Abstract

Resting-state functional connectivity (FC) is widely used to classify brain phenotypes and disorders. Most pipelines use the full connectome and seek gains through model design. We instead examine how FC geometry constrains classification and cross-site transfer. Across-subject FC variation concentrates in a small effective subspace, suggesting substantial redundancy in nominal dimensions. Across cohorts, these subspaces may differ in orientation even when their effective ranks are comparable, potentially limiting transfer. Across 2,330 subjects from HCP, ABIDE, and ADHD-200, effective-rank analysis reveals strong spectral concentration. Projection onto leading components at the effective-rank scale recovers most of the full-FC classification performance. In ABIDE, site-specific effective subspaces are weakly aligned, and their principal-angle overlap predicts pairwise transfer after covariate adjustment despite comparable per-site effective ranks. Controlled rotations that alter subspace orientation while preserving the mean and covariance spectrum drive transfer toward chance, whereas displacement-matched label-orthogonal rotations do not. These results identify subspace orientation as a key factor in transfer degradation under controlled perturbations. This study offers a geometric diagnostic of FC generalization and suggests evaluating cross-site harmonization by its ability to align effective subspaces alongside classification accuracy.

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Open access
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Cite this article

APA 7

Fan, X., Li, J., Han, Y., Guo, H., Li, G., Hu, Y., Zhang, W., Ji, W., & Zhang, Y. (2026). It's the Geometry, Not the Model: Effective Rank and Subspace Alignment in Functional Connectivity Classification. https://omanscience.com/en/articles/it-s-the-geometry-not-the-model-effective-rank-and-subspace-alignment-in-functional-connectivity-classification

MLA 9

Fan, Xiao, et al. "It's the Geometry, Not the Model: Effective Rank and Subspace Alignment in Functional Connectivity Classification." https://omanscience.com/en/articles/it-s-the-geometry-not-the-model-effective-rank-and-subspace-alignment-in-functional-connectivity-classification.

Chicago (author–date)

Fan, Xiao, Jingyuan Li, Yubo Han, Hongbin Guo, Guanya Li, Yang Hu, Wenchao Zhang, Weibin Ji, and Yi Zhang. 2026. "It's the Geometry, Not the Model: Effective Rank and Subspace Alignment in Functional Connectivity Classification." https://omanscience.com/en/articles/it-s-the-geometry-not-the-model-effective-rank-and-subspace-alignment-in-functional-connectivity-classification.

Harvard

Fan, X., Li, J., Han, Y., Guo, H., Li, G., Hu, Y., Zhang, W., Ji, W. and Zhang, Y. (2026) 'It's the Geometry, Not the Model: Effective Rank and Subspace Alignment in Functional Connectivity Classification', Available at: https://omanscience.com/en/articles/it-s-the-geometry-not-the-model-effective-rank-and-subspace-alignment-in-functional-connectivity-classification.

Vancouver

Fan X, Li J, Han Y, Guo H, Li G, Hu Y, et al. It's the Geometry, Not the Model: Effective Rank and Subspace Alignment in Functional Connectivity Classification. https://omanscience.com/en/articles/it-s-the-geometry-not-the-model-effective-rank-and-subspace-alignment-in-functional-connectivity-classification

IEEE

X. Fan, J. Li, Y. Han, H. Guo, G. Li, Y. Hu, W. Zhang, W. Ji, and Y. Zhang, "It's the Geometry, Not the Model: Effective Rank and Subspace Alignment in Functional Connectivity Classification," https://omanscience.com/en/articles/it-s-the-geometry-not-the-model-effective-rank-and-subspace-alignment-in-functional-connectivity-classification.