HSE and NEFU graduate first bachelors in the double degree program "Economics and Data Analysis"

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HSE Online Campus Graduates First Bachelors

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Bisyarina Nina Pavlovna

Bondarenko Ivan Valerievich

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HSE Strengthens Ties with Central Asia

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What Flowers Say: New Exhibition at the School of Design

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HSE ART GALLERY in partnership with the platform Artz. Vork continues the cycle of group exhibition projects from the “Big Themes” series, rethinking fundamental ideas and offering new interpretations of timeless concepts. This time, the theme of the exhibition was flowers – their images, symbolism and meanings.

Flowers are traditionally associated with transience: they do not live long, quickly fade, and disappear almost without a trace. Therefore, flora in art often becomes an image of memory, loss, something that slips away but continues to exist. Alexandra Lurye, Maria Panina, Anna Stavinozhenko, and Alina Kerimova work in this vein. In the context of the climate and political crisis, flora is increasingly acquiring features of vulnerability and anxiety — as in the works of Anastasia Kovaleva, Alexandra Zamurueva, and Polina Filippova. Some artists — Irina Afanasyeva and Galya Fadeeva — radically rethink the very idea of the “language of flowers,” rejecting established symbols in favor of new ways of expression. When we talk about flowers, we most often imagine something living, fragile, tangible. But what happens when flora loses its materiality and turns into a digital image? This question is asked by Masha Rogova, Dariella, and Olga Filina. Flowers at the exhibition become a reason for a conversation about identity, personal history and deep self-reflection — in the works of Inga Tatarshao, Ekaterina Ivanitskaya and Marya Dmitrieva. Separately, the exhibition presents “Flower Horoscope” — a fantasy digital project by the art group Agey Tomesh.

One of the conceptual lines of the exhibition is the metaphorical convergence of the phenomena of herbarium and collecting. To collect a herbarium and to collect art means to touch time. In both cases, it is about choosing, selecting and preserving what can disappear. However, in the post-digital era, when the boundaries between the physical and the virtual are increasingly blurred, a new form of interaction with art is emerging – phygital collecting, combining the material (physical) and the digital (digital). Being part of the exhibition program Biennale of private collections, the project invites us to reflect on the nature of phygital collecting. This format became the basis of the platform Artz. Vork, where viewers can find all the works on display — add a memorable piece to their digital collection and purchase a print based on it. The Flower Horoscope is an archaic system of symbolic classification found in cultural layers of the supposed pre-continental period. Unlike astrological systems based on observation of stellar movement, this model correlates human individuality with phenological cycles — the flowering time of plants, seasonal weather changes, and the migration of fauna.

Each day of the modern calendar year corresponds to a certain type of ancient plant (usually a flower), supposedly possessing its own "character" or behavioral metaphor. It is believed that a person born on this day inherits the qualities attributed to "his" plant, as well as its supposed role in the natural-social structure.

Choose a flower

Art group Agey Tomesh, Dariella, Ira Afanasyeva, Marya Dmitrieva, Alexandra Zamurueva, Ekaterina Ivanitskaya, Alina Kerimova, Anastasia Kovaleva, Alexandra Lurye, Maria Panina, Masha Rogova, Anna Stavinozhenko, Inga Tatarshao, Galya Fadeeva, Olga Filina, Polina Filippova.

HSE ART GALLERY in the Vinzavod Contemporary Art Center4th Syromyatnichesky Lane, 1/8с6 (entrance C8, floor 2)

Gallery opening hours: Tuesday–Sunday | 12:00–20:00Free admission by prior arrangementregistration

Director of HSE ART GALLERY: Vassa Pyrkova Curator of HSE ART GALLERY: Ilya Kronchev-IvanovProducers: Anna Aravina, Polina Saratovskaya, Anastasia Shabashova, Elena KirpuGraphic design: HSE DESIGN LAB

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RSF supported 15 projects of young scientists from HSE

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The Russian Science Foundation has summed up the results of the 2025 youth competitions for grants. Based on the results of the competition of initiative projects of young scientists, 14 projects of the Higher School of Economics were supported. Based on the results of the competition of scientific groups led by young scientists, one university project was supported.

The competitions are part of the Presidential Program of research projects implemented by leading scientists, including young scientists, a priority area of the RSF activity "Support for young scientists". The goal of the presented project should be to solve specific problems within the framework of one of the priorities defined in the Strategy for Scientific and Technological Development of the Russian Federation.

Competition of initiative projects of young scientists

Grants are allocated for the implementation of fundamental and exploratory scientific research in 2025–2027 to researchers aged up to and including 33 years who have a PhD degree.

Following the results of the competition, 14 HSE projects were supported in the following areas: Mathematics, informatics and systems sciences, Physics and space sciences, Humanities and social sciences:

"Assessing Impact Effects in Economic Research Using Synthesis of Econometric Models and Machine Learning Methods" (headed by Bogdan Potanin, Faculty of Economic Sciences);

"Trace Operator in Non-Lipschitz Domains and the Steklov Problem" (supervised by Alexander Menovshchikov, Faculty of Mathematics);

“Solution of the inverse phaseless scattering problem for the Helmholtz equation using the phase reconstruction method” (supervisor Vladimir Sivkin, Faculty of Mathematics);

"Automorphisms of algebraic monoids" (supervised by Anton Shafarevich, Faculty of Computer Science);

"Localization and its destruction in one-dimensional disordered quantum multiparticle systems" (head Murod Bakhovadinov, International Laboratory of Condensed Matter Physics);

"Hessian and locally conformal Hessian manifolds" (supervised by Pavel Osipov, International Laboratory of Mirror Symmetry and Automorphic Forms);

“Socio-psychological factors of perception of socio-economic inequality: from social comparison to subjective well-being” (headed by Irina Prusova, Faculty of Social Sciences);

“Industrial postgraduate studies in Russia: practices, barriers and effects of employers’ participation in the training of postgraduate students” (headed by Svetlana Zhuchkova, Institute of Education);

“‘Gentle’ employment: practices for adapting forms and conditions of employment against the backdrop of deteriorating health in older age groups in Russia” (headed by Anna Chervyakova, Institute of Social Policy);

"Dynamical systems on direct and oblique products of manifolds" (supervisor Marina Barinova, HSE University – Nizhny Novgorod);

"Knowledge and Management on the Imperial Outskirts: Experts and Mediators in the Russian North and Far East in the Post-Reform Russian Empire" (headed by Evgeny Egorov, HSE University – Saint Petersburg);

“At the start of academic careers: student participation in scientific communities and initiatives as a vector for the development of national science” (headed by Irina Lisovskaya, HSE University – St. Petersburg);

“Socio-psychological and cognitive factors of trust in AI-social agents and AI-generated information in the field of health” (headed by Yadviga Sinyavskaya, HSE University – St. Petersburg);

"Asymmetrical radiation output from a microdisk laser using a conjugated photonic crystal" (headed by Konstantin Ivanov, HSE University – St. Petersburg).

Competition of scientific groups led by young scientists

Within the framework of the competition, grants are allocated for conducting fundamental and exploratory scientific research in 2025–2028 to researchers aged up to and including 35 years, who have a candidate or doctoral degree.

Based on the results of the competition, the project “Integrable sigma models and conformal field theories” (supervisor Mikhail Alfimov, Faculty of Mathematics) was supported.

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HSE researchers teach neural networks to distinguish origins from genetically close populations

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Source: State University “Higher School of Economics” –

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INInstitute of Artificial Intelligence and Digital Sciences FKN HSE University has proposed a new approach based on modern machine learning methods to determine a person's genetic origin. Graph neural networks make it possible to distinguish even very close populations with high accuracy.

Genetic analysis is a service that has become popular in the last 10-15 years not only as a medical diagnostic tool, but also as an opportunity to learn more about one's origins. DNA analysis allows one to assess ethnic composition, determine where ancestors lived and moved, and find the number of Neanderthal mutations in the genome.

This has become possible thanks to the development of modern technologies – genotyping, data storage and processing systems, machine learning – and a significant reduction in their cost. But at the same time, existing testing methods do not allow us to separate genetically close, related populations that have lived in adjacent territories for a long time.

Researchers at the HSE Institute of AI and Digital Sciences have developed a method that allows one to distinguish the origins of people from closely related populations. The technology is based on graph neural networks. The algorithm relies not on the DNA sequence itself, but on graphs that indicate genetic connections between people with common sections of the genome. Such sections reflect the degree of kinship between people and indicate how many generations ago they had common ancestors. The more matches, the closer the people are in origin. The vertices in the model correspond to a person, and the edges reflect the degree of kinship.

The method was tested on data from different regions. The results for the population of the East European Plain, for which a large database has already been collected, were especially interesting. The graph neural network was able to accurately determine the population affiliation of representatives of genetically very close peoples.

"Existing methods of genetic analysis solve a different problem: they determine belonging to large isolated populations, for example, they determine who had French, who had Germans, who had English in their ancestry. Our method allows us to work with closely related populations, which is especially relevant for Russia, a historically multinational country," says Alexey Shmelev, one of the authors of the work, a research intern.International Laboratory of Statistical and Computational GenomicsInstitute of AI and Digital Sciences, Faculty of Computer Science, National Research University Higher School of Economics.

In the future, the researchers plan to teach the neural network to predict the percentage of different populations in the genome.

The researchers registered theirdevelopmentcalled AncestryGNN — "Neural Network Prediction of Population Belonging from Common Genome Segments."

As Vladimir Shchur, head of the International Laboratory of Statistical and Computational Genomics at the Institute of AI and Digital Sciences of the Faculty of Computer Science at the National Research University Higher School of Economics, noted, the proposed method opens up new prospects for more accurately determining the population history of people and can be used in genealogical research and anthropology.

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Kamchatka Breakthrough: Schoolchildren Design the Future with the Support of HSE and Business

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"A cat that jumps from the floor to the shelf does not know Newton's theory."

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Anastasia Malashina defended her dissertation on a topic related to cryptographic methods of information protection, and is now engaged in applied projects in the field of strategic analytics. In an interview with the Young Scientists of the Higher School of Economics project, she spoke about the difficulties she encountered on the way to her degree, what cryptography is, and why large language models will not replace human intelligence.

How I got started in science

In high school, I became interested in mathematics and was going to enroll in the corresponding theoretical direction, but my set of exams limited my choice to specialties related to applied mathematics. At the Higher School of Economics, I passed the applied mathematics and computer security program, but ultimately chose the second direction, although I did not initially think about information security. After completing my specialist program, I decided to enroll in graduate school right away. A higher education diploma was not enough for me; I wanted to get an academic degree.

What I researched

My dissertation was related to cryptographic methods of information protection. I was offered a narrow direction related to keyless reading. I started working on this topic in my final years of the specialist program, then continued in graduate school and defended my dissertation on it.

I liked the topic because it allows for an interdisciplinary approach: mathematical methods of cryptanalysis are combined with the study of natural language in text form.

Methods of mathematical linguistics are not included in information security programs. And a terminological barrier is formed: linguists and cryptographers use completely different terminology to describe the same language models. In my work, I tried to reduce this methodological gap.

As part of my dissertation, I worked on applying the information-theoretical approach to the analysis of algorithmic methods of information protection. Imagine that you are decrypting an intercepted message or its individual parts, going through all possible variants. How can you single out from the chaotic combinations of symbols those that may be variants of the original text? To do this, you need to take into account the statistical features inherent in the text in natural language, which you can try to approximate and formalize, for example, in terms of probability theory and mathematical statistics.

What is cryptography

This is the science of mathematical methods of protecting information. For example, correspondence in WhatsApp is encrypted using cryptographic algorithms. The basis of the electronic digital signature, which is formed, for example, on "Gosuslugi", is also cryptographic schemes.

In the USSR, cryptography was a completely closed discipline, the word was not even mentioned in the open press. Later, cryptography was partially opened, but many studies remain closed. As a result, some areas of research in open science may appear out of context.

The problem of narrow topics

My work was carried out in conditions of an artificial methodological vacuum. Without the possibility of comparing my research with previous results.

The problem became more acute when trying to publish articles. I encountered a huge number of rejections. The list of journals is limited to lists, and they practically do not have narrow-profile publications in the field of cryptography, etc. Generalists did not understand the practical significance and relevance, and therefore could not objectively review. Paradoxically, preparing the research was much easier for me than publishing the necessary scientific articles on the topic of the dissertation.

What qualities are important for a researcher?

I once heard an opinion that one of the most important qualities for a scientific researcher is the ability to quickly take criticism into account and bring the work to a level where it meets the requirements. At the department seminar at the end of April last year, many comments were made about my work. The committee believed that I would not have time to correct everything before autumn. However, I revised the manuscript in a month, and even added a number of new experiments, the idea for which came to me during the work. And, contrary to expectations, I went to the pre-defense already in June.

I am also still surprised how I managed to publish my articles in the required journals and meet the defense criteria for articles. All my main articles on the dissertation were published without co-authors.

If I hadn't become a researcher

I realized myself in the academic track the way I wanted. Now my professional activity is not directly related to scientific research. I see many prospects for myself in other areas, new interesting projects.

What I do

Strategic consulting and technological analytics. I like the project format without being tied to daily routine tasks. When you conduct analytical research, you have to be creative and come up with new formats. In some ways, it really reminds me of doing science, when you don’t have a ready-made methodology within the framework of the task and you work in conditions of uncertainty of the result.

In science, you develop a methodology for research, prove statements, conduct experiments, but sometimes you come to unexpected conclusions. And you think about what to do with it, because a negative result in such studies is also important. And this creative principle that is present in science is what initially attracted me.

What is the difference between analytical research and scientific research?

There are a number of requirements for scientific research, it is aimed at obtaining new fundamental knowledge, testing hypotheses, discovering patterns. A dissertation must necessarily contain a certain contribution to the development of some area of knowledge. Science seeks truth. The results are recorded in the form of scientific articles, and subsequently in the form of dissertations, monographs, etc.

Analytics is applied research that answers specific practical questions. Here, data is transformed into solutions. For example, if we are talking about strategic consulting, we answer questions about what is happening, why, and how to act. The results of business analytics can take various forms depending on the project duration and customer requirements: a report, digest, white paper, etc.

But there is another very interesting format – popular science texts. This is express analysis, designed for a wide audience. Without delving into the topic of a specific technology, everyone can understand what trends are currently emerging in science and business and how they will affect our everyday life.

Why does an analyst need a broad outlook?

If you write about the latest trends in technology, it is important to be aware of scientific achievements in various fields. It is clear that a person without a specialized education in the subject area will not understand the fundamental things that are happening there now. But you need to understand in general terms in order to quickly navigate.

The big topic now is large language models (LLM). New scenarios for their use appear daily, they increase the efficiency of business and science. However, LLMs have almost reached their limit. They are already trained on a huge array of texts written by people, and increasing the data will lead to only minor improvements.

A cat that jumps from the floor to the shelf does not know Newton's theory, but it makes its jump absolutely accurately. It relies on its empirical experience. Both humans and animals have the ability to proprioception. Language models do not. They do not understand our world. And texts will not fix the situation here.

Do I get burnout?

There is no burnout as such. But when I took up the dissertation after finishing my postgraduate studies, in order to bring the manuscript to a holistic form and start moving towards pre-defense, I experienced psychological resistance for a long time. Because when you constantly have to face subjective criticism and cope with problems alone, apathy appears. But the energy of unfinished business (the well-known Zeigarnik effect) weighs more heavily. This became the motivation to finally finish the dissertation.

What are my hobbies besides science?

Recently I have become interested in interior design and started playing tennis.

What was the last thing I read?

Les Miserables by Victor Hugo and The Ladies' Paradise by Emile Zola.

Advice to young scientists

Think in advance about the prospects of the research and how the topic fits into the current agenda. I know that young researchers in other disciplines often face the problem that the topic they choose has already been sufficiently well researched. But in my case, the advice would be this: do not take narrow topics about which little is known.

There is no point in starting a study if its practical significance is not obvious. The issue is not only about successfully defending the dissertation. The study can be commercialized, attract funding, and promoted in popular science formats.

Accordingly, you need to understand how well-known your future topic is in the expert community. It is desirable that not only your supervisor is interested in it, but also at least a few other people at the university. It is very important that a postgraduate student, in the process of preparing his work, can seek advice from various specialists and receive an objective assessment, because one person's view becomes blurred.

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HSE experts assessed the “cost” of options for developing legislation on digital platforms and proposed an optimum

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HSE Educational Programs Presented at INNOPROM-2025

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