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OpinionBlocks: A Crowd-Powered, Self-improving Interactive Visual Analytic System for Understanding Opinion Text

机译:OpinionBlocks:一个由人群驱动的,自我完​​善的交互式视觉分析系统,用于理解意见文本

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摘要

Millions of people rely on online opinions to make their decisions. To better help people glean insights from massive amounts of opinions, we present the design, implementation, and evaluation of OpinionBlocks, a novel interactive visual text analytic system. Our system offers two unique features. First, it automatically creates a fine-grained, aspect-based visual summary of opinions, which provides users with insights at multiple levels. Second, it solicits and supports user interactions to rectify text-analytic errors, which helps improve the overall system quality. Through two crowd-sourced studies on Amazon Mechanical Turk involving 101 users, OpinionBlocks demonstrates its effectiveness in helping users perform real-world opinion analysis tasks. Moreover, our studies show that the crowd is willing to correct analytic errors, and the corrections help improve user task completion time significantly.
机译:数以百万计的人依靠在线意见来做出决定。为了更好地帮助人们从大量意见中收集见解,我们提出了OpinionBlocks(一种新颖的交互式可视文本分析系统)的设计,实现和评估。我们的系统提供两个独特的功能。首先,它会自动创建基于方面的细粒度视觉意见摘要,从而为用户提供多层次的见解。其次,它征求并支持用户交互以纠正文本分析错误,这有助于提高整体系统质量。通过对涉及101个用户的Amazon Mechanical Turk进行的两项众包研究,OpinionBlocks证明了其在帮助用户执行现实世界中的意见分析任务方面的有效性。此外,我们的研究表明,人群愿意纠正分析错误,并且这些纠正有助于显着缩短用户任务完成时间。

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