一种新的情感分类深度学习架构

Rahul Ghosh, Kumar Ravi, V. Ravi
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引用次数: 31

摘要

大量电子商务网站的发展导致了供应商之间的激烈竞争。为了获得新的和保留现有的客户,各种生产商和市场经理有效地使用在线反馈分析工具。大多数在线反馈分析工具都是使用情感分析模型构建的。情感分析是在过去15年里为评论挖掘过程而发展起来的。情感分析的一个重要子任务称为情感分类,主要用于确定书面评论是表达对目标实体的积极情绪还是消极情绪。为了获得更好的情感分类精度,我们提出了一种混合深度学习架构,该架构是两层受限玻尔兹曼机和概率神经网络的混合。与最先进的方法相比,所提出的方法在五种不同的数据集上产生了更好的准确性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A novel deep learning architecture for sentiment classification
Evolution of plethora of e-commerce sites resulted in fierce competition among their providers. In order to acquire new and retain existing customers, various producers and market managers effectively employ online feedback analytics tools. Most of the online feedback analysis tools are built using sentiment analysis models. Sentiment analysis evolved in the last one and half decades for review mining process. An important sub-task of sentiment analysis called sentiment classification is used mainly to decide whether a written review is expressing either positive or negative sentiment towards a target entity. In order to have better sentiment classification accuracy, we proposed a hybrid deep learning architecture, which is a hybrid of a two layered Restricted Boltzmann Machine and a Probabilistic Neural Network. The proposed approach yielded better accuracy for five different datasets compared to the state-of-the-art.
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