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Semantic Analysis on Product Review Headlines Based on Review Association Mechanism and Convolutional Neural Network

机译:基于审查协会机制和卷积神经网络的产品综述头条新闻的语义分析

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With the development of online shopping, product reviews and star ratings have an important impact on users' shopping behaviors, and the reviews can also urge merchants to improve their products. This article explores the internal connection between product reviews and star ratings, analyzes the key factors which deeply affect the star ratings, and constructs a review association mechanism based on high-frequency keywords to provide supplementary information for products with missing text reviews, which offers some valuable suggestions to merchants. At the same time, this article uses the headline which highly summarizes each product review to construct a convolutional neural network (CNN), and predicts the star ratings with high accuracy, which can also help users and merchants better understand those product reviews without star ratings.
机译:随着在线购物的发展,产品评论和明星评级对用户的购物行为产生了重要影响,审查也可以促进商家改善产品。 本文探讨了产品评论和星形评级之间的内部联系,分析了深深影响星形评级的关键因素,并根据高频关键字构建审查协会机制,为具有缺失文本审查的产品提供补充信息,提供一些 有价值的建议给商人。 与此同时,本文使用高度总结每个产品审查来构建卷积神经网络(CNN)的标题,并预测高精度的星形评级,也可以帮助用户和商家更好地了解没有明星评级的产品评论 。

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