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cs.CL2025

Conversational SimulMT: Efficient Simultaneous Translation with Large Language Models

Minghan Wang, Thuy-Trang Vu, Yuxia Wang +2

Simultaneous machine translation (SimulMT) presents a challenging trade-off between translation quality and latency. Recent studies have shown that LLMs can achieve good performanc…

cs.CL2025

Simultaneous Machine Translation with Large Language Models

Minghan Wang, Jinming Zhao, Thuy-Trang Vu +3

Real-world simultaneous machine translation (SimulMT) systems face more challenges than just the quality-latency trade-off. They also need to address issues related to robustness w…

cs.CL2025

All Roads Lead to Rome: Graph-Based Confidence Estimation for Large Language Model Reasoning

Caiqi Zhang, Chang Shu, Ehsan Shareghi +1

Confidence estimation is essential for the reliable deployment of large language models (LLMs). Existing methods are primarily designed for factual QA tasks and often fail to gener…

cs.CL2025

Discrete Minds in a Continuous World: Do Language Models Know Time Passes?

Minghan Wang, Ye Bai, Thuy-Trang Vu +2

While Large Language Models (LLMs) excel at temporal reasoning tasks like event ordering and duration estimation, their ability to perceive the actual passage of time remains unexp…

cs.CL2025

Reshaping Representation Space to Balance the Safety and Over-rejection in Large Audio Language Models

Hao Yang, Lizhen Qu, Ehsan Shareghi +1

Large Audio Language Models (LALMs) have extended the capabilities of Large Language Models (LLMs) by enabling audio-based human interactions. However, recent research has revealed…

cs.CL2025

SpeechDialogueFactory: Generating High-Quality Speech Dialogue Data to Accelerate Your Speech-LLM Development

Minghan Wang, Ye Bai, Yuxia Wang +3

High-quality speech dialogue datasets are crucial for Speech-LLM development, yet existing acquisition methods face significant limitations. Human recordings incur high costs and p…