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News
September 22, 2026
Personal Interest in Doctoral Thesis Topic Most Important for Confidence in Successful Defence
A researcher at HSE University analysed data on 1,539 doctoral students from 161 Russian universities to identify which features of a thesis topic are associated with academic success and engagement. The most important factor was found to be personal interest in the research topic, which was associated with almost all key aspects of doctoral programme experience—from engaging with the academic supervisor to research activity and confidence about successfully defending the thesis. The findings have been published in Higher Education.
September 21, 2026
Researchers Develop Methodology to Assess the Quality of Legal Representation in Criminal Proceedings
Having a good defence attorney in criminal proceedings can largely determine whether a defendant retains their freedom, health and good name. Researchers at HSE University propose a method for predicting an attorney’s performance based on the outcomes of their previous cases. The methodology takes into account the severity of the charges, the complexity of the cases, and the most likely outcome, drawing on judicial statistics.
September 21, 2026
Algebra, Geometry, and AI: Russian and Vietnamese Mathematicians Discuss Current Research
A delegation of scientists from Hanoi visited the HSE Faculty of Computer Science and then took part in a Russian-Vietnamese conference in St Petersburg. The events were part of the three-year project ‘Flexibility and Computational Methods.’ Over the course of the project, the researchers have prepared joint publications and obtained new mathematical results.

 

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Подход к прогнозированию финансового состояния предприятия с учетом изменения макроэкономических показателей

Аудит и финансовый анализ. 2016. № 4. С. 195–200.
Биджоян Д. С.

Analysis and forecasting the financial statement of company play a very important role in decision-making process as for investors and management to implement good governance. For 80 years, the study of this problem was proposed huge number of models fundamentally different from each other methodologically. This article analyzes the main approaches to forecasting bankruptcy and solvency that could be classified into four group: expert models, multiple discriminant analysis, logistic regression, neural networks. The advantages and disadvantages of each method are represented. Based on the analysis of existing methods flaw inherent have been identified in all techniques consisting in not including in the model macroeconomic factors, and an approach based on logistic regression on panel data taking into account the macroeconomic situation. Under macroeconomic indicators are understood currencies against the dollar and the euro, the price of Brent crude oil, as well as the refinance and tax rates.

Research target: Economics and Management Mathematics Computer Science
Priority areas: economics business informatics
Language: Russian
Full text
Keywords: неплатежеспособностьдискриминантный анализнейронные сетиfinancial statementsлогистическая регрессияdiscriminant analysisфинансовое состояниепрогнозирование банкротства предприятияtax ratelogistic regression modelмакроэкономические факторыartificial neural networkscurrencybankruptcy forecastingключевая ставкакурс валютыmecroeconomic factorsInsolvency forecasting
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