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Social Listening System Using Sentiment Classification for Discovery Support of Hot Topics

机译:基于情感分类的社交听力系统,用于热点话题的发现支持

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In recent years, data on SNS has been gathered and utilized for various marketing activities such as advertisement publicity activities, product planning, etc., are being implemented in many companies.When collecting data, it is common to set conditions such as collection period, language, sending country, and keywords. However, it is often necessary to confront a huge amount of data. Furthermore, it is usual that the collected data contains a large amount of unnecessary noise.Therefore, appropriate classification / extraction work is required in order to reach useful information and hot topics. But the operation is not always easy for everyone; hence we aimed to make everyone easily reach them.This system focuses on "sentiment" that many users are interested in. First, collect data such as posted sentences, extract sentiment (such as good, bad, praise and criticism) in them, and store in the database together with the original ones. This operation is automatically executed.Then, it is surveyed what kind of sentiment is included in a target topic, or conversely, what topic has relationship with a certain sentiment. This system searches information from the previously explained database, and aggregates and visualizes it. This operation is executed based on user’s input.These functions help us to discover hot topics in SNS from various perspectives because the operation is easy for everyone.In this paper, we explain the function, configuration and usage of this developed system.
机译:近年来,许多公司正在实施有关SNS的数据,并将其用于各种营销活动,例如广告宣传活动,产品计划等。在收集数据时,通常会设置诸如收集时间,语言,发送国家/地区和关键字。但是,通常有必要面对大量数据。此外,通常所收集的数据包含大量不必要的噪声,因此需要适当的分类/提取工作才能获得有用的信息和热门话题。但是每个人的操作并不总是那么容易。因此,我们的目标是使每个人都能轻松找到他们。此系统专注于许多用户感兴趣的“情感”。首先,收集诸如张贴的句子之类的数据,提取其中的情感(例如好,坏,赞美和批评),以及与原始数据库一起存储在数据库中。该操作将自动执行,然后调查目标主题中包含哪种情感,或者反之,哪种主题与特定情感有关系。该系统从先前说明的数据库中搜索信息,并将其汇总并可视化。此操作基于用户的输入执行。这些功能使我们从每个角度都可以轻松发现SNS中的热门话题,因为该操作对每个人都很容易。本文介绍了此开发系统的功能,配置和用法。

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