多对象情感向量聚合:一种潜在网络组织的提取方法

Wenli Liu, Hao Lu, M. Zheng, Julei Fu, Tao Wang
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引用次数: 0

摘要

本文旨在通过分析个体社会属性的情感维度,发现富社交媒体中潜在的网络组织。从社会学的角度来看,观点相同的人会有很大的可能性和机会一起攻击。监测这些潜在的网络组织可以帮助我们了解社会事件的趋势。当然,个人会对不同的事物,如人物、事件、组织或话题等有自己的看法。我们提出了一个有效的框架来计算个体对特定多个对象的意见作为他的情感向量。然后,我们根据个人的情绪向量检测潜在的网络组织。为了验证我们的方法,我们通过在新浪微博数据集上的实验来说明我们的框架的有用性,结果证明是有价值的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Multi-objects sentiment vector aggregation: An approach to extract latent cyber organizations
This paper aims at discovering latent cyber organizations in rich social media, through analysis sentiment dimension of individual's social attribute. From a sociology perspective, people who have the same point of views will have great probabilities and opportunities to aggression together. Monitoring these latent cyber organizations can help us understanding the tendency of social events. Naturally, individual will have his own opinions towards different objects, such as persons, events, organizations, or topics etc. We propose an effective framework to compute the individual's opinion towards certain multiple objects as his sentiment vector. Then, we detected latent cyber organizations based on the individuals' sentiment vector. To validate our approach, we illustrate the usefulness of our framework through an experiment in Sina microblog dataset, and the results demonstrate to be valuable.
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