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Design and Application of a Multi-Variant Expert System Using Apache Hadoop Framework

Author

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  • Muhammad Ibrahim

    (Department of Computer Science & IT, The Islamia University of Bahawalpur, Bahawalpur 63100, Pakistan)

  • Imran Sarwar Bajwa

    (Department of Computer Science & IT, The Islamia University of Bahawalpur, Bahawalpur 63100, Pakistan)

Abstract

Movie recommender expert systems are valuable tools to provide recommendation services to users. However, the existing movie recommenders are technically lacking in two areas: first, the available movie recommender systems give general recommendations; secondly, existing recommender systems use either quantitative (likes, ratings, etc.) or qualitative data (polarity score, sentiment score, etc.) for achieving the movie recommendations. A novel approach is presented in this paper that not only provides topic-based (fiction, comedy, horror, etc.) movie recommendation but also uses both quantitative and qualitative data to achieve a true and relevant recommendation of a movie relevant to a topic. The used approach relies on SentiwordNet and tf-idf similarity measures to calculate the polarity score from user reviews, which represent the qualitative aspect of likeness of a movie. Similarly, three quantitative variables (such as likes, ratings, and votes) are used to get final a recommendation score. A fuzzy logic module decides the recommendation category based on this final recommendation score. The proposed approach uses a big data technology, “Hadoop” to handle data diversity and heterogeneity in an efficient manner. An Android application collaborates with a web-bot to use recommendation services and show topic-based recommendation to users.

Suggested Citation

  • Muhammad Ibrahim & Imran Sarwar Bajwa, 2018. "Design and Application of a Multi-Variant Expert System Using Apache Hadoop Framework," Sustainability, MDPI, vol. 10(11), pages 1-21, November.
  • Handle: RePEc:gam:jsusta:v:10:y:2018:i:11:p:4280-:d:183891
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    References listed on IDEAS

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    1. Rajagopal, 2014. "The Human Factors," Palgrave Macmillan Books, in: Architecting Enterprise, chapter 9, pages 225-249, Palgrave Macmillan.
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    Cited by:

    1. Perano, Mirko & Casali, Gian Luca & Liu, Yulin & Abbate, Tindara, 2021. "Professional reviews as service: A mix method approach to assess the value of recommender systems in the entertainment industry," Technological Forecasting and Social Change, Elsevier, vol. 169(C).

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