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  4. Zero-Shot Text Matching for Automated Auditing using Sentence Transformers
 
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2022
Conference Paper
Title

Zero-Shot Text Matching for Automated Auditing using Sentence Transformers

Abstract
Natural language processing methods have several applications in automated auditing, including document or passage classification, information retrieval, and question answering. However, training such models requires a large amount of annotated data which is scarce in industrial settings. At the same time, techniques like zero-shot and unsupervised learning allow for application of models pre-trained using general domain data to unseen domains.In this work, we study the efficiency of unsupervised text matching using Sentence-Bert, a transformer-based model, by applying it to the semantic similarity of financial passages. Experimental results show that this model is robust to documents from in- and out-of-domain data.
Author(s)
Biesner, David  
Fraunhofer-Institut für Intelligente Analyse- und Informationssysteme IAIS  
Pielka, Maren  
Fraunhofer-Institut für Intelligente Analyse- und Informationssysteme IAIS  
Ramamurthy, Rajkumar  
Fraunhofer-Institut für Intelligente Analyse- und Informationssysteme IAIS  
Dilmaghani, Tim
PricewaterhouseCoopers GmbH
Kliem, Bernd
PricewaterhouseCoopers GmbH
Loitz, Rüdiger
PricewaterhouseCoopers GmbH
Sifa, Rafet  
Fraunhofer-Institut für Intelligente Analyse- und Informationssysteme IAIS  
Mainwork
21st IEEE International Conference on Machine Learning and Applications, ICMLA 2022. Proceedings  
Project(s)
The Lamarr Institute for Machine Learning and Artificial Intelligence  
Funder
Bundesministerium für Bildung und Forschung -BMBF-  
Conference
International Conference on Machine Learning and Applications 2022  
Open Access
DOI
10.1109/ICMLA55696.2022.00251
Language
English
Fraunhofer-Institut für Intelligente Analyse- und Informationssysteme IAIS  
Keyword(s)
  • NLP

  • Transfer Learning

  • BERT

  • Text Classification

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