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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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?

Predictive Analytics Approach for Steel Billets Quality Control System

P. 219–223.
Belov A. V., Ekaterina A. Melekhova, Vorontsova T.

The paper deals with the problem of improving the quality of metal products. Nowadays destructive methods of quality control of the steel billets prevail at metallurgical enterprises. This approach to assessing the quality of the steel billets is wasteful, which increases its cost. One of the ways to reduce the cost of production of metal products is to decrease the use of the destructive control methods through automatic certification of metals. The paper proposes to use an algorithm for predicting the mechanical properties of the final product based on the analysis of data obtained during the production of the steel products.

The prediction algorithm is chosen based on the classical deep machine learning models. The target model is the one that shows the highest accuracy. This paper presents the results of applying modern machine learning algorithms for predicting the mechanical properties of steel billets and automatic certification of metal according to predicted values. The results of the study are planned to be implemented at the Metallurgical Complex Mill-5000 of OJSC Vyksa Metallurgical Plant.

Language: English
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Keywords: металлургиямашинное обучениеконтроль качестваMechanical propertiescomputer simulationпрогнозированиеmachine learningquality control

In book

2022 International Conference on Quality Management, Transport and Information Security, Information Technologies (IT&QM&IS)
2022 International Conference on Quality Management, Transport and Information Security, Information Technologies (IT&QM&IS)
St. Petersburg: IEEE, 2022.
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