Optimal Control in Soft and Active Matter
arXiv:2504.08676 · doi:10.1146/annurev-conmatphys-031324-031350
Abstract
Soft and active condensed matter represent a class of fascinating materials that we encounter in our everyday lives -- and constitute life itself. Control signals interact with the dynamics of these systems, and this influence is formalized in control theory and optimal control. Recent advances have employed various control-theoretical methods to design desired dynamics, properties, and functionality. Here we provide an introduction to optimal control aimed at physicists working with soft and active matter. We describe two main categories of control, feedforward control and feedback control, and their corresponding optimal control methods. We emphasize their parallels to Lagrangian and Hamiltonian mechanics, and provide a worked example problem. Finally, we review recent studies of control in soft, active, and related systems. Applying control theory to soft, active, and living systems will lead to an improved understanding of the signal processing, information flows, and actuation that underlie the physics of life.
22 pages
References in corpus (13)
- Spontaneous motion in hierarchically assembled active matter
- Mechanisms of virus assembly
- Optimal finite-time processes in stochastic thermodynamics
- A Review of Pseudospectral Optimal Control: From Theory to Flight
- Defect dynamics in active nematics
- Reaching the Limit in Autonomous Racing: Optimal Control versus Reinforcement Learning
- Finite-time Landauer principle
- Optimal active particle navigation meets machine learning
- Programmable patchy particles for materials design
- Beyond Linear Response: Equivalence between Thermodynamic Geometry and Optimal Transport
- Optimal control of uniformly heated granular fluids in linear response
- Active particles in moving traps: minimum work protocols and information efficiency of work extraction
- Optimal switching strategies for navigation in stochastic settings