Compression-based document length prior for language modelsOpen Website

2009 (modified: 12 Nov 2022)SIGIR 2009Readers: Everyone
Abstract: The inclusion of document length factors has been a major topic in the development of retrieval models. We believe that current models can be further improved by more refined estimations of the document's scope. In this poster we present a new document length prior that uses the size of the compressed document. This new prior is introduced in the context of Language Modeling with Dirichlet smoothing. The evaluation performed on several collections shows significant improvements in effectiveness.
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