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Breaking NLP: Using Morphosyntax, Semantics, Pragmatics and World Knowledge to Fool Sentiment Analysis Systems

机译:打破自然语言处理:使用词法,语义,语用和世界知识来愚弄情绪分析系统

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This paper describes our "breaker" submission to the 2017 EMNLP "Build It Break It" shared task on sentiment analysis. In order to cause the "builder" systems to make incorrect predictions, we edited items in the blind test data according to linguistically interpretable strategies that allow us to assess the ease with which the builder systems learn various components of linguistic structure. On the whole, our submitted pairs break all systems at a high rate (72.6%), indicating that sentiment analysis as an NLP task may still have a lot of ground to cover. Of the breaker strategies that we consider, we find our semantic and pragmatic manipulations to pose the most substantial difficulties for the builder systems.
机译:本文介绍了我们对2017 EMNLP情感分析“共享突破”共享任务的“突破”提交。为了使“构建者”系统做出错误的预测,我们根据语言解释策略编辑了盲测数据中的项目,这些策略使我们能够评估构建者系统学习语言结构各个组成部分的难易程度。总体而言,我们提交的对以高比率(72.6%)破坏了所有系统,这表明作为NLP任务的情感分析可能仍有很多基础。在我们考虑的断路器策略中,我们发现我们的语义和务实操作给构建者系统带来了最大的困难。

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