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A Design of Personalized Rating Method Including Herd Influence Using Spark-Hadoop Framework
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Advisor
박기진
Affiliation
아주대학교 일반대학원
Department
일반대학원 산업공학과
Publication Year
2018-08
Publisher
The Graduate School, Ajou University
Keyword
Badwagon EffectSocial OpinionRating PredictionApache SparkHadoop
Description
학위논문(석사)--Graduate School of International Studies Ajou University :산업공학과,2018. 8
Abstract
The bandwagon effect is a psychological phenomenon that other people's behaviors, attitudes produce an influence on a person. This phenomenon has been proved that it even has an effect to user behaviors in online marketing environment. However, a few studies have considered both of the bandwagon effect and social group opinion simultaneously for improving personalized rating prediction performance. In this paper, I not only describe bandwagon effect and social group opinion as herd influence because they all can influence users' behaviors but also propose a novel formulation for predicting users' ratings by considering herd influence that each rating is considered as a function of user preference rating and group-based social opinion which are adjusted by bandwagon effect. For to process real big data, I used Spark-Hadoop framework which can make operations with a high speed. As a consequence, the proposed method outperforms the existing model significantly in improving the prediction accuracy of users' ratings on RMSE.
Language
eng
URI
https://dspace.ajou.ac.kr/handle/2018.oak/19186
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Thesis
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