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Natural Language Inference by Tree-Based Convolution and Heuristic Matching

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Abstract

In this paper, we propose the TBCNNpair model to recognize entailment and contradiction between two sentences. In our model, a tree-based convolutional neural network (TBCNN) captures sentencelevel semantics; then heuristic matching layers like concatenation, element-wise product/difference combine the information in individual sentences. Experimental results show that our model outperforms existing sentence encoding-based approaches by a large margin.

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Publication details

DOI
10.18653/v1/p16-2022
OpenAlex
W2963241825
Document type
conference-paper
Language
EN
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