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Contradiction detection between opinions: From a big data perspective

机译:意见之间的矛盾检测:从大数据的角度来看

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This paper offers a solution to the problem of detecting contradictions among opinions on the same topic. The opinions are extracted from a large number of unstructured documents and stored in a structured format. Due to the increase in data available for analysis, we focus on providing a storage/retrieval and analysis solution suitable for managing large quantities of data while maintaining the speed and reliability present in smaller scale systems. Our approach consists in building a distributed system able to scale horizontally with the increase in input data without any significant performance decay. We represent opinions in a tuple based structured model, more suitable for retrieval and analysis. This approach allows us to formalize an algorithm for detecting contradictions between opinion tuples. Furthermore, we present a method for improving the recall of the system by using synonyms for the opinion target to expand the set of possible contradicting opinions. Our main focus is to optimize the structure of the opinion tuple to provide the best retrieval time and to allow for a simple, structured approach for detecting contradictions.
机译:本文为检测同一主题的意见中的矛盾提供了解决方案。从大量非结构化文档中提取意见并以结构化格式存储。由于数据的增加可用于分析,我们专注于提供适用于管理大量数据的存储/检索和分析解决方案,同时保持较小的刻度系统中存在的速度和可靠性。我们的方法包括建立一个分布式系统,能够随着输入数据的增加而水平扩展,而没有任何显着性能衰减。我们代表了基于元组结构化模型的意见,更适合检索和分析。这种方法允许我们将算法正式化以检测意见元组之间的矛盾。此外,我们通过使用意见目标的同义词来提高系统召回的方法来扩展可能的矛盾意见的同义词。我们的主要重点是优化意见元组的结构,提供最佳检索时间,并允许一种简单,结构化的方法来检测矛盾。

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