A modified approach to keyword extraction based on word-similarity

Wenchao Meng, Liu Lianchen, Ting Dai · 2009

two keyword-extraction ways are usually used, one is simply using the information from exactly single word like word frequency and TF.IDF, the other is based on the relationship between words. The relationship is usually described as word similarity which derives from a corpus (WordNet, HowNet) or man-made thesaurus. With the information explosion nowdays, the words we using are growing and changing rapidly. A lot of new words are not specified in man-made corpus. This paper proposes a new method to build a word similarity thesaurus. Using the semantic information from the thesaurus, together with TF.IDF and word's first occurrence, a keyword extraction algorithm is demonstrated, the results and analysis are also given.

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