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SocialHelix: visual analysis of sentiment divergence in social media

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TLDR
SocialHelix is a novel visual design which enables the users to detect and trace topics and events occurring in social media, and to understand when and why divergences occurred and how they evolved among different social groups.
Abstract
Social media allow people to express and promote different opinions, on which people’s sentiments to a subject often diverge when their opinions conflict. An intuitive visualization that unfolds the process of sentiment divergence from the rich and massive social media data will have far-reaching impact on various domains including social science, politics and economics. In this paper, we propose a visual analysis system, SocialHelix, to achieve this goal. SocialHelix is a novel visual design which enables the users to detect and trace topics and events occurring in social media, and to understand when and why divergences occurred and how they evolved among different social groups. We demonstrate the effectiveness and usefulness of SocialHelix by conducting in-depth case studies on tweets related to the national political debates.

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Machine Learning With Big Data: Challenges and Approaches

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TL;DR: The longman elect new senior secondary theme book is a brand new task-based coursebook specially designed to meet the aims of the new high school curriculum for secondary 4 to 6 building on the solid foundation of knowledge skills values and attitudes laid down in the widely successful Longman elect junior secondary series as discussed by the authors.
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TargetVue: Visual Analysis of Anomalous User Behaviors in Online Communication Systems

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Use of Data Visualisation for Zero-Day Malware Detection

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References
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Book

Data Mining: Practical Machine Learning Tools and Techniques

TL;DR: This highly anticipated third edition of the most acclaimed work on data mining and machine learning will teach you everything you need to know about preparing inputs, interpreting outputs, evaluating results, and the algorithmic methods at the heart of successful data mining.
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Data Mining

Ian Witten
TL;DR: In this paper, generalized estimating equations (GEE) with computing using PROC GENMOD in SAS and multilevel analysis of clustered binary data using generalized linear mixed-effects models with PROC LOGISTIC are discussed.
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