Papers › TreeMix: Compositional Constituency-based Data Augmentation for Natural Language Understanding

TreeMix: Compositional Constituency-based Data Augmentation for Natural Language Understanding

12 May 2022NAACL 2022 7arXiv:2205.06153archive 2025-07-28

Le Zhang, Zichao Yang, Diyi Yang

Data augmentation is an effective approach to tackle over-fitting. Many previous works have proposed different data augmentations strategies for NLP, such as noise injection, word replacement, back-translation etc. Though effective, they missed one important characteristic of language--compositionality, meaning of a complex expression is built from its sub-parts. Motivated by this, we propose a compositional data augmentation approach for natural language understanding called TreeMix. Specifically, TreeMix leverages constituency parsing tree to decompose sentences into constituent sub-structures and the Mixup data augmentation technique to recombine them to generate new sentences. Compared with previous approaches, TreeMix introduces greater diversity to the samples generated and encourages models to learn compositionality of NLP data. Extensive experiments on text classification and SCAN demonstrate that TreeMix outperforms current state-of-the-art data augmentation methods.

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c2a magiccircuit/treemix/Augmentation.py official repository ran · our draft was wrong MIT (permissive) · 0ff7394e318b5d41 · report
modify magiccircuit/treemix/Augmentation.py official repository ran · our draft was wrong fingerprinted MIT (permissive) · 5e2f74dcf9d332da · report
translate magiccircuit/treemix/Augmentation.py official repository ran · our draft was wrong fingerprinted MIT (permissive) · f097bb7bef545808 · report
subtree_exchange_scan magiccircuit/treemix/Augmentation.py official repository unverified MIT (permissive) · af543a02e8ae5b2d · report

Tasks

Constituency ParsingData AugmentationDiversityNatural Language UnderstandingText ClassificationTranslation

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Methods

Mixup

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