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Zhibo Man

3 accepted papers

2025

DMDTEval: An Evaluation and Analysis of LLMs on Disambiguation in Multi-domain Translation

EMNLP 2025

Currently, Large Language Models (LLMs) have achieved remarkable results in machine translation. However, their performance in multi-domain translation (MDT) is less satisfactory, the meanings of words can vary across different domains, highlighting the significant ambiguity inherent in MDT. Therefo

2025

SoT: Structured-of-Thought Prompting Guides Multilingual Reasoning in Large Language Models

EMNLP 2025

Recent developments have enabled Large Language Models (LLMs) to engage in complex reasoning tasks through deep thinking. However, the capacity of reasoning has not been successfully transferred to non-high-resource languages due to resource constraints, which struggles with multilingual reasoning t

2024

ICL: Iterative Continual Learning for Multi-domain Neural Machine Translation

EMNLP 2024finding

In a practical scenario, multi-domain neural machine translation (MDNMT) aims to continuously acquire knowledge from new domain data while retaining old knowledge. Previous work separately learns each new domain knowledge based on parameter isolation methods, which effectively capture the new knowle…