A cooccurrence-based thesaurus and two applications to information retrieval

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This paper presents a new method for computing a thesaurus from a text corpus. Each word is represented as a vector in a multi-dimensional space that captures cooccurrence information. Words are defined to be similar if they have similar cooccurrence patterns. Two different methods for using these thesaurus vectors in information retrieval are shown to significantly improve performance over the Tipster reference corpus as compared to a term vector space baseline.

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论文评审过程:Received 1 September 1995, Accepted 2 August 1996, Available online 11 June 1998.

论文官网地址:https://doi.org/10.1016/S0306-4573(96)00068-4