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arXiv AI · 2026/7/31 12:30:12

SeekBrain: An Autonomous Multi-Agent System for Accelerating Neuroscience Discovery

AI 中文解读
SeekBrain给AI装上了"科研大脑"!这个系统能自动分析海量脑科学数据,像一位不知疲倦的研究助手,把复杂的实验数据变成清晰的研究思路。以前科学家要在杂乱的数据里手动找规律,现在交给AI就能自动生成分析方案,甚至能自己提出研究假设。在测试中,它识别斑马鱼行为规律、分析小鼠大脑决策过程的表现都远超现有AI工具。这项技术短期内可能只影响实验室,但长远看意义重大:大脑疾病(如帕金森、阿尔茨海默症)的发病机制数据分析会大幅加速,新药研发周期有望缩短。对普通人来说,未来更精准的脑疾病诊断和个性化治疗方案可能就源于这类工具的突破。换句话说,当AI能看懂"大脑密码",人类离解开意识之谜、攻克神经疾病就更近一步了。
Modern neuroscience relies on integrating multi-scale, multimodal datasets to uncover the neural principles underlying intelligence. However, analytical challenges posed by highly heterogeneous data and fragmented workflows increasingly constrain discoveries. Here we introduce SeekBrain, an autonomous multi-agent framework designed to accelerate neuroscience discovery through domain-grounded hierarchical planning and cross-modal data analysis. SeekBrain dynamically constructs a repertoire of analysis recipes extracted from code-paper pairs. By coupling this codified expertise with agentic planning and execution engines, the framework scalably generates hypotheses and analytical pipelines on demand. Systematic evaluation on the expert-annotated BrainArena benchmark demonstrates that SeekBrain substantially outperforms state-of-the-art agent baselines across various analysis tasks. Crucially, when deployed in real-world research, SeekBrain integrated behavioral, neural, and anatomical data to reveal structured, distributed neural representations of larval zebrafish behavior and a shared axis of regional decoding strength across the brain in a mouse decision-making task. These results establish SeekBrain as a scalable and practical tool for accelerating data-driven discoveries in neuroscience.
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