xcorr zero lag

1 Jan 2012
1 Answer
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Dear all, How can I use xcorr for 0 lags? In the test I'm running I don't want to 'slide' one sequence over another but keep them fixed. Thanks in advance. Happy new year! Diego

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Diego
Diego on 1 Jan 2012
This doesn't work
X1=xcorr(P,Q,0, 'coeff');
I need the signals to be superimposed but avoiding the sliding. Does this makes sense at all?
Diego
Diego on 1 Jan 2012
I'm correlating sequences of length 8.
Is this right?
Thanks,
Diego
the cyclist
the cyclist on 1 Jan 2012
I don't have the Signal Processing Toolbox, so I can't check myself, but the syntax in your first comment looks right to me. Can you give a more complete example of the code you have written, the result, and why specifically you believe it to be wrong (or not what you expect)?

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Answers (1)

Wayne King
Wayne King on 1 Jan 2012

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Hi Diego, Why doesn't this work?
[c,lags] = xcorr(randn(1000,1),rand(1000,1),0,'coeff');
This gives you exactly what you have described; the cross correlation between two input vectors at zero lag.
c is the value of the normalized cross correlation sequence at zero lag.

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Diego
Diego on 1 Jan 2012
Hi Wayne,
Thanks for your reply.
When I use 0 lags the plotted figures get side by side, not superimposed as when I don't declare the lags.
This is the code of the plot:
delay=d-max(length(P),length(Q));
figure,plot(P);
hold,plot([delay+1:length(P)+delay],Q,'r');
Happy new year!
Diego
Wayne King
Wayne King on 1 Jan 2012
you're not telling me what d means in the above. are P and Q different lengths? If they are, you can't use the 'coeff' option.
Diego
Diego on 1 Jan 2012
ughh I'm so sorry for omitting the information... the code just grows a lot and is a little messy at this time.
P and Q are the same length.
Thanks for your patience!
P=[M(l,i:i+rep-1)];
Q=[M(z,j:j+rep-1)];
[m,d]=max(X1);
Diego
Diego on 3 Jan 2012
It seems the problem was using the 'delay' for plotting.
I just removed it since at 0 lags it seems to be useless and the plot works as expected.
Many thanks,
Diego

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Diego
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