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September 17, 2026
'I Wish That People Would Place Greater Trust in Science'
When Tatiana Eremicheva chose Fundamental and Computational Linguistics as her field of study, she thought it would be about learning languages. Instead, she discovered it was about helping people. In this interview for the HSE Young Scientists project, she discusses science as a way of understanding the world, billiards as a team-building activity, and why learning to read is not always as easy as it seems.
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Supervised Classification of Metabolic Networks

P. 2688–2693.
Granata I., Guarracino M., Kalyagin V. A., Maddalena L., Manipur I., Pardalos P. M.

Networks represent a convenient model for many scientific and technological problems. From power grids to biological processes and functions, from financial networks to chemical compounds, the representation of case studies with graphs enables the possibility to highlight both topological and qualitative characteristics. In this work, we are interested in the supervised classification models for data in form of networks. Given two or more classes whose members are networks, we want to build a mathematical model to classify them. We focus on networks with labeled nodes and weighted edges. We define distances between networks and we build a classification model. We provide empirical results on datasets of biological interest providing details on graphical model selection.

Language: English
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Keywords: Supervised classificationNetwork dataMetabolic networks
Publication based on the results of:
Methods and Algorithms for Networks Analysis (2019)

In book

Proceedings 2018 IEEE International Conference on Bioinformatics and Biomedicine
Madrid: IEEE, 2018.
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