We study the multiscale structure of the Jain–Krishna adaptive network model. This model describes the co-evolution of a set of continuous-time autocatalytic ordinary differential equations and its underlying discrete-time graph structure. The graph dynamics is governed by deletion of vertices with asymptotically weak concentrations of prevalence and then re-insertion of vertices with new random connections. In this work, we prove several results about convergence of the continuous-time dynamics to equilibrium points. Furthermore, we motivate via formal asymptotic calculations several conjectures regarding the discrete-time graph updates. In summary, our results clearly show that there are several time scales in the problem depending upon s...
Complex systems of coupled dynamical units can often be understood as adaptive networks. In such net...
Autocatalytic cycles are rather common in biological systems and they might have played a major role...
<div><p>Reaction networks are systems in which the populations of a finite number of species evolve ...
We study the multiscale structure of the Jain–Krishna adaptive network model. This model describes t...
We study the multiscale structure of the Jain–Krishna adaptive network model. This model describes t...
We consider the population dynamics of a set of species whose network of catalytic interactions is d...
We consider the population dynamics of a set of species whose network of catalytic interactions is d...
A model of s interacting species is considered with two types of dynamical variables. The fast varia...
A model of s interacting species is considered with two types of dynamical variables. The fast varia...
In this paper we investigate the evolution of populations of sequences on a random catalytic network...
A model of s interacting species is considered with two types of dynamical variables. The fast varia...
Autocatalytic cycles are rather widespread in nature and in several theoretical models of catalytic ...
Complex systems of coupled dynamical units can often be understood as adaptive networks. In such net...
Autocatalytic cycles are rather widespread in nature and in several theoretical models of catalytic ...
In this paper the authors investigate the evolution of populations of sequences on a random catalyti...
Complex systems of coupled dynamical units can often be understood as adaptive networks. In such net...
Autocatalytic cycles are rather common in biological systems and they might have played a major role...
<div><p>Reaction networks are systems in which the populations of a finite number of species evolve ...
We study the multiscale structure of the Jain–Krishna adaptive network model. This model describes t...
We study the multiscale structure of the Jain–Krishna adaptive network model. This model describes t...
We consider the population dynamics of a set of species whose network of catalytic interactions is d...
We consider the population dynamics of a set of species whose network of catalytic interactions is d...
A model of s interacting species is considered with two types of dynamical variables. The fast varia...
A model of s interacting species is considered with two types of dynamical variables. The fast varia...
In this paper we investigate the evolution of populations of sequences on a random catalytic network...
A model of s interacting species is considered with two types of dynamical variables. The fast varia...
Autocatalytic cycles are rather widespread in nature and in several theoretical models of catalytic ...
Complex systems of coupled dynamical units can often be understood as adaptive networks. In such net...
Autocatalytic cycles are rather widespread in nature and in several theoretical models of catalytic ...
In this paper the authors investigate the evolution of populations of sequences on a random catalyti...
Complex systems of coupled dynamical units can often be understood as adaptive networks. In such net...
Autocatalytic cycles are rather common in biological systems and they might have played a major role...
<div><p>Reaction networks are systems in which the populations of a finite number of species evolve ...