Bayesian Learning in Text SummarizationDownload PDF

2005 (modified: 16 Jul 2019)HLT/EMNLP 2005Readers: Everyone
Abstract: The paper presents a Bayesian model for text summarization, which explicitly encodes and exploits information on how human judgments are distributed over the text. Comparison is made against non Bayesian summarizers, using test data from Japanese news texts. It is found that the Bayesian approach generally leverages performance of a summarizer, at times giving it a significant lead over non-Bayesian models.
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