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Towards a Framework for Detecting and Managing Opinion Contradictions

机译:建立检测和管理意见矛盾的框架

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Sentiment Analysis gains in interest due to the large amount of potential applications and the increasing number of opinions expressed in particular in the Web. The focus of this paper is the development of a framework on top of sentiment analysis for detecting contradictions. First, we introduce a statistical model of contradictions based on a mean value and the variance of sentiments among different posts. It can be used to analyze and track sentiment evolution over time, to identify interesting trends and patterns or even to enable argument extraction. Using synthetic datasets, we demonstrate the effectiveness of our method in capturing contradictions on noisy data. Inspired by this model, which has proven to be effective and efficient for numeric sentiments, we are trying to generalize it for arbitrary opinion data and outline a universal framework which can be efficiently used on a large scale. We discuss various problems and challenges of such a formulation and outline the scope of our future work in this direction.
机译:由于大量潜在的应用程序以及越来越多的特别是在Web中表达的观点,情绪分析引起了人们的兴趣。本文的重点是在情感分析之上检测矛盾的框架的开发。首先,我们基于平均值和不同职位之间的情感差异引入矛盾的统计模型。它可以用于分析和跟踪情绪随时间的演变,识别有趣的趋势和模式,甚至可以进行参数提取。使用综合数据集,我们证明了我们的方法在捕获嘈杂数据上的矛盾方面的有效性。受此模型的启发,该模型已被证明对数字情感有效且高效,我们正在尝试将其概括为任意意见数据,并概述可以大规模有效使用的通用框架。我们讨论了这种提法的各种问题和挑战,并概述了我们在这一方向上未来工作的范围。

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