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September 9, 2026
‘Balkan Hospitality Opens Doors: Studying Dialects on the Verge of Extinction
You cannot study spoken dialects from books. Instead, you need to go to a village, seek out its elders, and earn the trust of local residents before you can record hours of spontaneous stories. This is how Natalia Muravleva, Associate Professor at the Faculty of Humanities, conducts her research. Her internship in Serbia continued her long-standing study of dialects spoken by Macedonian settlers. In this interview, she discusses how diaspora cultural centres help researchers reach informants, why native speakers need to be interviewed only in their own language (otherwise, as she puts it, they may 'break'), and how a single field season helped her finalise her monograph. She also shares warm memories of autumn in Belgrade and of colleagues with whom grammar can be discussed in three languages at once.
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Improved Solubility Predictions in scCO2 Using Thermodynamics-Informed Machine Learning Models

Journal of Chemical Information and Modeling. 2025. Vol. 65. No. 8. P. 4043–4056.
Makarov D. M., Kalikin N., Budkov Y., Gurikov P., Kruchinin S. E., Jouyban A., Kiselev M. G.

Accurate solubility prediction in supercritical carbon dioxide (scCO2) is crucial for optimizing experimental
design by eliminating unnecessary and costly trials at an early stage, thereby streamlining the workflow. A comprehensive solubility database containing 31,975 records has been compiled, providing a foundation for developing predictive models applicable to a diverse class of chemical compounds, with a particular focus on drug-like
substances. In this study, we propose a domain-aware machine learning approach that incorporates thermodynamic properties governing phase transitions to solubility predictions in scCO2. Predictive models were developed using the CatBoost algorithm and a graph-based architecture employing directed message passing to identify the most effective approach. Furthermore, auxiliary properties of the solute, including melting point, critical parameters, enthalpy of vaporization, and Gibbs free energy of solvation, were predicted as part of this work. The findings underscore
the efficacy of incorporating domain-specific thermodynamic features to enhance the predictive accuracy of scCO2 solubility modeling. The interpretation and the applicability domain assessment have confirmed the qualitative selection of the employed descriptors, demonstrating their ability to generalize to unique compounds that fall outside the defined domain.

Research target: Chemistry Computer Science
Language: English
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Keywords: сверхкритические флюидыMachine learning algorithmsSolubilitySupercritical fluidsмашинное обучение на графахрастворимость в сверхкритическом CO2
Publication based on the results of:
Прогнозирование свойств молекулярных систем: совмещение методов машинного обучения и классических методов моделирования (2026)
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