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September 18, 2025Reports on Progress in Physics3 citationsOpen Access

Topological phases in discrete stochastic systems

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JAJaime Agudo‐CanalejoETEvelyn Tang

Key Points

  • Topological invariants reveal fundamental properties of both stochastic and biological systems, enhancing our understanding of complex dynamics.
  • Recent findings indicate that these invariants can define edge states in non-equilibrium systems, suggesting novel principles for material design.
  • Analysis of 1D and 2D discrete models shows how topological protection can facilitate robust biological functions under stochastic conditions.
  • Understanding edge states and the role of non-Hermiticity offers new insights into the behavior of discrete stochastic systems.

Abstract

Abstract Topological invariants have proved useful for analyzing emergent function as they characterize a property of the entire system, and are insensitive to local details, disorder, and noise. They support boundary states, which reduce the system response to a lower dimensional space and, in 2D systems, offer a mechanism for the emergence of global cycles within a large phase space. Topological invariants have been heavily studied in quantum electronic systems and have been observed in other classical platforms such as mechanical lattices. However, this framework largely describes equilibrium systems within an ordered crystalline lattice, whereas biological systems are often strongly non-equilibrium with stochastic components. We review recent developments in topological states in discrete stochastic models in 1D and 2D systems, and initial progress in identifying testable signature of topological states in molecular systems and ecology. These models further provide simple principles for targeted dynamics in synthetic systems and in the engineering of reconfigurable materials. Lastly, we describe novel theoretical properties of these systems such as the necessity for non-Hermiticity in permitting edge states, as well as new analytical tools to reveal these properties. The emerging developments shed light on fundamental principles for non-equilibrium systems and topological protection enabling robust biological function.

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Cite This Study

Agudo‐Canalejo et al. (2025) studied this question.

synapsesocial.com/papers/68d461b631b076d99fa60894https://doi.org/10.1088/1361-6633/ae07fd
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