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A Label Dependence-Aware Sequence Generation Model for Multi-Level Implicit Discourse Relation Recognition

Changxing Wu, Liuwen Cao, Yubin Ge, Yang Liu, Min Zhang, Jinsong Su

2022Proceedings of the AAAI Conference on Artificial Intelligence27 citationsDOIOpen Access PDF

Abstract

Implicit discourse relation recognition (IDRR) is a challenging but crucial task in discourse analysis. Most existing methods train multiple models to predict multi-level labels independently, while ignoring the dependence between hierarchically structured labels. In this paper, we consider multi-level IDRR as a conditional label sequence generation task and propose a Label Dependence-aware Sequence Generation Model (LDSGM) for it. Specifically, we first design a label attentive encoder to learn the global representation of an input instance and its level-specific contexts, where the label dependence is integrated to obtain better label embeddings. Then, we employ a label sequence decoder to output the predicted labels in a top-down manner, where the predicted higher-level labels are directly used to guide the label prediction at the current level. We further develop a mutual learning enhanced training method to exploit the label dependence in a bottom-up direction, which is captured by an auxiliary decoder introduced during training. Experimental results on the PDTB dataset show that our model achieves the state-of-the-art performance on multi-level IDRR. We release our code at https://github.com/nlpersECJTU/LDSGM.

Topics & Concepts

Computer scienceSequence (biology)EncoderTask (project management)Representation (politics)Relation (database)Code (set theory)Artificial intelligenceExploitNatural language processingEncoding (memory)Sequence learningPattern recognition (psychology)Machine learningSpeech recognitionData miningPolitical scienceLawSet (abstract data type)ManagementProgramming languageEconomicsComputer securityPoliticsGeneticsOperating systemBiologyTopic ModelingNatural Language Processing TechniquesText and Document Classification Technologies
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