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arxiv_ml 88% Match Research Paper Neuroscientists,Computational Biologists,Medical Imaging Researchers,AI Researchers 20 hours ago

CytoNet: A Foundation Model for the Human Cerebral Cortex

computer-vision › medical-imaging
📄 Abstract

Abstract: To study how the human brain works, we need to explore the organization of the cerebral cortex and its detailed cellular architecture. We introduce CytoNet, a foundation model that encodes high-resolution microscopic image patches of the cerebral cortex into highly expressive feature representations, enabling comprehensive brain analyses. CytoNet employs self-supervised learning using spatial proximity as a powerful training signal, without requiring manual labelling. The resulting features are anatomically sound and biologically relevant. They encode general aspects of cortical architecture and unique brain-specific traits. We demonstrate top-tier performance in tasks such as cortical area classification, cortical layer segmentation, cell morphology estimation, and unsupervised brain region mapping. As a foundation model, CytoNet offers a consistent framework for studying cortical microarchitecture, supporting analyses of its relationship with other structural and functional brain features, and paving the way for diverse neuroscientific investigations.

Key Contributions

CytoNet is introduced as a foundation model for the human cerebral cortex, encoding high-resolution microscopic image patches into expressive feature representations using self-supervised learning. It enables comprehensive brain analyses, achieving top-tier performance in tasks like cortical area classification and layer segmentation, while being biologically relevant and anatomically sound.

Business Value

Accelerates neuroscience research by providing powerful tools for analyzing brain structure, potentially leading to breakthroughs in understanding neurological disorders and developing new treatments.