invers from covariance of a matrix*matrix'

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eri am 2 Jan. 2012

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Akzeptierte Antwort: Teja Muppirala

given a is a matrix, is the matrix of covariance of (a*a') is always singular?

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the cyclist am 2 Jan. 2012

Can you please clarify? Are you interested in the singularity of cov(a) for arbitrary a, or of cov(b), for b = (a*a')?

eri am 3 Jan. 2012

cov(b) for b=a*a'

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Teja Muppirala am 4 Jan. 2012

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cov(a) is ALWAYS singular for ANY square matrix a, because you subtract off the column means. This guarantees that you reduces the rank by one (unless it is already singular) before multiplying the matrix with its transpose.

a = rand(5,5); % a is an arbitrary square matrix
rank(a) %<-- is 5
a2 = bsxfun(@minus, a, mean(a));
rank(a2) %<-- is now 4
cova = a2'*a2/4   %<-- (rank 4) x (rank 4) = rank 4
cov(a)  %<-- This is the same as "cova"
rank(cova) %<-- verify this is rank 4