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A Recommender System Fusing Collaborative Filtering and User’s Review Mining

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/></div></noscript> <!-- /Yandex.Metrika counter --> <!-- Matomo --> <!-- End Matomo Code --> <title>A Recommender System Fusing Collaborative Filtering and User’s Review Mining</title> <meta name="description" content="A Recommender System Fusing Collaborative Filtering and User’s Review Mining"> <meta name="keywords" content="Recommender system, collaborative filtering, text mining, review mining."> <meta name="viewport" content="width=device-width, initial-scale=1, minimum-scale=1, maximum-scale=1, user-scalable=no"> <meta charset="utf-8"> <meta name="citation_title" content="A Recommender System Fusing Collaborative Filtering and User’s Review Mining"> <meta name="citation_author" content="Seulbi Choi"> <meta name="citation_author" content="Hyunchul Ahn"> <meta name="citation_publication_date" content="2016/07/03"> <meta name="citation_journal_title" content="International Journal of Computer and Information Engineering"> <meta name="citation_volume" content="10"> <meta 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href="https://publications.waset.org/search?q=Seulbi%20Choi">Seulbi Choi</a>, <a href="https://publications.waset.org/search?q=Hyunchul%20Ahn"> Hyunchul Ahn</a> </p> <p class="card-text"><strong>Abstract:</strong></p> Collaborative filtering (CF) algorithm has been popularly used for recommender systems in both academic and practical applications. It basically generates recommendation results using users&rsquo; numeric ratings. However, the additional use of the information other than user ratings may lead to better accuracy of CF. Considering that a lot of people are likely to share their honest opinion on the items they purchased recently due to the advent of the Web 2.0, user&#39;s review can be regarded as the new informative source for identifying user&#39;s preference with accuracy. Under this background, this study presents a hybrid recommender system that fuses CF and user&#39;s review mining. Our system adopts conventional memory-based CF, but it is designed to use both user&rsquo;s numeric ratings and his/her text reviews on the items when calculating similarities between users. <iframe src="https://publications.waset.org/10005202.pdf" style="width:100%; height:400px;" frameborder="0"></iframe> <p class="card-text"><strong>Keywords:</strong> <a href="https://publications.waset.org/search?q=Recommender%20system" title="Recommender system">Recommender system</a>, <a href="https://publications.waset.org/search?q=collaborative%20filtering" title=" collaborative filtering"> collaborative filtering</a>, <a href="https://publications.waset.org/search?q=text%20mining" title=" text mining"> text mining</a>, <a href="https://publications.waset.org/search?q=review%20mining." title=" review mining."> review mining.</a> </p> <p class="card-text"><strong>Digital Object Identifier (DOI):</strong> <a href="https://doi.org/10.5281/zenodo.1339436" target="_blank">doi.org/10.5281/zenodo.1339436</a> </p> <a href="https://publications.waset.org/10005202/a-recommender-system-fusing-collaborative-filtering-and-users-review-mining" class="btn btn-primary btn-sm">Procedia</a> <a href="https://publications.waset.org/10005202/apa" target="_blank" rel="nofollow" class="btn btn-primary btn-sm">APA</a> <a href="https://publications.waset.org/10005202/bibtex" target="_blank" rel="nofollow" class="btn btn-primary btn-sm">BibTeX</a> <a href="https://publications.waset.org/10005202/chicago" target="_blank" rel="nofollow" class="btn btn-primary btn-sm">Chicago</a> <a href="https://publications.waset.org/10005202/endnote" target="_blank" rel="nofollow" class="btn btn-primary btn-sm">EndNote</a> <a href="https://publications.waset.org/10005202/harvard" target="_blank" rel="nofollow" class="btn btn-primary btn-sm">Harvard</a> <a href="https://publications.waset.org/10005202/json" target="_blank" rel="nofollow" class="btn btn-primary btn-sm">JSON</a> <a href="https://publications.waset.org/10005202/mla" target="_blank" rel="nofollow" class="btn btn-primary btn-sm">MLA</a> <a href="https://publications.waset.org/10005202/ris" target="_blank" rel="nofollow" class="btn btn-primary btn-sm">RIS</a> <a href="https://publications.waset.org/10005202/xml" target="_blank" rel="nofollow" class="btn btn-primary btn-sm">XML</a> <a href="https://publications.waset.org/10005202/iso690" target="_blank" rel="nofollow" class="btn btn-primary btn-sm">ISO 690</a> <a href="https://publications.waset.org/10005202.pdf" target="_blank" class="btn btn-primary btn-sm">PDF</a> <span class="bg-info text-light px-1 py-1 float-right rounded"> Downloads <span class="badge badge-light">1587</span> </span> <p class="card-text"><strong>References:</strong></p> <br>[1] B. Sarwar, G. Karypis, J. Konstan, and J. Riedl, “Item-Based Collaborative Filtering Recommendation Algorithms,” in Proc. of the 10th international conference on World Wide Web, pp. 285-295, 2001. <br>[2] K.-j. Kim, and Y. Kim, “Recommender System using Implicit Trust-enhanced Collaborative Filtering,” Journal of Intelligence and Information Systems, vol. 19, no. 4, pp. 1-10, 2013. <br>[3] Z. Zhang, D. Zhang, and J. Lai, “urCF: User Review Enhanced Collaborative Filtering,” in Proc. of 20th Americas Conference on Information Systems, Savannah, pp. 1-11, 2014. <br>[4] B. Jeon, and H. Ahn, “A Collaborative Filtering System Combined with Users’ Review Mining: Application to the Recommendation of Smartphone Apps.” Journal of Intelligence and Information Systems, vol. 21, no. 2, pp. 1-18, 2015. <br>[5] S. Dhanasobhon, P.-y. Chen, and M. D. Smith, “An Analysis of the Differential Impact of Reviews and Reviewers at Amazon.com,” in Proc. of International Conference on Information Systems, pp. 1-17, 2007. <br>[6] K.-j. Kim, and H. Ahn, “Collaborative Filtering with a User-Item Matrix Reduction Technique,” International Journal of Electronic Commerce, vol. 16, no.1, pp. 107-128, 2011. <br>[7] X. Yang, Y. Guo, Y. Liu, and H. Steck, “A survey of collaborative filtering based social recommender systems,” Computer Communications, vol. 41, pp. 1-10, 2014. <br>[8] M. Balabanovic and Y. Shoham, “Fab: Content-based, collaborative recommendation,” Communications of the ACM, vol. 40, no. 3, pp. 66-72, 1997. <br>[9] D. Billsus and M.J. Pazzani, “Learning Collaborative Information Filters,” in Proc. of the 15th International conference on Machine Learning, pp. 46-54, 1998. <br>[10] Y.H. Cho and J.K. Kim, “Application of Web usage mining and product taxonomy to collaborative recommendations in e-commerce,” Expert Systems with Applications, vol. 23, no. 2, pp. 233-246, 2004. <br>[11] Y.H. Cho, J.K. Kim, and S.H. Kim, “A personalized recommender system based on Web usage mining and decision tree induction,” Expert Systems with Application, vol. 23, no. 3, pp. 329-342, 2002. <br>[12] J.S. Breese, D. Heckerman, and C. Kadie, “Empirical Analysis of Predictive Algorithms for Collaborative Filtering,” in Proc. of 14th Conference on Uncertainty in Artificial Intelligence, pp, 43-52, 1998. <br>[13] J.B. Schafer, J. Konstan, and J. Riedl, “Electronic commerce recommender applications,” Journal of Data Mining and Knowledge Discovery, vol. 5, no. 1-2, pp. 115-152, 2001. <br>[14] I.H. Witten, Text Mining, 2005. <br>[15] W. Fan, L. Wallace, S. Rich, and Z. Zhang, “Tapping the power of text mining,” Communications of the ACM, vol. 49, no. 9, pp. 76-82, 2006. </div> </div> </div> </main> <footer> <div id="infolinks" class="pt-3 pb-2"> <div class="container"> <div style="background-color:#f5f5f5;" class="p-3"> <div class="row"> <div class="col-md-2"> <ul class="list-unstyled"> About <li><a href="https://waset.org/page/support">About Us</a></li> <li><a href="https://waset.org/page/support#legal-information">Legal</a></li> <li><a target="_blank" rel="nofollow" href="https://publications.waset.org/static/files/WASET-16th-foundational-anniversary.pdf">WASET celebrates its 16th foundational anniversary</a></li> </ul> </div> <div class="col-md-2"> <ul class="list-unstyled"> Account <li><a href="https://waset.org/profile">My Account</a></li> </ul> </div> <div class="col-md-2"> <ul class="list-unstyled"> Explore <li><a href="https://waset.org/disciplines">Disciplines</a></li> <li><a href="https://waset.org/conferences">Conferences</a></li> <li><a href="https://waset.org/conference-programs">Conference Program</a></li> <li><a href="https://waset.org/committees">Committees</a></li> <li><a href="https://publications.waset.org">Publications</a></li> </ul> </div> <div class="col-md-2"> <ul class="list-unstyled"> Research <li><a href="https://publications.waset.org/abstracts">Abstracts</a></li> <li><a href="https://publications.waset.org">Periodicals</a></li> <li><a href="https://publications.waset.org/archive">Archive</a></li> </ul> </div> <div class="col-md-2"> <ul class="list-unstyled"> Open Science <li><a target="_blank" rel="nofollow" href="https://publications.waset.org/static/files/Open-Science-Philosophy.pdf">Open Science Philosophy</a></li> <li><a target="_blank" rel="nofollow" href="https://publications.waset.org/static/files/Open-Science-Award.pdf">Open Science Award</a></li> <li><a target="_blank" rel="nofollow" href="https://publications.waset.org/static/files/Open-Society-Open-Science-and-Open-Innovation.pdf">Open Innovation</a></li> <li><a target="_blank" rel="nofollow" href="https://publications.waset.org/static/files/Postdoctoral-Fellowship-Award.pdf">Postdoctoral Fellowship Award</a></li> <li><a target="_blank" rel="nofollow" href="https://publications.waset.org/static/files/Scholarly-Research-Review.pdf">Scholarly Research Review</a></li> </ul> </div> <div class="col-md-2"> <ul class="list-unstyled"> Support <li><a href="https://waset.org/page/support">Support</a></li> <li><a href="https://waset.org/profile/messages/create">Contact Us</a></li> <li><a href="https://waset.org/profile/messages/create">Report Abuse</a></li> </ul> </div> </div> </div> </div> </div> <div class="container text-center"> <hr style="margin-top:0;margin-bottom:.3rem;"> <a href="https://creativecommons.org/licenses/by/4.0/" target="_blank" class="text-muted small">Creative Commons Attribution 4.0 International License</a> <div id="copy" class="mt-2">&copy; 2024 World Academy of Science, Engineering and Technology</div> </div> </footer> <a href="javascript:" id="return-to-top"><i class="fas fa-arrow-up"></i></a> <div class="modal" id="modal-template"> <div class="modal-dialog"> <div class="modal-content"> <div class="row m-0 mt-1"> <div class="col-md-12"> <button type="button" class="close" data-dismiss="modal" aria-label="Close"><span aria-hidden="true">&times;</span></button> </div> </div> <div class="modal-body"></div> </div> </div> </div> <script src="https://cdn.waset.org/static/plugins/jquery-3.3.1.min.js"></script> <script src="https://cdn.waset.org/static/plugins/bootstrap-4.2.1/js/bootstrap.bundle.min.js"></script> <script src="https://cdn.waset.org/static/js/site.js?v=150220211556"></script> <script> jQuery(document).ready(function() { /*jQuery.get("https://publications.waset.org/xhr/user-menu", function (response) { jQuery('#mainNavMenu').append(response); });*/ jQuery.get({ url: "https://publications.waset.org/xhr/user-menu", cache: false }).then(function(response){ jQuery('#mainNavMenu').append(response); }); }); </script> </body> </html>

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