Abstract Turing patterns can be observed in reaction-diffusion systems where chemical species have different diffusion constants. In recent years, several studies investigated the effects of noise on Turing patterns and showed that the parameter regimes, for which stochastic Turing patterns are observed, can be larger than the parameter regimes predicted by deterministic models, which are written in terms of partial differential equations for species concen-trations. A common stochastic reaction-diffusion approach is written in terms of compartment-based (lattice-based) models, where the domain of interest is divided into artificial compartments and the number of molecules in each compartment is simulated. In this paper, the dependence of s...
Cellular gene expression is a complex process involving many steps, including the transcription of D...
Many biological patterns, from population densities to animal coat markings, can be thought of as he...
We compare spot patterns generated by Turing mechanisms with those generated by replication cascades...
Abstract Turing patterns can be observed in reaction-diffusion systems where chemical species have d...
Traditionally, the law of mass action has been used to deterministically model chemical reactions. T...
Many biological processes can be described in terms of chemical reactions and diffusion. In this the...
The Turing, or reaction-diffusion (RD), model is one of the best-known theoretical models used to ex...
Self-organizing patterns arise in a variety of ways in nature, the complex patterning observed on an...
Tato diplomová práce studuje Turingovy vzory v deterministických a stochastických reakčně-difúzních ...
Turing's theory of pattern formation has been used to describe the formation of self-organized perio...
In this paper we study a four-species reaction-diffusion system where Turing patterns are stabilized...
The reaction-diffusion model presented by Alan Turing has recently been supported by experimental da...
The aim of the present review is to provide a comprehensive explanation of Turing reaction-diffusion...
Turing instabilities of reaction-diffusion systems can only arise if the diffusivities of the chemic...
We study the effect of randomness and anisotropy on Turing patterns in reaction-diffusion systems. F...
Cellular gene expression is a complex process involving many steps, including the transcription of D...
Many biological patterns, from population densities to animal coat markings, can be thought of as he...
We compare spot patterns generated by Turing mechanisms with those generated by replication cascades...
Abstract Turing patterns can be observed in reaction-diffusion systems where chemical species have d...
Traditionally, the law of mass action has been used to deterministically model chemical reactions. T...
Many biological processes can be described in terms of chemical reactions and diffusion. In this the...
The Turing, or reaction-diffusion (RD), model is one of the best-known theoretical models used to ex...
Self-organizing patterns arise in a variety of ways in nature, the complex patterning observed on an...
Tato diplomová práce studuje Turingovy vzory v deterministických a stochastických reakčně-difúzních ...
Turing's theory of pattern formation has been used to describe the formation of self-organized perio...
In this paper we study a four-species reaction-diffusion system where Turing patterns are stabilized...
The reaction-diffusion model presented by Alan Turing has recently been supported by experimental da...
The aim of the present review is to provide a comprehensive explanation of Turing reaction-diffusion...
Turing instabilities of reaction-diffusion systems can only arise if the diffusivities of the chemic...
We study the effect of randomness and anisotropy on Turing patterns in reaction-diffusion systems. F...
Cellular gene expression is a complex process involving many steps, including the transcription of D...
Many biological patterns, from population densities to animal coat markings, can be thought of as he...
We compare spot patterns generated by Turing mechanisms with those generated by replication cascades...