社会舆论极化的混合情感与网络分析

A. Alamsyah, Fidocia Adityawarman
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引用次数: 15

摘要

社交媒体和用户生成内容(UGC)的快速增长为潜在的相关数据提供了丰富的来源。问题在于如何总结这些数据以理解并将其转化为信息。Twitter作为最受欢迎的社交网络和微博服务之一,可以从情感分析产生的内容方面进行分析。另一方面,也可以构建一些类型的网络来分析社会网络的结构和网络属性。本研究试图将内容与结构两种方法结合为一种混合方法,以对话网络的形式来识别社会意见的两极分化。情感分析用于确定公众情绪,社会网络分析用于分析网络结构,检测网络中的社区和有影响力的参与者。通过这种混合方法,我们对社会舆论极化有了全面的了解。作为个案研究,我们呈现了印尼在填海问题上真实的社会舆论两极分化。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hybrid sentiment and network analysis of social opinion polarization
The rapid growth of social media and user-generated contents (UGC) has provided a rich source of potentially relevant data. The problems arise on how to summarize those data to understand and transforming it into information. Twitter as one of the most popular social networking and micro-blogging service can be analyzed in terms of content produced with sentiment analysis. On the other hand, some types of networks can also be constructed to analyze the social network structure and network properties. This research intended to combine those content and structural approaches into hybrid approach for identifies social opinion polarization, this is in the form of conversation network. Sentiment analysis used to determine public sentiment, and social network analysis used to analyze the structure of the network, detecting communities and influential actors in the network. Using this hybrid approach, we have comprehensive understanding about social opinion polarization. As case study, we present real social opinion polarization about reclamation issue in Indonesia.
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