WavRAG: Audio-Integrated Retrieval Augmented Generation for Spoken Dialogue Models
Yifu Chen, Shengpeng Ji, Haoxiao Wang, Ziqing Wang, Siyu Chen, Jinzheng He, Jin Xu, Zhou Zhao
Abstract
Retrieval Augmented Generation (RAG) has gained widespread adoption owing to its capacity to empower large language models (LLMs) to integrate external knowledge. However, existing RAG frameworks are primarily designed for text-based LLMs and rely on Automatic Speech Recognition to process speech input, which discards crucial audio information, risks transcription errors, and increases computational overhead. Therefore, we introduce WavRAG, the first retrieval augmented generation framework with native, end-to-end audio support. WavRAG offers two key features: 1) Bypassing ASR, WavRAG directly processes raw audio for both embedding and retrieval. 2) WavRAG integrates audio and text into a unified knowledge representation. Specifically, we propose the WavRetriever to facilitate the retrieval from a text-audio hybrid knowledge base, and further enhance the in-context capabilities of spoken dialogue models through the integration of chain-of-thought reasoning. In comparison to state-of-the-art ASR-Text RAG pipelines, WavRAG achieves comparable retrieval performance while delivering a 10x acceleration. Furthermore, WavRAG's unique text-audio hybrid retrieval capability extends the boundaries of RAG to the audio modality.
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Install the CLIlune papers fulltext 4574d6ea-b12a-4a22-abe2-3e5650b399e5Cited by top-tier papers7
- AdaVideoRAG: Omni-Contextual Adaptive Retrieval-Augmented Efficient Long Video UnderstandingZhucun Xue, Jiangning Zhang, Xurong Xie, Yuxuan Cai et al.NeurIPS 2025 · 19 citations
- MoshiRAG: Asynchronous Knowledge Retrieval for Full-Duplex Speech Language ModelsChung-Ming Chien, Manu Orsini, Eugene Kharitonov, Neil Zeghidour et al.ICML 2026 · 7 citations
- Dual-Axis Generative Reward Model Toward Semantic and Turn-taking Robustness in Interactive Spoken Dialogue ModelsYifu Chen, Shengpeng Ji, Zhengqing Liu, Qian Chen et al.ACL 2026 · 7 citations
- SDiaReward: Modeling and Benchmarking Spoken Dialogue Rewards with Modality and ColloquialnessJingyu Lu, Yuhan Wang, Fan Zhuo, Xize Cheng et al.ACL 2026 · 3 citations
- Speech-Hands: A Self-Reflection Voice Agentic Approach to Speech Recognition and Audio Reasoning with Omni PerceptionZhen Wan, Chao-Han Huck Yang, Jinchuan Tian, Hanrong Ye et al.ACL 2026 · 2 citations
Builds on10
- LoRA: Low-Rank Adaptation of Large Language ModelsEdward J. Hu, Yelong Shen, Phillip Wallis, Zeyuan Allen-Zhu et al.ICLR 2022 · 18,833 citations
- Large Language Models are Zero-Shot ReasonersTakeshi Kojima, Shixiang Shane Gu, Machel Reid, Yutaka Matsuo et al.NeurIPS 2022 · 8,168 citations
- Make-An-Audio: Text-To-Audio Generation with Prompt-Enhanced Diffusion ModelsRongjie Huang, Jiawei Huang, Dongchao Yang, Yi Ren et al.ICML 2023 · 469 citations
- MuRAG: Multimodal Retrieval-Augmented Generator for Open Question Answering over Images and TextWenhu Chen, Hexiang Hu, Xi Chen, Pat Verga et al.EMNLP 2022 · 89 citations
- SLUE Phase-2: A Benchmark Suite of Diverse Spoken Language Understanding TasksSuwon Shon, Siddhant Arora, Chyi-Jiunn Lin, Ankita Pasad et al.ACL 2023 · 21 citations
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- Stream RAG: Instant and Accurate Spoken Dialogue Systems with Streaming Tool UsageSiddhant Arora, Haidar Khan, Kai Sun, Xin Dong et al.ICML 2026 · 22 citations
- VisRAG: Vision-based Retrieval-augmented Generation on Multi-modality DocumentsShi Yu, Chaoyue Tang, Bokai Xu, Junbo Cui et al.ICLR 2025
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- End-to-End Contrastive Language-Speech Pretraining Model for Long-Form Spoken Question AnsweringJiliang Hu, Zuchao Li, Baoyuan Qi, Guoming Liu et al.AAAI 2026
