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Part-of-speech Tagging Using a Variable Memory Markov Model

by Hinrich Schütze, Yoram Singer · 1994

ISBN:  Unavailable

Category: Unavailable

Page count: 7

Abstract: "We present a new approach to disambiguating syntactically ambiguous words in context, based on Variable Memory Markov (VMM) models. In contrast to fixed-length Markov models, which predict based on fixed-length histories, variable memory Markov models dynamically adapt their history length based on the training data, and hence may use fewer parameters. In a test of a VMM based tagger on the Brown corpus, 95.81% of tokens are correctly classified."