DocumentCode :
53520
Title :
Web-Page Recommendation Based on Web Usage and Domain Knowledge
Author :
Nguyen, Thi Thanh Sang ; Hai Yan Lu ; Jie Lu
Author_Institution :
Decision Syst. & e-Service Intell. (DeSI) Lab., Univ. of Technol., Sydney, NSW, Australia
Volume :
26
Issue :
10
fYear :
2014
fDate :
Oct. 2014
Firstpage :
2574
Lastpage :
2587
Abstract :
Web-page recommendation plays an important role in intelligent Web systems. Useful knowledge discovery from Web usage data and satisfactory knowledge representation for effective Web-page recommendations are crucial and challenging. This paper proposes a novel method to efficiently provide better Web-page recommendation through semantic-enhancement by integrating the domain and Web usage knowledge of a website. Two new models are proposed to represent the domain knowledge. The first model uses an ontology to represent the domain knowledge. The second model uses one automatically generated semantic network to represent domain terms, Web-pages, and the relations between them. Another new model, the conceptual prediction model, is proposed to automatically generate a semantic network of the semantic Web usage knowledge, which is the integration of domain knowledge and Web usage knowledge. A number of effective queries have been developed to query about these knowledge bases. Based on these queries, a set of recommendation strategies have been proposed to generate Web-page candidates. The recommendation results have been compared with the results obtained from an advanced existing Web Usage Mining (WUM) method. The experimental results demonstrate that the proposed method produces significantly higher performance than the WUM method.
Keywords :
data mining; ontologies (artificial intelligence); recommender systems; semantic Web; semantic networks; WUM method; Web usage data; Web usage mining method; Web-page candidates; Web-page recommendation strategy; Website; automatically generated semantic network; conceptual prediction model; domain knowledge; intelligent Web systems; knowledge discovery; ontology; satisfactory knowledge representation; semantic Web usage knowledge; semantic-enhancement; Data models; Navigation; Ontologies; Predictive models; Semantics; Web usage mining; Web-page recommendation; domain ontology; knowledge representation; semantic network;
fLanguage :
English
Journal_Title :
Knowledge and Data Engineering, IEEE Transactions on
Publisher :
ieee
ISSN :
1041-4347
Type :
jour
DOI :
10.1109/TKDE.2013.78
Filename :
6514870
Link To Document :
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