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Building a Social Media rating model

机译:建立社交媒体评级模型

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Social Media (SM) data are growing, and SM is becoming an acceptable part of daily life for billions of people around the world. Extracting information from Social Networking Sites (SNS) can provide great challenges as well as opportunities. Using SM data beyond day-to-day communication can provide additional values. There is much research and many products that are dedicated to take SNS beyond communication channels. In our research, we are going beyond specific tools inherent to the SM tools, such as Hashtag mentions and Like counts. Instead it will use text-based modeling, data mining techniques, natural process language, machine language, etc. to understand SM content to produce numeric ratings. The final contribution of this research is building a SM users' rating model for an event using SM data. At this point of our research, we are laying out a road map.
机译:社交媒体(SM)数据正在增长,并且SM已成为全球数十亿人日常生活中可接受的一部分。从社交网站(SNS)提取信息可以带来巨大的挑战和机遇。在日常通信之外使用SM数据可以提供其他价值。有很多研究和许多产品致力于使SNS超越通信渠道。在我们的研究中,我们将超越SM工具固有的特定工具,例如Hashtag提及次数和Like计数。相反,它将使用基于文本的建模,数据挖掘技术,自然过程语言,机器语言等来理解SM内容以产生数字等级。这项研究的最终贡献是使用SM数据为事件建立了SM用户评级模型。在研究的这一点上,我们正在制定路线图。

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