cs.AI updates on arXiv.org 10月15日 13:12
实时语音识别系统延迟测量与评估
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本文提出一种新的方法来测量实时语音识别系统的延迟,并验证其在现场口译场景中的可用性。

arXiv:2409.05674v3 Announce Type: replace-cross Abstract: Automatic speech recognition (ASR) systems generate real-time transcriptions but often miss nuances that human interpreters capture. While ASR is useful in many contexts, interpreters-who already use ASR tools such as Dragon-add critical value, especially in sensitive settings such as diplomatic meetings where subtle language is key. Human interpreters not only perceive these nuances but can adjust in real time, improving accuracy, while ASR handles basic transcription tasks. However, ASR systems introduce a delay that does not align with real-time interpretation needs. The user-perceived latency of ASR systems differs from that of interpretation because it measures the time between speech and transcription delivery. To address this, we propose a new approach to measuring delay in ASR systems and validate if they are usable in live interpretation scenarios.

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语音识别 实时系统 延迟测量 口译
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