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The AI Neuroscientist: An Interactive Agentic Interface for Neuroimaging Analysis
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Aakash Patel, Panos Ketonis, Shreya Saxena, Smita Krishnaswamy, David van Dijk

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ResearcharXiv cs.AI

The AI Neuroscientist: An Interactive Agentic Interface for Neuroimaging Analysis

arXiv:2609.25254v1 Announce Type: new Abstract: Analyzing neuroimaging data requires specialized coding and statistical expertise, which limits accessibility for researchers without computational backgrounds. We present the AI Neuroscientist, a language agent for interactive data exploration. The system integrates a large language model (LLM) with a neuroimaging toolset to perform quality control, modeling, and visualization. This allows researchers to query data quality and specify analysis parameters directly in natural language, providing a transparent and interactive alternative to conventional scripted pipelines for small-scale data exploration. We demonstrate these capabilities using functional near-infrared spectroscopy (fNIRS) data, and evaluate the agent on a custom fNIRS benchmarking suite against general-purpose LLM agents with code sandboxes. Future extensions will generalize the architecture to additional modalities, including functional magnetic resonance imaging (fMRI) data, and expand the benchmarking suite to additional fNIRS tasks.

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This story was published by arXiv cs.AI and written by Aakash Patel, Panos Ketonis, Shreya Saxena, Smita Krishnaswamy, David van Dijk. SyncAI.news shows a preview; the complete article is on the publisher's site.

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