{"total":1,"items":[{"citing_arxiv_id":"2505.24125","ref_index":8,"ref_count":1,"confidence":0.88,"is_internal_anchor":false,"paper_title":"Overlooked weak structural connections support human cognition under nonlinear connectome scaling","primary_cat":"q-bio.NC","submitted_at":"2025-05-30T01:50:30+00:00","verdict":"CONDITIONAL","verdict_confidence":"MODERATE","novelty_score":6.0,"formal_verification":"none","one_line_summary":"Weak structural connections in human tractography contribute to cognition and brain dynamics when connectivity weights are nonlinearly compressed, and a fused sift2-commit2 connectome preserves these weak links better than thresholding.","context_count":1,"top_context_role":"background","top_context_polarity":"background","context_text":"White matter integrity, fiber count, and other fallacies: the do's and don'ts of diffusion MRI. Neuroimage. 2013;73:239-254. 7. Sporns O. The human connectome: a complex network. Annals of the new York Academy of Sciences . 2011;1224(1):109--125. 8. Fornito A, Zalesky A, Breakspear M. The connectomics of brain disorders. Nature Reviews Neuroscience. 2015/03/01 2015;16(3):159-172. doi:10.1038/nrn3901 9. Lodygensky GA, Vasung L, Sizonenko SV , Hüppi PS. Neuroimaging of cortical dev elopment and brain connectivity in human newborns and animal models. Journal of Anatomy . 2010;217(4):418 -428. doi:https://doi.org/10.1111/j.1469-7580.2010.01280.x 10. Ardesch DJ, Scholtens LH , Li L, Preuss TM, Rilling JK, van den Heuvel MP. Evolutionary expansion of"}],"limit":50,"offset":0}