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Visual Denotations for Recognizing Textual Entailment

机译:用于识别文字蕴含的视觉表示

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In the logic approach to Recognizing Textual Entailment, identifying phrase-to-phrase semantic relations is still an unsolved problem. Resources such as the Paraphrase Database offer limited coverage despite their large size whereas unsupervised distributional models of meaning often fail to recognize phrasal entailments. We propose to map phrases to their visual denotations and compare their meaning in terms of their images. We show that our approach is effective in the task of Recognizing Textual Entailment when combined with specific linguistic and logic features.
机译:在识别文本蕴含的逻辑方法中,识别短语到短语的语义关系仍然是一个未解决的问题。释义数据库之类的资源尽管规模很大,但提供的覆盖范围却很有限,而无监督的意义分布模型通常无法识别短语的含义。我们建议将短语映射到其视觉表示,并根据其图像比较其含义。我们证明,当与特定的语言和逻辑特征相结合时,我们的方法在识别文本蕴含的任务中是有效的。

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