Automatic query-based keyword and keyphrase extraction

Automatic query-based keyword and keyphrase extraction
نوع مقاله
عنوان همایش
International Symposium on Artificial Intelligence and Signal Processing (AISP)
شهر محل برگزاری همایش
شیراز
مؤسسه برگزارکننده
چکیده

Extracting keywords and keyphrases mainly for identifying content of a document, has an importance role in text processing tasks such as text summarization, information retrieval, and query expansion. In this research, we introduce a new keyword/keyphrase extraction approach in which both single and multi-document keyword/keyphrase extraction techniques are considered. The proposed approach is specifically practical when a user is interested in additional data such as keywords/keyphrases related to a topic or query. In the proposed approach, first a set of documents are retrieved based on user's query, then a single document keyword extraction method is applied to extract candidate keyword/keyphrases from each retrieved document. Finally, a new re-scoring scheme is introduced to extract final keywords/keyphrases. We have evaluated the proposed method based on the relationship between the final keyword/keyphrases with the initial user query, and based user's satisfaction. Our experimental results show how much the extracted keywords/keyphrases are relevant and well matched with user's need.

استناد

Bayatmakou, Farnoush, Abbas Ahmadi, and Azadeh Mohebi. 2017. Automatic query-based keyword and keyphrase extraction. Article Presented at International Symposium on Artificial Intelligence and Signal Processing (AISP), Shiraz.

شماره :
2986
آخرین به روزرسانی :
جمعه, 26 دی 1404 - 23:36
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