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BrainPrompt+: Multi-Level Brain Prompt Learning for Knowledge-Guided Neurological Disorder Identification.
IEEE Transactions on Medical Imaging
|May 13, 2026
Summary
BrainPrompt+ enhances neurological disorder diagnosis using AI-powered brain network analysis. This novel framework integrates large language models and multi-level prompts to improve accuracy in identifying conditions like Alzheimer's and Parkinson's disease.
Area of Science:
- Neuroscience
- Artificial Intelligence
- Medical Imaging
Background:
- Neurological disorders like Alzheimer's, Parkinson's, and Autism Spectrum Disorder present diagnostic challenges due to subtle symptoms and complex brain activity.
- Resting-state functional MRI (rs-fMRI) and Graph Neural Networks (GNNs) offer potential for disease classification but face limitations in graph construction, domain knowledge integration, and metadata fusion.
Purpose of the Study:
- To develop a novel knowledge-guided framework, BrainPrompt+, that overcomes limitations of existing GNN-based methods for neurological disorder identification.
- To integrate large language models (LLMs) with multi-level natural language prompts to unify imaging, clinical, and external knowledge.
Main Methods:
- Proposed BrainPrompt+, a framework integrating LLMs with five types of natural language prompts: spectral, spatial, ROI, disease, and subject.
- Encoded prompts using a frozen LLM and incorporated them into a GNN pipeline for semantically enriched and interpretable brain network analysis.
- Validated the framework on three rs-fMRI datasets.
Main Results:
- BrainPrompt+ consistently outperformed state-of-the-art baselines, achieving accuracy improvements of up to 8.93%.
- Biomarker analysis confirmed the model's interpretability, with highlighted Regions of Interest (ROIs) aligning with established neuroscience findings.
Conclusions:
- BrainPrompt+ establishes a flexible and generalizable paradigm for knowledge-guided brain network analysis in neurological disorders.
- The framework offers a promising approach for more accurate and interpretable diagnosis of conditions like Alzheimer's and Parkinson's disease.
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