A Risk Comparison of Ordinary Least Squares vs Ridge Regression
2011-05-04Unverified0· sign in to hype
Paramveer S. Dhillon, Dean P. Foster, Sham M. Kakade, Lyle H. Ungar
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We compare the risk of ridge regression to a simple variant of ordinary least squares, in which one simply projects the data onto a finite dimensional subspace (as specified by a Principal Component Analysis) and then performs an ordinary (un-regularized) least squares regression in this subspace. This note shows that the risk of this ordinary least squares method is within a constant factor (namely 4) of the risk of ridge regression.