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Comparative Review on Sentiment analysis-based Recommendation system

机译:基于情感分析的建议系统的比较审查

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Recommendation systems are ubiquitous these days and are used in nearly every domain; from learning which videos could be recommended to users on streaming websites, to products that can be sold on e-commerce platforms. These systems are driven by the copious amount of data that is scraped and collected from sources such as review platforms and social media websites. On this collected data, sentiment analysis can be performed to recommend products to users based on an overall analysis of sentiments conveyed using reviews, comments, or opinions. The information thus obtained is provided to already existing machine learning-based filtering techniques which include content-based, collaborative, and hybrid filtering. The aim of this paper is to provide a detailed review of various techniques used for sentiment-based recommendation systems and the inherent challenges in these techniques.
机译:推荐系统如今普遍存在,并且在几乎每个域名; 从学习将哪些视频推荐给流媒体网站上的用户,以便在电子商务平台上销售的产品。 这些系统由大量数据驱动,这些数据从诸如审查平台和社交媒体网站之类的来源刮擦和收集。 在这一收集的数据上,可以根据使用评论,评论或意见传达的情绪的整体分析,向用户推荐产品的情绪分析。 如此获得的信息被提供给已经存在的基于机器学习的过滤技术,包括基于内容的,协作和混合滤波。 本文的目的是提供对用于基于情绪的推荐系统的各种技术以及这些技术的固有挑战的详细审查。

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