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An automated advisor system to suggest response after analyzing user writings in social network

机译:一个自动顾问系统,可在分析社交网络中的用户撰写内容后建议响应

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In the field of deep learning persistent research is going on to train the system by applying various algorithms and techniques. With a view to developing a well trained system many language corpus are built and then let the system to recognize the data. In this paper, we have proposed and implemented an automated comment advisor system that suggest emotion for comments after extracting writings (status or comments) from a social networking site (SNS) i.e. Facebook. Our developed system analyzes the sentences in each comment, parses the sentence for tokenize words to match the corpus type and finally makes a decision whether the comment reflects positive, negative or neutral emotion of human thoughts. This system also learns from others comment sentences and finds more appropriate emotion for the neutral sentences with ambiguous words where it is hard to find any emotion from the sentence.
机译:在深度学习领域,持续的研究正在通过应用各种算法和技术来训练系统。为了开发训练有素的系统,建立了许多语言语料库,然后让系统识别数据。在本文中,我们已经提出并实现了一个自动评论顾问系统,该系统可以在从社交网站(SNS)(即Facebook)中提取文字(状态或评论)后建议评论的情绪。我们开发的系统会分析每个评论中的句子,解析该句子以标记单词以匹配语料库类型,最后决定评论是否反映人类思想的正面,负面或中性情绪。该系统还可以从其他注释语句中学习,并为含糊不清单词的中性句子找到更合适的情感,而这些单词很难从句子中找到任何情感。

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