AbstractMono-implicit Runge-Kutta methods can be used to generate implicit Runge-Kutta-Nyström (IRKN) methods for the numerical solution of systems of second-order differential equations. The paper is concerned with the investigation of the conditions to be fulfilled by the mono-implicit Runge-Kutta (MIRK) method in order to generate a mono-implicit Runge-Kutta-Nyström method (MIRKN) that is P-stable. One of the main theoretical results is the property that MIRK methods (in standard form) cannot generate MIRKN methods (in standard form) of order greater than 4. Many examples of MIRKN methods generated by MIRK methods are presented
Many practical problems in science and engineering are modeled by large systems of ordinary differen...
Many practical problems in science and engineering are modeled by large systems of ordinary differen...
Many practical problems in science and engineering are modeled by large systems of ordinary differen...
Mono-implicit Runge-Kutta methods can be used to generate implicit Runge-Kutta-Nystrom (IRKN) method...
Mono-implicit Runge-Kutta methods can be used to generate implicit Runge-Kutta-Nystrom (IRKN) method...
AbstractWe present two two-parameter families of fourth-order mono-implicit Runge-Kutta-Nyström meth...
We present two two-parameter families of fourth-order mono-implicit Runge-Kutta-Nystrom methods. Eac...
We present two two-parameter families of fourth-order mono-implicit Runge-Kutta-Nystrom methods. Eac...
AbstractRecently, Chawla et al. [1] have obtained a one-parameter family of double-stride L-stable m...
Recently, Chawla et al. [1] have obtained a one-parameter family of double-stride L-stable methods o...
Recently, Chawla et al. [1] have obtained a one-parameter family of double-stride L-stable methods o...
Implicit Runge-Kutta methods which are well-suited for parallel computations are characterized. It i...
AbstractAmong the numerical techniques commonly considered for the efficient solution of stiff initi...
AbstractIt is shown that it is possible to obtain fourth-order accurate diagonally implicit Runge-Ku...
Many practical problems in science and engineering are modeled by large systems of ordinary differen...
Many practical problems in science and engineering are modeled by large systems of ordinary differen...
Many practical problems in science and engineering are modeled by large systems of ordinary differen...
Many practical problems in science and engineering are modeled by large systems of ordinary differen...
Mono-implicit Runge-Kutta methods can be used to generate implicit Runge-Kutta-Nystrom (IRKN) method...
Mono-implicit Runge-Kutta methods can be used to generate implicit Runge-Kutta-Nystrom (IRKN) method...
AbstractWe present two two-parameter families of fourth-order mono-implicit Runge-Kutta-Nyström meth...
We present two two-parameter families of fourth-order mono-implicit Runge-Kutta-Nystrom methods. Eac...
We present two two-parameter families of fourth-order mono-implicit Runge-Kutta-Nystrom methods. Eac...
AbstractRecently, Chawla et al. [1] have obtained a one-parameter family of double-stride L-stable m...
Recently, Chawla et al. [1] have obtained a one-parameter family of double-stride L-stable methods o...
Recently, Chawla et al. [1] have obtained a one-parameter family of double-stride L-stable methods o...
Implicit Runge-Kutta methods which are well-suited for parallel computations are characterized. It i...
AbstractAmong the numerical techniques commonly considered for the efficient solution of stiff initi...
AbstractIt is shown that it is possible to obtain fourth-order accurate diagonally implicit Runge-Ku...
Many practical problems in science and engineering are modeled by large systems of ordinary differen...
Many practical problems in science and engineering are modeled by large systems of ordinary differen...
Many practical problems in science and engineering are modeled by large systems of ordinary differen...
Many practical problems in science and engineering are modeled by large systems of ordinary differen...