Learning Stochastic Perceptrons Under k-Blocking Distributions
Marchand, Mario, Hadjifaradji, Saeed
–Neural Information Processing Systems
I} when the probability distribution that generates the input examples is member of a family that we call k-blocking distributions. Such distributions represent an important step beyond the case where each input variable is statistically independent since the 2k-blocking family contains all the Markov distributions of order k. By stochastic percept ron we mean a perceptron which, upon presentation of input vector x, outputs 1 with probability fCLJi WiXi - B).
Neural Information Processing Systems
Dec-31-1995
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