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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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Early warning system for Russian stock market crises: TCN-LSTM-Attention model using imbalanced data and attention mechanism

Socio-Economic Planning Sciences. 2025. No. 101. Article 102292.
Teplova T., Fayzulin M., Kurkin A.

This research is devoted to the development and evaluation of the effectiveness of machine learning and deep learning models for forecasting crisis phenomena in the Russian stock market. The work covers the period from the beginning of 2014 to June 2024, using the IMOEX index as the main indicator of the market condition. Special attention is paid to the problem of the imbalanced data structure and accounting for investor sentiment. The study presents a hybrid TCN-LSTM-Attention model, which showed the best performance in predicting crisis events. The model achieved an accuracy of 78.70 % for forecasts on the day of observation and 78.85 % for forecasts on the next trading day. Analysis using the Integrated Gradients method identified key factors affecting forecasting, including stock index values, total capitalization of companies and exchange rates. The study found that the quality of forecasts declines as the forecast horizon increases, but the importance of considering investor sentiment metrics becomes more important. Validation of the model using different time windows and monthly retraining showed a significant improvement in results, achieving an accuracy of up to 83.87 %. The developed models demonstrate the potential for building early warning systems for stock market crises, which can be useful for individual investors, financial institutions and market regulators alike. Future research could be aimed at incorporating additional factors and developing decision-making strategies based on the obtained forecasts.

Research target: Economics and Management
Language: English
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Keywords: early warning systemгибридные моделиhybrid modelsсистема раннего предупрежденияглубокое обучениеDeep learningStock market crisisTime series classificationкризисы на фондовом рынкеклассификация временных рядов
Publication based on the results of:
Models and methods for identifying patterns in global and national financial markets (2025)
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