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News
August 25, 2026
Scientists Develop Algorithm for More Reliable Processors in Data Centres
Researchers from HSE MIEM and Samara University have developed the LRF-3D algorithm to automatically bypass idle nodes in three-dimensional networks-on-chip. Thanks to its hierarchical architecture, the algorithm outperforms existing solutions in both speed and path accuracy, improving processor reliability for use in data centres, supercomputers, and AI computing. The source code and test results are publicly available.
August 24, 2026
Researchers Develop Method for Direct Generation of Regulatory DNA
Researchers at HSE University have developed a model for generating promoters and enhancers—DNA sequences that regulate gene activity. The model works directly with DNA nucleotides, without first transforming them into a continuous numerical representation. This solution could be useful for applications in synthetic biology and gene therapy. The study results were presented at the ICLR 2026 Workshop ‘Generative AI in Genomics (Gen^2): Barriers and Frontiers.’
August 21, 2026
Social Integration: At the Crossroads of Knowledge and Values
The International Laboratory for Social Integration Research (ILSIR) at HSE University studies the challenges faced by vulnerable groups and explores ways to help them participate fully in everyday life. To develop effective solutions, the laboratory’s researchers combine cutting-edge methods with practical fieldwork. In this interview with the HSE News Service, Laboratory Head Elena Iarskaia-Smirnova discusses the laboratory’s work.

 

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Incorporating Scientific Knowledge into Neural Network Density Functionals

Journal of Chemical Theory and Computation. 2026. Vol. 22. No. 9. P. 4405–4414.
Schneider M., Zaripov D., Dokin R., Ryabov A., Medvedev M.

Density functional theory (DFT) is the workhorse of modern reactions and materials modeling. While the exact functional remains unknown, many approximations to it have been constructed either by hand-crafting functional forms to satisfy exact constraints or by machine learning. In this work, we show how both of these approaches can be fused to build both accurate and robust density functionals: we train a neural network to perform exact-constraints-aware local density-guided fine-tuning of parameters in the physically sound form of Perdew–Burke–Ernzerhof (PBE) functional. The resulting functional reduces the error of its parent PBE in thermochemical tasks by nearly 30%, reaching the accuracy of modern meta-generalized gradient approximations (mGGAs), and shows good accuracy on electron densities. We demonstrate that removing either the PBE form or the adherence to exact constraints significantly degrades functional performance and deteriorates electron densities. Our work shows how uniting the power of machine learning with foundational physical principles creates more accurate and reliable DFT functionals built on both data and knowledge.

 

Research target: Chemistry Computer Science
Language: English
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Keywords: Теория функционала плотностиDensity functional theory (DFT)
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