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Whisper模型在二语口语评估中的应用
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本文研究了Whisper自动语音识别模型在二语口语评估中的应用潜力。通过提取声学语言特征,并在其上训练轻量级分类器,该方法在GEPT图片描述数据集上表现出色,超越了现有先进基线,并通过结合图像和文本提示信息进一步提升了性能。

arXiv:2510.16387v1 Announce Type: cross Abstract: In this paper, we explore the untapped potential of Whisper, a well-established automatic speech recognition (ASR) foundation model, in the context of L2 spoken language assessment (SLA). Unlike prior studies that extrinsically analyze transcriptions produced by Whisper, our approach goes a step further to probe its latent capabilities by extracting acoustic and linguistic features from hidden representations. With only a lightweight classifier being trained on top of Whisper's intermediate and final outputs, our method achieves strong performance on the GEPT picture-description dataset, outperforming existing cutting-edge baselines, including a multimodal approach. Furthermore, by incorporating image and text-prompt information as auxiliary relevance cues, we demonstrate additional performance gains. Finally, we conduct an in-depth analysis of Whisper's embeddings, which reveals that, even without task-specific fine-tuning, the model intrinsically encodes both ordinal proficiency patterns and semantic aspects of speech, highlighting its potential as a powerful foundation for SLA and other spoken language understanding tasks.

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Whisper模型 口语评估 自动语音识别 SLA 多模态学习
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