We introduce propagation models (PMs), a formalism able to express several kinds of equations that describe the behavior of biochemical reaction networks. Furthermore, we introduce the propagation abstract data type (PADT), which separates concerns regarding different numerical algorithms for the transient analysis of biochemical reaction networks from concerns regarding their implementation, thus allowing for portable and efficient solutions. The state of a propagation abstract data type is given by a vector that assigns mass values to a set of nodes, and its (next) operator propagates mass values through this set of nodes. We propose an approximate implementation of the (next) operator, based on threshold abstraction, which propagates onl...
In this talk, we present stochastic modeling and computational methods for the time-evolution of rea...
In this chapter, we describe general methods used to create dynamic computational models of kinase s...
In this work we consider mass action chemical reaction networks, either closed or open, and focus on...
We introduce propagation models, a formalism designed to support general and efficient data structur...
Modelling of the dynamics of biochemical reaction networks typically proceeds by solving ordinary di...
A biochemical reaction network is the system in which biochemical species interact through various r...
Chemical Networking Protocols (CNPs) are communication protocols, whose design is based on chemical ...
The modelling of chemical and biochemical systems is highly dependent on the reaction network of the...
Stochasticity plays an essential role in the dynamics of biochemical systems. Stochastic behaviors o...
Living cells must communicate with the external environment, exchanging information in terms of mole...
This book highlights the theory and practical applications of the chemical master equation (CME) app...
Quantitative models of biochemical networks (signal transduction cascades, metabolic pathways, gene ...
Quantitative models of biochemical networks (signal transduction cascades, metabolic pathways, gene ...
All processes of life are controlled by networks of interacting biochemical components. The purpose ...
Biochemical reaction networks typically consist of a complicated structure with many interacting spe...
In this talk, we present stochastic modeling and computational methods for the time-evolution of rea...
In this chapter, we describe general methods used to create dynamic computational models of kinase s...
In this work we consider mass action chemical reaction networks, either closed or open, and focus on...
We introduce propagation models, a formalism designed to support general and efficient data structur...
Modelling of the dynamics of biochemical reaction networks typically proceeds by solving ordinary di...
A biochemical reaction network is the system in which biochemical species interact through various r...
Chemical Networking Protocols (CNPs) are communication protocols, whose design is based on chemical ...
The modelling of chemical and biochemical systems is highly dependent on the reaction network of the...
Stochasticity plays an essential role in the dynamics of biochemical systems. Stochastic behaviors o...
Living cells must communicate with the external environment, exchanging information in terms of mole...
This book highlights the theory and practical applications of the chemical master equation (CME) app...
Quantitative models of biochemical networks (signal transduction cascades, metabolic pathways, gene ...
Quantitative models of biochemical networks (signal transduction cascades, metabolic pathways, gene ...
All processes of life are controlled by networks of interacting biochemical components. The purpose ...
Biochemical reaction networks typically consist of a complicated structure with many interacting spe...
In this talk, we present stochastic modeling and computational methods for the time-evolution of rea...
In this chapter, we describe general methods used to create dynamic computational models of kinase s...
In this work we consider mass action chemical reaction networks, either closed or open, and focus on...