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News
October 8, 2026
HSE Experts Take Part in 23rd Annual Meeting of Valdai Discussion Club
The 23rd Annual Meeting of the Valdai Discussion Club was held from September 28 to October 1, 2026 under the theme ‘Responsibility for the Future: Limits of the Possible, or Limitless Possibilities?’ The forum brought together 120 experts from 40 countries, including representatives of China, the United States, India, Brazil, the United Kingdom, Germany, Egypt, Iran, and Japan.
October 7, 2026
‘Our Team Consists of True Leaders in Their Respective Academic Disciplines
The HSE International Centre of Decision Choice and Analysis studies a wide range of methods for analysing decision-making and possible scenarios for the development of natural, socio-economic, and political phenomena using various mathematical models. The application of advanced mathematical methods to forecasting helps to prevent negative outcomes and avoid erroneous decisions. The HSE News Service spoke to the centre’s director, Prof. Fuad Aleskerov, about its work.
October 6, 2026
International N5 Symposium ‘Neural Networks and Nonlinearity in Nizhny Novgorod Brings Together Scientists from Russia and Serbia
The International N5 Symposium ‘Neural Networks and Nonlinearity in Nizhny Novgorod’ was held at the Nizhny Novgorod House of Scientists from September 23 to 26. The event was organised by HSE University–Nizhny Novgorod and the Nizhny Novgorod House of Scientists, with the participation of Sberbank and the Institute of Physics Belgrade. The symposium was held for the second time: the first conference took place in 2025 and attracted considerable interest from the academic community.

 

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Reducing False Positives in Bank Anti-fraud Systems Based on Rule Induction in Distributed Tree-based Models

Computers and Security. 2022. Vol. 120. Article 102786.
Ivan Vorobyev, Krivitskaya A.

Fraud detection in bank payments transactions suffers from a high number of false positives. To deal with this problem, we introduce a rules generation framework for a fraud-detection system – an automatic rules generation using distributed tree-based ML (machine learning) algorithms such as Decision Tree, Random Forest and Gradient Boosting, where the components of expert rules are used as the features for the model. This approach is a combination of statistical and expert-based approaches. We apply it to the bank's card transaction data. Our dataset covers February 2021 and consists of more than 20 mil. records including information on clients, transactions, and merchants. The autogenerated rules were aimed at improving FPR (false positive rate) business-metric. The framework was tested in a real fraud-monitoring system of large bank throughout half of the year. The rules obtained using this framework proved to be satisfactory efficient while having tangible business effect.

Research target: Computer Science Engineering and Technology
Language: English
DOI
Text on another site
Keywords: fraud detectionFeature EngineeringPayment Card FraudFalse PositivesRule Induction
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