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  4. A collaborative filtering-based approach to personalized document clustering
 
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A collaborative filtering-based approach to personalized document clustering

Journal
Decision Support Systems
Journal Volume
45
Journal Issue
3
Pages
413-428
Date Issued
2008
Author(s)
Wei C.-P  
Yang C.-S
Hsiao, Han-Wei
DOI
10.1016/j.dss.2007.05.008
URI
https://www.scopus.com/inward/record.uri?eid=2-s2.0-44849109693&doi=10.1016%2fj.dss.2007.05.008&partnerID=40&md5=a5440a591fa227b39b9fee69e89bfcdd
https://scholars.lib.ntu.edu.tw/handle/123456789/456498
Abstract
Document clustering is an intentional act that reflects individual preferences with regard to the semantic coherency and relevant categorization of documents. Hence, effective document clustering must consider individual preferences and needs to support personalization in document categorization. Most existing document-clustering techniques, generally anchoring in pure content-based analysis, generate a single set of clusters for all individuals without tailoring to individuals' preferences and thus are unable to support personalization. The partial-clustering-based personalized document-clustering approach, incorporating a target individual's partial clustering into the document-clustering process, has been proposed to facilitate personalized document clustering. However, given a collection of documents to be clustered, the individual might have categorized only a small subset of the collection into his or her personal folders. In this case, the small partial clustering would degrade the effectiveness of the existing personalized document-clustering approach for this particular individual. In response, we extend this approach and propose the collaborative-filtering-based personalized document-clustering (CFC) technique that expands the size of an individual's partial clustering by considering those of other users with similar categorization preferences. Our empirical evaluation results suggest that when given a small-sized partial clustering established by an individual, the proposed CFC technique generally achieves better clustering effectiveness for the individual than does the partial-clustering-based personalized document-clustering technique. © 2007 Elsevier B.V. All rights reserved.
Type
journal article

臺大位居世界頂尖大學之列,為永久珍藏及向國際展現本校豐碩的研究成果及學術能量,圖書館整合機構典藏(NTUR)與學術庫(AH)不同功能平台,成為臺大學術典藏NTU scholars。期能整合研究能量、促進交流合作、保存學術產出、推廣研究成果。

To permanently archive and promote researcher profiles and scholarly works, Library integrates the services of “NTU Repository” with “Academic Hub” to form NTU Scholars.

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