Error-Aware TF-IDF Retrieval-Augmented Generation for ASR Error Correction
arXiv:2606.24915v1 Announce Type: new Abstract: End-to-end automatic speech recognition systems frequently hallucinate rare entities and domain-specific terms, especially in low-resource languages. While retrieval-augmented generation frameworks can mitigate these errors using large language models, current architectures face significant challenges. They either rely on standard sparse retrieval that ignores phonetic misrecognitions or utilize heavyweight cross-modal embeddings that introduce hig...
arXiv cs.CL
·Mohammad Aref Jafari-Raddani
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