In this paper we study a new way to model noisy input flows in the chemostat model, based on the Ornstein-Uhlenbeck process. We introduce a parameter β as drift in the Langevin equation, that allows to bridge a gap between a pure Wiener process, which is a common way to model random disturbances, and no noise at all. The value of the parameter β is related to the amplitude of the deviations observed on the realizations. We show that this modeling approach is well suited to represent noise on an input variable that has to take non-negative values for almost any time.European Commission (EC). Fondo Europeo de Desarrollo Regional (FEDER)Ministerio de Economía y Competitividad (MINECO). EspañaJunta de Andalucí
We present a stochastic simple chemostat model in which the dilution rate was influenced by white no...
We introduce two stochastic chemostat models consisting in a coupled population-nutrient process ref...
This paper formulates two 3D models using stochastic differential equations (SDEs) of two microbial ...
International audienceIn this paper we study a new way to model noisy input flows in the chemostat m...
In this paper, we analyze a chemostat model with wall growth where the input flow is perturbed by tw...
In this paper we study two stochastic chemostat models, with and without wall growth, driven by a wh...
We revisit the chemostat model with Haldane growth function, here subject to bounded random disturba...
In this paper we study a simple chemostat model influenced by white noise which makes this kind of ...
In this work, the simplest chemostat model, perturbing the input flow by means of the Ornstein-Uhlen...
Chemostat refers to a laboratory device used for growing microorganisms in a cultured environment, a...
In this talk, some different ways of modeling stochastic chemostats will be presented in order to ob...
The stochastic dynamics of a two-state bioreactor model with random feed flow fluctuations and non-m...
Population dynamics and in particular microbial population dynamics, though they are complex but als...
In this paper, we analyze the use of the Ornstein-Uhlenbeck process to model dynamical systems subje...
AbstractWe first introduce and analyze a variant of the deterministic single-substrate chemostat mod...
We present a stochastic simple chemostat model in which the dilution rate was influenced by white no...
We introduce two stochastic chemostat models consisting in a coupled population-nutrient process ref...
This paper formulates two 3D models using stochastic differential equations (SDEs) of two microbial ...
International audienceIn this paper we study a new way to model noisy input flows in the chemostat m...
In this paper, we analyze a chemostat model with wall growth where the input flow is perturbed by tw...
In this paper we study two stochastic chemostat models, with and without wall growth, driven by a wh...
We revisit the chemostat model with Haldane growth function, here subject to bounded random disturba...
In this paper we study a simple chemostat model influenced by white noise which makes this kind of ...
In this work, the simplest chemostat model, perturbing the input flow by means of the Ornstein-Uhlen...
Chemostat refers to a laboratory device used for growing microorganisms in a cultured environment, a...
In this talk, some different ways of modeling stochastic chemostats will be presented in order to ob...
The stochastic dynamics of a two-state bioreactor model with random feed flow fluctuations and non-m...
Population dynamics and in particular microbial population dynamics, though they are complex but als...
In this paper, we analyze the use of the Ornstein-Uhlenbeck process to model dynamical systems subje...
AbstractWe first introduce and analyze a variant of the deterministic single-substrate chemostat mod...
We present a stochastic simple chemostat model in which the dilution rate was influenced by white no...
We introduce two stochastic chemostat models consisting in a coupled population-nutrient process ref...
This paper formulates two 3D models using stochastic differential equations (SDEs) of two microbial ...