Reaction–diffusion systems are an intensively studied form of partial differential equation, frequently used to produce spatially heterogeneous patterned states from homogeneous symmetry breaking via the Turing instability. Although there are many prototypical “Turing systems” available, determining their parameters, functional forms, and general appropriateness for a given application is often difficult. Here, we consider the reverse problem. Namely, suppose we know the parameter region associated with the reaction kinetics in which patterning is required—we present a constructive framework for identifying systems that will exhibit the Turing instability within this region, whilst in addition often allowing selection of desired patterning ...
Reaction-diffusion systems which have reaction term satisfying f(-q) = -f(q) tend strongly to form s...
It is hard to bridge the gap between mathematical formulations and biological implementations of Tur...
It is hard to bridge the gap between mathematical formulations and biological implementations of Tur...
Reaction–diffusion systems are an intensively studied form of partial differential equation, frequen...
Reaction–diffusion systems are an intensively studied form of partial differential equation, frequen...
Reaction–diffusion systems are an intensively studied form of partial differential equation, frequen...
Reaction–diffusion systems are an intensively studied form of partial differential equation, frequen...
The Turing reaction–diffusion model [Phil. Trans. R. Soc. 237 (1952) 37–72] for self-organised spati...
Reaction–diffusion processes across layered media arise in several scientific domains such as patter...
Reaction–diffusion processes across layered media arise in several scientific domains such as patter...
Reaction–diffusion processes across layered media arise in several scientific domains such as patter...
It is hard to bridge the gap between mathematical formulations and biological implementations of Tur...
It is hard to bridge the gap between mathematical formulations and biological implementations of Tur...
Reaction-diffusion systems which have reaction term satisfying f(-q) = -f(q) tend strongly to form s...
Reaction-diffusion systems which have reaction term satisfying f(-q) = -f(q) tend strongly to form s...
Reaction-diffusion systems which have reaction term satisfying f(-q) = -f(q) tend strongly to form s...
It is hard to bridge the gap between mathematical formulations and biological implementations of Tur...
It is hard to bridge the gap between mathematical formulations and biological implementations of Tur...
Reaction–diffusion systems are an intensively studied form of partial differential equation, frequen...
Reaction–diffusion systems are an intensively studied form of partial differential equation, frequen...
Reaction–diffusion systems are an intensively studied form of partial differential equation, frequen...
Reaction–diffusion systems are an intensively studied form of partial differential equation, frequen...
The Turing reaction–diffusion model [Phil. Trans. R. Soc. 237 (1952) 37–72] for self-organised spati...
Reaction–diffusion processes across layered media arise in several scientific domains such as patter...
Reaction–diffusion processes across layered media arise in several scientific domains such as patter...
Reaction–diffusion processes across layered media arise in several scientific domains such as patter...
It is hard to bridge the gap between mathematical formulations and biological implementations of Tur...
It is hard to bridge the gap between mathematical formulations and biological implementations of Tur...
Reaction-diffusion systems which have reaction term satisfying f(-q) = -f(q) tend strongly to form s...
Reaction-diffusion systems which have reaction term satisfying f(-q) = -f(q) tend strongly to form s...
Reaction-diffusion systems which have reaction term satisfying f(-q) = -f(q) tend strongly to form s...
It is hard to bridge the gap between mathematical formulations and biological implementations of Tur...
It is hard to bridge the gap between mathematical formulations and biological implementations of Tur...