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News
August 13, 2026
‘Working with AI Solves a Wide Range of Engineering Problems
Artificial intelligence is a working tool based on a balanced combination of algorithms and engineering. Experts and doctoral students from the HSE Moscow Institute of Electronics and Mathematics explain how AI technologies can improve an application, device, or system, and what engineering tasks are solved in the process.
August 12, 2026
‘I Would Like My Research to Help Make the World a Calmer and Better Place
Whatever task Saraa Ali, Junior Research Fellow at the Laboratory of Methods for Big Data Analysis (LAMBDA) of the AI and Digital Science Institute (HSE Faculty of Computer Science), is working on, she thinks about how it can benefit people. She told the Young Scientists of HSE University project about her large family, diagnosing three-phase motors, and her dream of building a children’s home in her native country.
August 11, 2026
‘The Peak of Stupidity and ‘The Valley of Despair: HSE Economists Propose an Explanation for the Dunning–Kruger Effect
The Dunning–Kruger effect, which describes a sharp surge in self-confidence among beginners followed by an equally rapid decline as they gain experience, can be explained by the nature of the learning process and the acquisition of new knowledge. This conclusion was reached by Andrey Vorchik of the HSE Faculty of Economic Sciences together with independent researcher Murat Mamyshev. They developed a mathematical model of learning and demonstrated how subjective confidence is formed and changes as knowledge accumulates, as well as how teachers can reduce the ‘valley of despair’ experienced by learners.

 

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?

Finding Weakly Correlated Nodes in Random Variable Networks

Operations Research Forum. 2024. Vol. 5. Article 116.
Koldanov P., Alexander Koldanov, Semenov D.

The issue of identifying sets of weakly correlated stocks is explored. Four distinct

methods for constructing these sets are compared: the traditional approach using

Pearson correlation, the traditional approach using Kendall correlation, and multi-

ple hypothesis testing methods, which apply both Pearson and Kendall correlations.

To derive specific findings, we analyze daily returns of a selection of stocks listed on

the Frankfurt (FWB), London (LSE), and Paris (Euronext Paris) stock exchanges. Our

results reveal a significant difference between the identified sets of weakly correlated

stocks in Pearson and Kendall correlation networks. Notably, this difference is more

substantial in the statistically significant sets of weakly correlated stocks derived from

multiple hypothesis testing methods than in those obtained through traditional pro-

cedures. We recommend for the use of multiple hypothesis testing methods based on

Kendall correlation for analyzing market data.

Research target: Computer Science Mathematics Economics and Management
Language: English
DOI
Text on another site
Keywords: statistical significance Pearson correlation Stock returnsKendall correlationRandom variable networkMultiple hypotheses testing procedureWeakly correlated stocksFamily-wise error rate (FWER)
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