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    请使用永久网址来引用或连结此文件: https://nccur.lib.nccu.edu.tw/handle/140.119/99052


    题名: Impersonate Human Decision Making Process: An Interactive Context-Aware Recommender System
    作者: 楊亨利
    Wang, Chen-Shu;Lin, Shiang-Lin;Yang, Heng-Li
    贡献者: 資管系
    关键词: Context-aware recommender system;Recommender system;Reasoning engine;Human-computer interaction;Online car rental
    日期: 2016-03
    上传时间: 2016-07-14 16:57:49 (UTC+8)
    摘要: A considerable amount of information is quickly disseminated worldwide and users struggled to survive on such data tsunami. Context-recommender-aware systems (CAR) are then developed which enabling users to locate valuable and useful information from a large amount of disordered data. However, human decision-making contains multiple steps and a recursive loop, most users tend to adjust their decision many times instead of achieving the final decision-making immediately. Therefore, to replicate such a recursive process among multiple steps, the traditional CAR system should be altered as an interactive CAR (iCAR) system for improving the recommendation accuracy. In view of the deficiency in the present CAR, this study leads the concept of human-computer interaction in tradition CAR and establishes an interactive context-aware recommender System (iCAR). To validate the feasibility and applicability of the proposed iCAR system, a car rental website which is designed based on iCAR is shown as a demonstration. According to the car rental case shown, after couples of iterations, the decision criteria can be gradually clarified by the proposed algorithm of inferring engine. Also, iCAR can find users a car that most satisfies their requirements by using the contexts information. iCAR can improve the accuracy of traditional CAR system and provide user more precise recommendation results according to 3-dimensions information, including: user, item and context information. The iCAR system can be further expected to apply to various fields, such as online shopping or travel packages recommendations, to optimize recommendations results.
    關聯: Journal of Intelligent Information Systems,
    数据类型: article
    DOI 連結: http://dx.doi.org/10.1007/s10844-016-0401-z
    DOI: 10.1007/s10844-016-0401-z
    显示于类别:[金融學系] 期刊論文

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