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Developing and Evaluating Tiny to Medium-Sized Turkish BERT Models

Authors :
Kesgin, Himmet Toprak
Yuce, Muzaffer Kaan
Amasyali, Mehmet Fatih
Publication Year :
2023

Abstract

This study introduces and evaluates tiny, mini, small, and medium-sized uncased Turkish BERT models, aiming to bridge the research gap in less-resourced languages. We trained these models on a diverse dataset encompassing over 75GB of text from multiple sources and tested them on several tasks, including mask prediction, sentiment analysis, news classification, and, zero-shot classification. Despite their smaller size, our models exhibited robust performance, including zero-shot task, while ensuring computational efficiency and faster execution times. Our findings provide valuable insights into the development and application of smaller language models, especially in the context of the Turkish language.

Details

Database :
arXiv
Publication Type :
Report
Accession number :
edsarx.2307.14134
Document Type :
Working Paper