We review applications of the Fokker–Planck equation for the description of systems with event trains in computational and cognitive neuroscience. The most prominent example is the spike trains generated by integrate-and-fire neurons when driven by correlated (colored) fluctuations, by adaptation currents and/or by other neurons in a recurrent network. We discuss how for a general Gaussian colored noise and an adaptation current can be incorporated into a multidimensional Fokker–Planck equation by Markovian embedding for systems with a fire-and-reset condition and how in particular the spike-train power spectrum can be determined by this equation. We then review how this framework can be used to determine the self-consistent correlation sta...
High variability in the neuronal response to stimulations and the adaptation phenomenon cannot be ex...
In the first part of this tutorial, we introduce the mathematical tools to determine firing statisti...
We present a novel method for solving population density equations (PDEs) - a mean field technique d...
We review applications of the Fokker–Planck equation for the description of systems with event train...
Minimal models for the explanation of decision-making in computational neuroscience are based on the...
Minimal models for the explanation of decision-making in computational neuroscience are based on the...
We present a time-dependent level-crossing theory for linear dynamical systems perturbed by colored ...
How the brain makes sense of a complicated environment is an important question, and a first step is...
The brain is a very complex system in the strong sense. It features a huge amount of individual cell...
The calculation of the steady-state probability density for multidimensional stochastic systems that...
A single neuron’s connectivity is the key to understanding the network of neurons in the brain. Howe...
We discuss the statistics of spikes trains for different types of integrate-and-fire neurons and dif...
Computational neuroscience is concerned with answering two intertwined questions that are based on t...
We present a method for solving population density equations (PDEs)–-a mean-field technique describi...
High variability in the neuronal response to stimulations and the adaptation phenomenon cannot be ex...
High variability in the neuronal response to stimulations and the adaptation phenomenon cannot be ex...
In the first part of this tutorial, we introduce the mathematical tools to determine firing statisti...
We present a novel method for solving population density equations (PDEs) - a mean field technique d...
We review applications of the Fokker–Planck equation for the description of systems with event train...
Minimal models for the explanation of decision-making in computational neuroscience are based on the...
Minimal models for the explanation of decision-making in computational neuroscience are based on the...
We present a time-dependent level-crossing theory for linear dynamical systems perturbed by colored ...
How the brain makes sense of a complicated environment is an important question, and a first step is...
The brain is a very complex system in the strong sense. It features a huge amount of individual cell...
The calculation of the steady-state probability density for multidimensional stochastic systems that...
A single neuron’s connectivity is the key to understanding the network of neurons in the brain. Howe...
We discuss the statistics of spikes trains for different types of integrate-and-fire neurons and dif...
Computational neuroscience is concerned with answering two intertwined questions that are based on t...
We present a method for solving population density equations (PDEs)–-a mean-field technique describi...
High variability in the neuronal response to stimulations and the adaptation phenomenon cannot be ex...
High variability in the neuronal response to stimulations and the adaptation phenomenon cannot be ex...
In the first part of this tutorial, we introduce the mathematical tools to determine firing statisti...
We present a novel method for solving population density equations (PDEs) - a mean field technique d...