Why do you put in P1(k) and not j? j would not work. But what is the logic behind this?
Bruno Luong
Bruno Luong el 15 de Nov. de 2020
Editada: Bruno Luong el 15 de Nov. de 2020
For n = 1, the code must return P(S1 = k) that is P(X = k). You don't sum on j (or you sum on single j=k if you insist)
Alex Schmdit
Alex Schmdit el 15 de Nov. de 2020
Thank you very much:) Have a nice day.
Alex Schmdit
Alex Schmdit el 15 de Nov. de 2020
If I use this code to compute different convolutions in an other program, I get the following error:
Out of memory. The likely cause is an infinite recursion within the program.
Why do I get an infinte recursion?
Bruno Luong
Bruno Luong el 15 de Nov. de 2020
Editada: Bruno Luong el 15 de Nov. de 2020
Do you call with n<=0? or not integer?
Alex Schmdit
Alex Schmdit el 15 de Nov. de 2020
Yes it happens. Should I add: if(n<=0) return;?
Bruno Luong
Bruno Luong el 15 de Nov. de 2020
Editada: Bruno Luong el 15 de Nov. de 2020
function P = Psum(n, k, alpha)
if k < n
error('not valid parameter k');
end
P1 = @(j) 1/j^alpha - 1/(j+1)^alpha;
if n == 0
% just do it, I have no desire to explain it
P = double(k == 0);
else
P = 0;
for j=1:k-n+1
P = P + Psum(n-1, k-j, alpha)*P1(j);
end
end
end
Alex Schmdit
Alex Schmdit el 15 de Nov. de 2020
Sorry this leads to a negative proability
Alex Schmdit
Alex Schmdit el 15 de Nov. de 2020
Sorry I get the same.
Bruno Luong
Bruno Luong el 16 de Nov. de 2020
Editada: Bruno Luong el 16 de Nov. de 2020
I give here a non-recursive solution using CONV suggested by Paul
%
function P = Psum_nonrecurse(n, k, alpha)
% n scalar, k can be vector
if (n < 1) || any(k < n)
error('not valid parameter');
end
P1 = @(j) 1./j.^alpha - 1./(j+1).^alpha;
M = P1(1:max(k)-n+1);
P = M;
for i=1:n-1
P = conv(P, M);
end
P = P(k-n+1);
end
Alex Schmdit
Alex Schmdit el 16 de Nov. de 2020
Thank you very much for your help. Can you explain to me what the for loop does?
Bruno Luong
Bruno Luong el 16 de Nov. de 2020
Editada: Bruno Luong el 16 de Nov. de 2020
When you have two independent integer-discrete random variables X and Y, with repectively PDF A and B, the pdf of random variable X+Y is the convolution of A and B:
conv(A,B)
With that in mind, the for-loop computes then sequentially the pdf of
S(i+1) = S(i) + X(i+1).
If you only need to calculate P(S(n)=k) for a scalar k, this methods computes a lot of things and throw away a big part, as oppose to the recursive method. However if you need for a bunch of k, use CONV is a better approach. This function can be called with a vector k (but same n), not the recursive method that can only deal with scalar k.
Alex Schmdit
Alex Schmdit el 17 de Nov. de 2020
Sorry for the late answer. I think I get your point. Thank you very much. I appreciate your help:)

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Más respuestas (2)

Image Analyst
Image Analyst el 15 de Nov. de 2020

1 voto

If dist is your distribution, then the distribution of the sum would be
distSum = conv(dist, dist, 'full');
No recursion needed.

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Alex Schmdit
Alex Schmdit el 15 de Nov. de 2020
What should I fill in for dist?
Image Analyst
Image Analyst el 15 de Nov. de 2020
That is your probability distribution function for your random variable. Just one, not the distribution of the sum of the two but just one alone. For example for a uniform distribution it would be all ones, like
n = 500; % Whatever.
dist = ones(n, 1) / n;
subplot(2, 1, 1);
plot(dist, 'b-', 'LineWidth', 2);
title('PDF (Histogram) of One Variable', 'FontSize', 15);
ylim([0, 0.0025]);
grid on;
distSum = conv(dist, dist, 'full');
subplot(2, 1, 2);
plot(distSum, 'b-', 'LineWidth', 2);
grid on;
title('PDF (Histogram) of Sum of Two Variables', 'FontSize', 15);
where n is the resolution you want to digitize your continuous PDF at.
Image Analyst
Image Analyst el 15 de Nov. de 2020
Looks like you've accepted Bruno's answer, so I guess you got it all solved now.

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Paul
Paul el 15 de Nov. de 2020
Editada: Paul el 15 de Nov. de 2020

0 votos

Let the vector M be the distribution of integer valued X. For example, if X takes on values 1-6 uniformly, then
M = ones(1,6)/6;
Now you can compute the distribution of the sum of the random sample of X as:
Mn = M;
for ii = 2:n
Mn = conv(Mn,M);
end
This isn't recursive, so I'm not sure if that's the implementation you want. Also, it may not be efficient depending on the values of numel(M) and n because Mn is growing each time through the loop. But I think it gives you the result you seek. You'll have to be careful the indexing of Mn if X can take on values less than 1.

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Paul
Paul el 15 de Nov. de 2020
Editada: Paul el 18 de Nov. de 2020
Assuming X can only take on values j, j >= 1, then M(j) = P(X == j). If j can take on values < 1, then you'll have to do some reindexing because Matlab uses only 1-based indexing.

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Alex Schmdit
Alex Schmdit
el 15 de Nov. de 2020

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Paul
Paul
el 18 de Nov. de 2020

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