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Marina V. Mamonova

Publications and source records attributed to Marina V. Mamonova.

2 recordsLinked to original sources

A Machine-Learning Based Approach to the Evaluation of the Critical Scaling Behavior of Anisotropic Spin Systems

Computational models adequately representing phase transitions and evaluating the critical system parameters are essential for the understanding of the properties of a wide range of materials. Here we propose a machine learning (ML)-based approach to the identification of the critical point in anisotropic spin systems. Our approach implies training of a convolutional neural network (CNN) model from the correlation matrices obtained by Monte Carlo simulations. Next, the pretrained model is employed as a fast estimator of the critical temperature, which can be extracted in several complementary ways from the CNN model inference, this way improving the robustness of the analysis. The ML-based estimates obtained in this study are in very good agreement with the reference Monte Carlo simulation results, while computational costs are about 10x lower compared to the classical thermodynamic approach.

cond-mat.stat-mech↗

The influence of anisotropy on the manifestation of aging effects in the magnetoresistance of multilayer structures

Currently, aging effects occurring in multilayer systems attract much attention from researchers. In our research we looked at the behavior of multilayer systems that depend on anisotropy, magnetoresistance and susceptibility.All these parameters are interrelated and have varying degrees of influence on the effects of aging. We researched our Co-layers magnetic system from high-temperature and low-temperature initial states, as well as not only in the critical temperature region, but in a wide low-temperature range. The study was carried out with different types of magnetic anisotropy, which made it possible to identify differences in the behavior of the system depending on the type of anisotropy. We found that in systems exhibiting a dimensional transition, aging effects manifest to gain and themselves in a wide low-temperature range, and not only in a narrow near-critical region, which ultimately leads us to a wide range of applications of these materials for practical applications.

cond-mat.mes-hall↗