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IterSynth: Rethinking Deep Search Agents via Role-Decoupled Iterative Synthesis

The paper introduces IterSynth, a deep search agent framework that decouples planning and synthesis roles to improve information retrieval and answer generation. It uses a summary-based approach to maintain search state and employs Role-Decoupled Policy Optimization (RDPO) for training, showing superior performance on multiple benchmarks compared to prior methods.

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PublishedSeptember 24, 2026Xingyu Wu, Yuchen Yan, Zhengxi Lu
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This approach may improve the efficiency and accuracy of complex information retrieval tasks by separating planning and synthesis processes.

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