EMNLP 2025

November 08, 2025

Suzhou, China

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As Large Language Models (LLMs) gain mainstream public usage, understanding how users interact with them becomes increasingly important. Limited variety in training data raises concerns about LLM reliability across different language inputs. To explore this, we test several LLMs using functionally equivalent prompts expressed in different English sublanguages. We frame this analysis using Question-Answer (QA) pairs, which allow us to detect and evaluate appropriate and anomalous model behavior. We contribute a cross-LLM testing method and a new QA dataset translated into AAVE and WAPE variants. Early results reveal a notable drop in accuracy for one sublanguage relative to the baseline.

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Next from EMNLP 2025

Amharic News Topic Classification: Dataset and Transformer-Based Model Benchmarks
workshop paper

Amharic News Topic Classification: Dataset and Transformer-Based Model Benchmarks

EMNLP 2025

Eyob Alemu and 1 other author

08 November 2025

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