Neural conditional random fields

Trinh–Minh–Tri Do, Thierry Artieres ; JMLR W&CP 9:177-184, 2010.

Abstract

We propose a non-linear graphical model for structured prediction. It combines the power of deep neural networks to extract high level features with the graphical framework of Markov networks, yielding a powerful and scalable probabilistic model that we apply to signal labeling tasks.



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