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  4. DialoKG: Knowledge-Structure Aware Task-Oriented Dialogue Generation
 
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July 2022
Conference Paper
Title

DialoKG: Knowledge-Structure Aware Task-Oriented Dialogue Generation

Abstract
Task-oriented dialogue generation is challenging since the underlying knowledge is often dynamic and effectively incorporating knowledge into the learning process is hard. It is particularly challenging to generate both human-like and informative responses in this setting. Recent research primarily focused on various knowledge distillation methods where the underlying relationship between the facts in a knowledge base is not effectively captured. In this paper, we go one step further and demonstrate how the structural information of a knowledge graph can improve the system’s inference capabilities. Specifically, we propose DialoKG, a novel task-oriented dialogue system that effectively incorporates knowledge into a language model. Our proposed system views relational knowledge as a knowledge graph and introduces (1) a structure-aware knowledge embedding technique, and (2) a knowledge graph-weighted attention masking strategy to facilitate the system selecting relevant information during the dialogue generation. An empirical evaluation demonstrates the effectiveness of DialoKG over state-of-the-art methods on several standard benchmark datasets.
Author(s)
Rony, Md Rashad Al Hasan
Fraunhofer-Institut für Intelligente Analyse- und Informationssysteme IAIS  
Usbeck, Ricardo  
Universität Hamburg  
Lehmann, Jens  
Fraunhofer-Institut für Intelligente Analyse- und Informationssysteme IAIS  
Mainwork
Findings of the Association for Computational Linguistics: NAACL 2022. Findings  
Project(s)
Aufbau einer führenden Sprachassistenzplattform "Made in Germany"  
Cross-lingual Event-centric Open Analytics Research Academy  
Digital PLAtform and analytic TOOls for eNergy  
Foundations of Trustworthy AI - Integrating Reasoning, Learning and Optimization  
KnowGraphs Knowledge Graphs at Scale  
01IS18050F  
Kompetenzzentrum Maschinelles Lernen Rhein-Ruhr  
ScaDS.AI
Funder
Bundesministerium für Wirtschaft und Klimaschutz -BMWK-
European Commission
Europäische Union  
Europäische Union  
European Commission
Deutsches Bundesministerium für Bildung und Forschung  
Bundesministerium für Bildung und Forschung BMBF (Deutschland)
Bundesministerium für Bildung und Forschung -BMBF-  
Conference
North American Chapter of the Association for Computational Linguistics 2022 (Conference)  
Open Access
DOI
10.18653/v1/2022.findings-naacl.195
Additional full text version
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