TY - JOUR
T1 - A second-order, unconditionally positive, mass-conserving integration scheme for biochemical systems.
AU - Bruggeman, J.
AU - Burchard, H.
AU - Kooi, B.W.
AU - Sommeijer, B.
PY - 2007
Y1 - 2007
N2 - Biochemical systems are bound by two mathematically-relevant restrictions. First, state variables in such systems represent non-negative quantities, such as concentrations of chemical compounds. Second, biochemical systems conserve mass and energy. Both properties must be reflected in results of an integration scheme applied to biochemical models. This paper first presents a mathematical framework for biochemical problems, which includes an exact definition of biochemical conservation: elements and energy, rather than state variable units, are conserved. We then analyze various fixed-step integration schemes, including traditional Euler-based schemes and the recently published modified Patankar schemes, and conclude that none of these deliver unconditional positivity and biochemical conservation in combination with higher-order accuracy. Finally, we present two new fixed-step integration schemes, one first-order and one second-order accurate, which do guarantee positivity and (biochemical) conservation. © 2005 IMACS.
AB - Biochemical systems are bound by two mathematically-relevant restrictions. First, state variables in such systems represent non-negative quantities, such as concentrations of chemical compounds. Second, biochemical systems conserve mass and energy. Both properties must be reflected in results of an integration scheme applied to biochemical models. This paper first presents a mathematical framework for biochemical problems, which includes an exact definition of biochemical conservation: elements and energy, rather than state variable units, are conserved. We then analyze various fixed-step integration schemes, including traditional Euler-based schemes and the recently published modified Patankar schemes, and conclude that none of these deliver unconditional positivity and biochemical conservation in combination with higher-order accuracy. Finally, we present two new fixed-step integration schemes, one first-order and one second-order accurate, which do guarantee positivity and (biochemical) conservation. © 2005 IMACS.
U2 - 10.1016/j.apnum.2005.12.001
DO - 10.1016/j.apnum.2005.12.001
M3 - Article
SN - 0168-9274
VL - 57
SP - 36
EP - 58
JO - Applied Numerical Mathematics
JF - Applied Numerical Mathematics
ER -