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EChO-Agent: Evidence Chain Orchestration Agent for Audio Reasoning
June 13, 2026 ยท Grace Period ยท ๐ Interspeech 2026
Authors
Siyuan Zhang, Jian Zong, Junyu Wang, Peiyuan Jiang, Jiahao Yan, Jingyu Zhang, Tianrui Wang, Xiaobao Wang, Longbiao Wang, Jianwu Dang
arXiv ID
2606.15141
Category
eess.AS: Audio & Speech
Cross-listed
cs.AI,
cs.SD
Citations
0
Venue
Interspeech 2026
Abstract
While LALMs show promise on audio question answering, they fail to focus on question-relevant segments of audio and provide a clear, checkable reasoning process when dealing with complex audio reasoning. Reinforcement learning and tool-augmented prompting can help models better relate questions to audio but lack a reliable way to understand, integrate, and self-verify audio segments. To address this gap, we present EChO-Agent, a modular agent framework that reformulates complex audio QA as a planning, tool execution, evidence integration, and answer verification workflow. Experiments on MMAR benchmark show EChO-Agent improves both accuracy and rubric scores over baseline and ablation studies show evidence integration is the key factor.
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