Stream RAG: Instant and Accurate Spoken Dialogue Systems with Streaming Tool Usage
Siddhant Arora, Haidar Khan, Kai Sun, Xin Dong, Sajal Choudhary, Seungwhan Moon, Xinyuan Zhang, Adithya Sagar, Surya Appini, Kaushik Patnaik, Sanat Sharma, Shinji Watanabe
摘要
End-to-end speech-in speech-out dialogue systems are emerging as a powerful alternative to traditional ASR-LLM-TTS pipelines, generating more natural, expressive responses with significantly lower latency. However, these systems remain prone to hallucinations due to limited factual grounding. While text-based dialogue systems address this challenge by integrating tools such as web search and knowledge graph APIs, we introduce the first approach to extend tool use directly into speechin speech-out systems. A key challenge is that tool integration substantially increases response latency, disrupting conversational flow. To mitigate this, we propose Streaming Retrieval-Augmented Generation (Streaming RAG), a novel framework that reduces user-perceived latency by predicting tool queries in parallel with user speech, even before the user finishes speaking. Specifically, we develop a post-training pipeline that teaches the model when to issue tool calls during ongoing speech and how to generate spoken summaries that fuse audio queries with retrieved text results, thereby improving both accuracy and responsiveness. To evaluate our approach, we construct AudioCRAG, a benchmark created by converting queries from the publicly available CRAG dataset into speech form. Experimental results demonstrate that our streaming RAG approach increases QA accuracy by up to 200% relative (from 11.1% to 34.2% absolute) and further enhances user experience by reducing tool use latency by 20%. Importantly, our streaming RAG approach is modality-agnostic and can be applied equally to typed input, paving the way for more agentic, real-time AI assistants.
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引用它的顶会 Paper6
- Shanks: Simultaneous Hearing and Thinking for Spoken Language ModelsCheng-Han Chiang, Xiaofei Wang, Linjie Li, Chung-Ching Lin 等ACL 2026 · 被引用 14 次
- MoshiRAG: Asynchronous Knowledge Retrieval for Full-Duplex Speech Language ModelsChung-Ming Chien, Manu Orsini, Eugene Kharitonov, Neil Zeghidour 等ICML 2026 · 被引用 7 次
- AudioChat: Unified Audio Storytelling, Editing, and Understanding with Transfusion ForcingWilliam Chen, Prem Seetharaman, Rithesh Kumar, Oriol Nieto 等ICML 2026 · 被引用 7 次
- VoxMind: An End-to-End Agentic Spoken Dialogue SystemTianle Liang, Yifu Chen, Shengpeng Ji, Yijun Chen 等ACL 2026 · 被引用 1 次
- ProactiveLLM: Learning Active Interaction for Streaming Large Language ModelsJunlong Tong, Yao Zhang, Anhao Zhao, Yingqi Fan 等ICML 2026
它引用的顶会 Paper7
- Robust Speech Recognition via Large-Scale Weak SupervisionAlec Radford, Jong Wook Kim, Tao Xu, Greg Brockman 等ICML 2023 · 被引用 6,966 次
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- Benchmarking Large Language Models in Retrieval-Augmented GenerationJiawei Chen, Hongyu Lin, Xianpei Han, Le SunAAAI 2024 · 被引用 531 次
- Video-RAG: Visually-aligned Retrieval-Augmented Long Video ComprehensionYongdong Luo, Xiawu Zheng, Guilin Li, Shukang Yin 等NeurIPS 2025 · 被引用 164 次
- Beyond the Turn-Based Game: Enabling Real-Time Conversations with Duplex ModelsXinrong Zhang, Yingfa Chen, Shengding Hu, Xu Han 等EMNLP 2024 · 被引用 4 次
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