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An improved stochastic gradient algorithm for principal componentanalysis and subspace tracking
Authors:Dehaene   J. Moonen   M. Vandewalle   J.
Affiliation:Belgian Nat. Fund for Sci. Res., Katholieke Univ., Leuven;
Abstract:We propose a new stochastic gradient algorithm for principal component analysis and subspace tracking, requiring O(nm) operations per update, where n is the number of input signals, and m is the signal subspace dimension. A parallel version with problem size independent throughput is obtained at the expense of O(n2) additional flops
Keywords:
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