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Efficient Approaches to Gaussian Process
Classification
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| | Lehel Csato, Ernest Fokue, Manfred Opper, Bernhard Schottky and Ole Winthe |
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Abstract:
We present three simple approximations for the calculation of
the posterior mean in Gaussian Process classification. The first
two methods are related to mean field ideas known in Statistical
Physics. The third approach is based on Bayesian online approach
which was motivated by recent results in the Statistical Mechanics
of Neural Networks. We present simulation results showing: 1. that
the mean field Bayesian evidence may be used for hyperparameter
tuning and 2. that the online approach may achieve a low training
error fast.
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