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Lexical Matching-Based Approach for Multilingual Movie Recommendation Systems

Authors
Pham, Xuan HauJung, Jason J.Nguyen, Ngoc Thanh
Issue Date
Mar-2016
Publisher
SPRINGER-VERLAG BERLIN
Keywords
Recommendation systems; Multilingual movie; User profile
Citation
RECENT DEVELOPMENTS IN INTELLIGENT INFORMATION AND DATABASE SYSTEMS, v.642, pp 149 - 158
Pages
10
Journal Title
RECENT DEVELOPMENTS IN INTELLIGENT INFORMATION AND DATABASE SYSTEMS
Volume
642
Start Page
149
End Page
158
URI
https://scholarworks.bwise.kr/cau/handle/2019.sw.cau/48266
DOI
10.1007/978-3-319-31277-4_13
ISSN
1860-949X
1860-9503
Abstract
Recommendation systems (RecSys) have been developed for personalized users interaction process to deal with overload information. Movie Content-based recommendation approaches try to measure similarity between movie or users based on relevant information. Nowadays the amount of information on the web exists in several languages. The items description on the RecSys may be not only native languages but also multilingualism. Besides, users interact to the system come from many countries in different languages. However, most of these recommendation systems lack mechanisms to support users overcoming the language problem. Thus, in this paper, we propose a lexical matching-based approach to deal with multilingualism in our process and show efficient experiment for multilingual recommendation system in movie domain.
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