maximum eigenvalue of a matrix with rank one update

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Yang
Yang am 20 Jun. 2013
There is a (real symmetric) matrix A(t) updated recursively by
A(t)=(t-1)/t*A(t-1)+1/t*a(t)*a(t)',
where a(t) is a column vector.
Suppose the maximum eigenvalue of A(t-1) is known; then is there any efficient method to compute the maximum eigenvalue of A(t)?
Many thanks!
Yang
  2 Kommentare
Matt J
Matt J am 20 Jun. 2013
Is t>1?
Yang
Yang am 21 Jun. 2013
Yes. "t" actually represents time or iteration.

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Roger Stafford
Roger Stafford am 21 Jun. 2013
Yang, you appear to expect some direct relationship between the maximum eigenvector of A(t-1) and that of A(t), possibly also involving vector a(t). However, the maximum eigenvalue of A(t) is actually dependent on all the eigenvalues and all the eigenvectors of A(t-1), so the relationship would have to be very complicated. I see no better way of determining the maximum eigenvalue of A(t) than calling on the 'eig' or 'eigs' function directly, in spite of its being the result of a recursion.
If vector a were not dependent on t, the limiting case as t approaches infinity, would be just the rank one matrix a*a' itself with its single nonzero eigenvalue and corresponding eigenvector proportional to vector a. However you have presumably used the a(t) notation to indicate that a changes with changing t, so even that is untrue.
  1 Kommentar
Yang
Yang am 25 Jun. 2013
Roger, thank you very much for your response.
I have also realized that there is not a closed-form expression connecting the largest eigenvalue of A(t) and A(t-1), unless some special structures are assumed.

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