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Multilingual Name Entity Recognition and Intent Classification employing Deep Learning architectures - 2022

Multilingual Name Entity Recognition And Intent Classification Employing Deep Learning Architectures

Research Paper on Multilingual Name Entity Recognition And Intent Classification Employing Deep Learning Architectures

Research Area:  Machine Learning

Abstract:

Named Entity Recognition and Intent Classification are among the most important subfields of the field of Natural Language Processing. Recent research has lead to the development of faster, more sophisticated and efficient models to tackle the problems posed by those two tasks. In this work we explore the effectiveness of two separate families of Deep Learning networks for those tasks: Bidirectional Long Short-Term networks and Transformer-based networks. The models were trained and tested on the ATIS benchmark dataset for both English and Greek languages. The purpose of this paper is to present a comparative study of the two groups of networks for both languages and showcase the results of our experiments. The models, being the current state-of-the-art, yielded impressive results and achieved high performance.

Keywords:  
Multilingual Name Entity Recognition
Intent Classification
Deep Learning Architectures
Machine Learning

Author(s) Name:  S. Rizou, A. Paflioti, A. Theofilatos, A. Vakali, G. Sarigiannidis, K.Ch. Chatzisavvas

Journal name:  Simulation Modelling Practice and Theory

Conferrence name:  

Publisher name:  Elsevier

DOI:  10.1016/j.simpat.2022.102620

Volume Information:  Volume 120, November 2022, 102620