Relaxations for inference in restricted Boltzmann machinesDownload PDF

23 Apr 2024 (modified: 24 Dec 2013)ICLR 2014 workshop submissionReaders: Everyone
Decision: submitted, no decision
Abstract: We propose a relaxation-based approximate inference algorithm that samples near-MAP configurations of a binary pairwise Markov random field. We experiment on MAP inference tasks in several restricted Boltzmann machines. We also use our underlying sampler to estimate the log-partition function of restricted Boltzmann machines and compare against other sampling-based methods.
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