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Papers/Heavy-tailed Representations, Text Polarity Classification...

Heavy-tailed Representations, Text Polarity Classification & Data Augmentation

Hamid Jalalzai, Pierre Colombo, ChloƩ Clavel, Eric Gaussier, Giovanna Varni, Emmanuel Vignon, Anne Sabourin

2020-03-25NeurIPS 2020 12Text ClassificationText GenerationAttributeSentiment AnalysisData AugmentationGeneral ClassificationClassification
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Abstract

The dominant approaches to text representation in natural language rely on learning embeddings on massive corpora which have convenient properties such as compositionality and distance preservation. In this paper, we develop a novel method to learn a heavy-tailed embedding with desirable regularity properties regarding the distributional tails, which allows to analyze the points far away from the distribution bulk using the framework of multivariate extreme value theory. In particular, a classifier dedicated to the tails of the proposed embedding is obtained which performance outperforms the baseline. This classifier exhibits a scale invariance property which we leverage by introducing a novel text generation method for label preserving dataset augmentation. Numerical experiments on synthetic and real text data demonstrate the relevance of the proposed framework and confirm that this method generates meaningful sentences with controllable attribute, e.g. positive or negative sentiment.

Results

TaskDatasetMetricValueModel
Sentiment AnalysisYelp Binary classificationError1.86LHTR
Text ClassificationAmazon-2Error5.7LHTR
ClassificationAmazon-2Error5.7LHTR

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