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  4. Evaluation of Representation Models for Text Classification with AutoML Tools
 
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2022
Conference Paper
Title

Evaluation of Representation Models for Text Classification with AutoML Tools

Abstract
Automated Machine Learning (AutoML) has gained increasing success on tabular data in recent years. However, processing unstructured data like text is a challenge and not widely supported by open-source AutoML tools. This work compares three manually created text representations and text embeddings automatically created by AutoML tools. Our benchmark includes four popular open-source AutoML tools and eight datasets for text classification purposes. The results show that straightforward text representations perform better than AutoML tools with automatically created text embeddings.
Author(s)
Brändle, Sebastian
Univ. Stuttgart, Institut für Arbeitswissenschaft und Technologiemanagement -IAT-  
Hanussek, Marc
Univ. Stuttgart, Institut für Arbeitswissenschaft und Technologiemanagement -IAT-  
Blohm, Matthias
Univ. Stuttgart, Institut für Arbeitswissenschaft und Technologiemanagement -IAT-  
Kintz, Maximilien  
Fraunhofer-Institut für Arbeitswirtschaft und Organisation IAO  
Mainwork
Future Technologies Conference, FTC 2021. Proceedings. Vol.2  
Conference
Future Technologies Conference (FTC) 2021  
Open Access
DOI
10.1007/978-3-030-89880-9_24
Additional link
Full text
Language
English
Fraunhofer-Institut für Arbeitswirtschaft und Organisation IAO  
Keyword(s)
  • AutoML

  • NLP

  • Text classification

  • Machine Learning

  • Text representations

  • Text embeddings

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