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News
May 20, 2026
HSE University Opens First Representative Office of Satellite Laboratory in Brazil
HSE University-St Petersburg opened a representative office of the Satellite Laboratory on Social Entrepreneurship at the University of Campinas in Brazil. The platform is going to unite research and educational projects in the spheres of sustainable development, communications and social innovations.
May 18, 2026
The 'Second Shift' Is Not Why Women Avoid News
Women are more likely than men to avoid political and economic news, but the reasons for this behaviour are linked less to structural inequality or family-related stress than to personal attitudes and the emotional perception of news content. This conclusion was reached by HSE researchers after analysing data from a large-scale survey of more than 10,000 residents across 61 regions of Russia. The study findings have been published in Woman in Russian Society.
May 15, 2026
Preserving Rationality in a Period of Turbulence
The HSE International Laboratory for Logic, Linguistics and Formal Philosophy studies logic and rationality in a transformed world characterised by a diversity of logical systems and rational agents. The laboratory supports and develops academic ties with Russian and international partners. The HSE News Service spoke with the head of the laboratory, Prof. Elena Dragalina-Chernaya, about its work.

 

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Classification of normal and pathological brain networks based on similarity in graph partitions

P. 107–112.
Kurmukov A., Dodonova Y., Zhukov L. E.

We consider a task of classifying normal and pathological brain networks. These networks (called connectomes) represent macroscale connections between predefined brain regions; hence, the nodes of connectomes are uniquely labeled and the set of labels (brain regions) is the same across different brains. We make use of this property and hypothesize that connectomes obtained from normal and pathological brains differ in how brain regions cluster into communities. We develop an algorithm that computes distances between brain networks based on similarity in their partitions and uses these distances to produce a kernel for a support vector machine (SVM) classifier. We demonstrate how the proposed model classifies brain networks of carriers and non-carriers of an allele associated with an increased risk of Alzheimer’s disease. The obtained classification quality is ROC AUC 0.7 which is higher than that of the baseline.

Language: English
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Keywords: machine learningclusteringstructural brain networks

In book

16th IEEE International Conference on Data Mining Workshops (ICDMW)
NY: IEEE Computer Society, 2016.
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