Unlike the quasi-stationary escape flux, the flux on time scales preceding the quasi-stationary stage may significantly depend on the initial state of the system. We analyze three characteristic initial states: (i) the stable state of the noise-free system, i.e. the bottom of the potential well; (ii) the non-bottom state with given coordinate and velocity; (iii) a thermalized state. We prove rigorously and demonstrate in simulations that, on the time scale of a period of eigenoscillation, the flux grows stepwise for cases (i) and (iii), and in an oscillatory manner for case (ii). Different steps/oscillations correspond to different topologies of the most probable escape path
For an overdamped particle evolving in a potential and submitted to colored noise, we study numerica...
Getfert S, Reimann P. Thermally activated escape far from equilibrium: A unified path-integral appro...
Escape from an unstable fixed point in a time-delayed dynamical system in the presence of additive ...
We prove rigorously and demonstrate in simulations that. for a potential system staying initially at...
Noise-induced escape from the metastable part of a potential is considered on time scales preceding ...
Noise-induced escape from the metastable part of a potential is considered on time scales preceding ...
Using the path-integral approach, we have developed a general solution of the problem of a noise-ind...
An escape mechanism in a bistable system driven by colored noise of large but finite correlation tim...
Complex physical systems are unavoidably subjected to external environments not accounted for in the...
We explore the archetype problem of an escape dynamics occurring in a symmetric double well potenti...
We consider the stochastic dynamics of escape in an excitable system, the FitzHugh-Nagumo (FHN) neur...
Activated escape is investigated for systems that are driven by noise whose power spectrum peaks at ...
Noise-induced escape from a quasiattractor, and from a quasi-hyperbolic attractor with nonfractal bo...
In this paper we examine two specific models of dynamical systems in which noise plays a central rol...
The dynamical process through a marginal state (saddle point) driven by colored noise is studied. Fo...
For an overdamped particle evolving in a potential and submitted to colored noise, we study numerica...
Getfert S, Reimann P. Thermally activated escape far from equilibrium: A unified path-integral appro...
Escape from an unstable fixed point in a time-delayed dynamical system in the presence of additive ...
We prove rigorously and demonstrate in simulations that. for a potential system staying initially at...
Noise-induced escape from the metastable part of a potential is considered on time scales preceding ...
Noise-induced escape from the metastable part of a potential is considered on time scales preceding ...
Using the path-integral approach, we have developed a general solution of the problem of a noise-ind...
An escape mechanism in a bistable system driven by colored noise of large but finite correlation tim...
Complex physical systems are unavoidably subjected to external environments not accounted for in the...
We explore the archetype problem of an escape dynamics occurring in a symmetric double well potenti...
We consider the stochastic dynamics of escape in an excitable system, the FitzHugh-Nagumo (FHN) neur...
Activated escape is investigated for systems that are driven by noise whose power spectrum peaks at ...
Noise-induced escape from a quasiattractor, and from a quasi-hyperbolic attractor with nonfractal bo...
In this paper we examine two specific models of dynamical systems in which noise plays a central rol...
The dynamical process through a marginal state (saddle point) driven by colored noise is studied. Fo...
For an overdamped particle evolving in a potential and submitted to colored noise, we study numerica...
Getfert S, Reimann P. Thermally activated escape far from equilibrium: A unified path-integral appro...
Escape from an unstable fixed point in a time-delayed dynamical system in the presence of additive ...