cs.AI updates on arXiv.org 10月07日
泰国语实时EOT检测研究
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本文首次系统研究了泰国语实时EOT检测,通过比较零样本和少量样本提示的紧凑型LLM与轻量级transformer的监督微调,提出了一种基于YODAS语料库和泰国特定语言特征的EOT检测方法,为实时设备代理提供了近瞬时的EOT决策。

arXiv:2510.04016v1 Announce Type: cross Abstract: Fluid voice-to-voice interaction requires reliable and low-latency detection of when a user has finished speaking. Traditional audio-silence end-pointers add hundreds of milliseconds of delay and fail under hesitations or language-specific phenomena. We present, to our knowledge, the first systematic study of Thai text-only end-of-turn (EOT) detection for real-time agents. We compare zero-shot and few-shot prompting of compact LLMs to supervised fine-tuning of lightweight transformers. Using transcribed subtitles from the YODAS corpus and Thai-specific linguistic cues (e.g., sentence-final particles), we formulate EOT as a binary decision over token boundaries. We report a clear accuracy-latency tradeoff and provide a public-ready implementation plan. This work establishes a Thai baseline and demonstrates that small, fine-tuned models can deliver near-instant EOT decisions suitable for on-device agents.

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泰国语 EOT检测 实时交互 机器学习
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