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WNPWR : Web Navigation Prediction Framework for Webpage Recommendation

Sejal, D and Kamalakant, T and Tejaswi, V and Anvekar, Dinesh and Venugopal, KR and Iyengar, SS and Patnaik, LM (2015) WNPWR : Web Navigation Prediction Framework for Webpage Recommendation. In: IEEE 2nd International Conference on Recent Trends in Information Systems (ReTIS), JUL 09-11, 2015, Jadavpur Univ, Kolkata, INDIA, pp. 120-125.

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Official URL: http://dx.doi.org/10.1109/ReTIS.2015.7232864


Huge amount of user request data is generated in web-log. Predicting users' future requests based on previously visited pages is important for web page recommendation, reduction of latency, on-line advertising etc.. These applications compromise with prediction accuracy and modelling complexity. we propose a Web Navigation Prediction Framework for webpage Recommendation(WNPWR) which creates and generates a classifier based on sessions as training examples. As sessions are used as training examples, they are created by calculating average time on visiting web pages rather than traditional method which uses 30 minutes as default timeout. This paper uses standard benchmark datasets to analyze and compare our framework with two-tier prediction framework. Simulation results shows that our generated classifier framework WNPWR outperforms two-tier prediction framework in prediction accuracy and time.

Item Type: Conference Proceedings
Additional Information: IEEE 2nd International Conference on Recent Trends in Information Systems (ReTIS), Jadavpur Univ, Kolkata, INDIA, JUL 09-11, 2015
Department/Centre: Division of Electrical Sciences > Electronic Systems Engineering (Formerly Centre for Electronic Design & Technology)
Date Deposited: 24 Aug 2016 09:23
Last Modified: 24 Aug 2016 09:23
URI: http://eprints.iisc.ac.in/id/eprint/54543

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