A. Kumar, K. Aditya, S. A. Joseph Raj, V. Nandhakumar
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引用次数: 0
摘要
通过新闻、博客和产品评论等来源的抑郁检测方法,网络在挖掘关注方面发展迅速,考虑到早期的案例,所给出的回应很难确定。利用自然语言处理和光学字符识别技术。我们的实验将包括使用统计方法确定的实体分数与任何其他方法不同,该方法的质量完全独立于任何其他方法,并且可以确定分数,报告可以提供健康订阅。许多研究人员已经证明,通过用户在特定环境中生成的内容是确定人们心理健康水平的一种方法。本研究的目的是通过用户的帖子来发现社交网站,这有助于对用户的心理健康水平进行分类。关键词- ugc -用户生成内容或用户创建内容,光学特征识别,自然语言处理
Depression Detection Using Optical Characteristic Recognition and Natural Language Processing in SNS
Web is growing apace in mining concerns using depression detection method form sources such as news, blogs and which also includes product reviews considering the earlier cases the responses given are quite difficult to determine. A technique using Natural Language Processing and Optical Character Recognition. Our experiments are to include that an entity scores that are determined using are statistically different from any other approaches and the quality of the approach is completely independent from any other approaches and scores can be determined reports can be provided for health subscription. Many researchers have demonstrated that by user generated content in a context is a method to determining people’s mental health levels. The research is to find out the SNS by user post, which helps in classifying the mental health levels of the user. Keywords—UGC-User generated content or user-created content, Optical Characteristic Recognition, Natural Language Processing.