Benchmarking Zero-shot Text Classification: Datasets, Evaluation and Entailment Approach

被引:0
|
作者
Yin, Wenpeng [1 ]
Hay, Jamaal [1 ]
Roth, Dan [1 ]
机构
[1] Univ Penn, Dept Comp & Informat Sci, Cognit Computat Grp, Philadelphia, PA 19104 USA
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中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Zero-shot text classification (0SHOT-TC) is a challenging NLU problem to which little attention has been paid by the research community. 0SHOT- TC aims to associate an appropriate label with a piece of text, irrespective of the text domain and the aspect (e.g., topic, emotion, event, etc.) described by the label. And there are only a few articles studying 0SHOT-TC, all focusing only on topical categorization which, we argue, is just the tip of the iceberg in 0SHOT-TC. In addition, the chaotic experiments in literature make no uniform comparison, which blurs the progress. This work benchmarks the 0SHOT-TC problem by providing unified datasets, standardized evaluations, and state-of-the-art baselines. Our contributions include: i) The datasets we provide facilitate studying 0SHOT- TC relative to conceptually different and diverse aspects: the "topic" aspect includes "sports" and "politics" as labels; the "emotion" aspect includes "joy" and "anger"; the "situation" aspect includes "medical assistance" and "water shortage". ii) We extend the existing evaluation setup (labelpartially-unseen) - given a dataset, train on some labels, test on all labels - to include a more challenging yet realistic evaluation label-fully-unseen 0SHOT- TC (Chang et al., 2008), aiming at classifying text snippets without seeing task specific training data at all. iii) We unify the 0SHOT- TC of diverse aspects within a textual entailment formulation and study it this way. (1)
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页码:3914 / 3923
页数:10
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