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Improved Models for Media Bias Detection and Subcategorization

International Conference on Applications of Natural Language to Data Bases (NLDB), 2024
Main:4 Pages
1 Figures
5 Tables
Appendix:11 Pages
Abstract

We present improved models for the granular detection and sub-classification news media bias in English news articles. We compare the performance of zero-shot versus fine-tuned large pre-trained neural transformer language models, explore how the level of detail of the classes affects performance on a novel taxonomy of 27 news bias-types, and demonstrate how using synthetically generated example data can be used to improve quality

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