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I have a 30-vector, x where each element of x follows a standardised normal distribution. So in Matlab,

I have:

for i=1:30;
x(i)=randn;
end;

Now I want to create 30*30=900 elements from vector, x to make a 900-vector, C defined as follows:

enter image description here

I am unable to do the loop for two variables (k and l) properly. I have:

for k=1:30,l=1:30;
C(k,l)=(1/30)*symsum((x(i))*(x(i-abs(k-l))),1,30+abs(k-l));
end

It says '??? Undefined function or method 'symsum' for input arguments of type 'double'.'

I hope to gain from this a 900-vector, C which I will then rewrite as a matrix. The reason I have using two indices k and l instead of one is because I eventually want these indices to denote the (k,l)-entry of such a matrix so it is important that that my 900-vector will be in the form of C = [ row 1 row 2 row 3 ... row 30 ] so I can use the reshape tool i.e.

C'=reshape(C,30,30)

Could anyone help me with the code for the summation and getting such a 900 vector.

share|improve this question
    
Where to start from ... for the first you can simply do x=randn(1,30). Your second code block has no sense at all in Matlab ... as you cannot loop through 2 variables on the way you are trying to. Either you make both k and l depend on i and loop through i. What you tried makes not sense as you try to loop along i when that doesn't exist, hence the error. Then ' has a meaning in Matlab help ctranspose and you should remove it from where you placed it. Furthermore, I don't think you need reshaping at all. I'd encourage you to read any Matlab intro. –  Drodbar Jul 13 '12 at 13:01
1  
symsum is for symbolic variables, not actual numbers. –  tmpearce Jul 13 '12 at 13:03
    
Thanks for the tips on the short cuts, I'm really new to Matlab and I need to get this to work for a specific task. I am trying to Google and find a similar post but I don't quite know what I'm looking for. Is there any Matlab intro you can suggest? I will change the C' to D. A question, finding this 900-vector possible right? –  user1523500 Jul 13 '12 at 13:09
    
You deleted your question on Mathematica stackexchange. I was going to post an answer. Shame on you! :) –  belisarius Jun 12 at 13:46
    
I am about to repost it, I realsied I made some mistakes on the question! –  user1523500 Jun 12 at 13:48

2 Answers 2

up vote 2 down vote accepted

Let's try to make this a bit efficient.

n = 30;
x = randn(n,1);

%# preassign C for speed
C = zeros(n); 

%# fill only one half of C, since it's symmetric
for k = 2:n
   for l = 1:k-1
      %# shift the x-vector by |k-l| and sum it up
      delta = k-l; %# k is always larger than l
      C(k,l) = sum( x(1:end-delta).*x(1+delta:end) );
   end
end

%# fill in the other half of C
C = C + C';

%# add the diagonal (where delta is 0, and thus each
%# element of x is multiplied with itself
C(1:n+1:end) = sum(x.^2);
share|improve this answer
    
Thank you very much, this seems to have cracked it! I really appreciate the help. –  user1523500 Jul 13 '12 at 13:26
    
@user1523500: I have, on purpose, included a few vectorization tricks. I encourage you to go through the code and make sure that you understand what everything does. –  Jonas Jul 13 '12 at 13:59

It seems to me that you want a matrix C of 30x30 elements. Given the formula that you provided I would do

x = randn(1,30)
C = zeros(30,30)
for k=1:30
    for l=1:30
        v = abs(k-l);
        for i =1:30-v
            C(k,l) = C(k,l) + x(i)*x(i+v);
        end
    end
end

if you actually need the vector you can obtain it from the matrix.

share|improve this answer
    
what about the missing end statements? –  Drodbar Jul 13 '12 at 13:05
    
added, cut & paste error –  igon Jul 13 '12 at 13:06
    
For some reason, the matrix that I get from this is the 0 matrix. –  user1523500 Jul 13 '12 at 13:14
    
have you initialized the x vector? x = randn(1,30) –  igon Jul 13 '12 at 13:18
    
I did, but no worries! The answer below seems to have cracked it. I appreciate the help guys! Thank you!! –  user1523500 Jul 13 '12 at 13:25

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