AI Article Synopsis

  • The study investigates the Berezinskii-Kosterlitz-Thouless (BKT) transition temperature in magnetic systems using machine learning, specifically principal component analysis (PCA).
  • It addresses the limitations of previous PCA studies by effectively analyzing the first principal component-temperature curve to estimate the BKT transition temperature consistently with established research.
  • The findings clarify the close relationship between the BKT transition and an Ising-like phase transition in the anisotropic Heisenberg antiferromagnetic model on a triangular lattice, highlighting PCA's utility in distinguishing these transition points.

Article Abstract

The Berezinskii-Kosterlitz-Thouless (BKT) transition in magnetic systems is an intriguing phenomenon, and estimating the BKT transition temperature is a long-standing problem. In this work, we explore anisotropic classical Heisenberg XY and XXZ models with ferromagnetic exchange on a square lattice and antiferromagnetic exchange on a triangular lattice using an unsupervised machine learning approach called principal component analysis (PCA). The earlier PCA studies of the BKT transition temperature (TBKT) using the vorticities as input fail to give any conclusive results, whereas, in this work, we show that the proper analysis of the first principal component-temperature curve can estimateTBKTwhich is consistent with the existing literature. This analysis works well for the anisotropic classical Heisenberg with a ferromagnetic exchange on a square lattice and for frustrated antiferromagnetic exchange on a triangular lattice. The classical anisotropic Heisenberg antiferromagnetic model on the triangular lattice has two close transitions: theTBKTand Ising-like phase transition for chirality atTc, and it is difficult to separate these transition points. It is also noted that using the PCA method and manipulation of their first principal component not only makes the separation of transition points possible but also determines transition temperature.

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Source
http://dx.doi.org/10.1088/1361-648X/ad5d35DOI Listing

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