Multiscale Conditional Random Fields for Semi-supervised Labeling and Classification

Published: 2011, Last Modified: 25 Jan 2025CRV 2011EveryoneRevisionsBibTeXCC BY-SA 4.0
Abstract: Motivated by the abundance of images labeled only by their captions, we construct tree-structured multiscale conditional random fields capable of performing semi-supervised learning. We show that such caption-only data can in fact increase pixel-level accuracy at test time. In addition, we compare two kinds of tree: the standard one with pair wise potentials, and one based on noisy-or potentials, which better matches the semantics of the recursive partitioning used to create the tree.
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