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Intel ODE Solver Library - Intel ODE Solver Library - Messages
Intel ODE Solver Library

Functions list: rkm9st(5), mk52lfn(5), mk52lfa(5), rkm9mkn(5), rkm9mka(5).
rkm9st(init, x1, x2, intvls, D) A specialized routine for solving non-stiff and middle-stiff ODE systems using the explicit method, which is based on the 4th order Merson’s method and the 1st order multistage method of up to and including 9 stages with stability control.
mk52lfn(init, x1, x2, intvls, D) A specialized routine for solving stiff ODE systems using the implicit method based on L-stable (5,2)-method with the numerical Jacobi matrix, which is computed by the routine.
mk52lfa(init, x1, x2, intvls, D) A specialized routine for solving stiff ODE systems using the implicit method based on L-stable (5,2)-method with numerical or analytical computation of the Jacobi matrix. The user must provide a routine for this computation.
rkm9mkn(init, x1, x2, intvls, D) A specialized routine for solving ODE systems with a variable or a priori unknown stiffness; automatically chooses the explicit or implicit scheme in every step and computes the numerical Jacobi matrix when necessary.
rkm9mka(init, x1, x2, intvls, D) A specialized routine for solving ODE systems with a variable or a priori unknown stiffness; automatically chooses the explicit or implicit scheme in every step. The user must provide a routine for numerical or analytical computation of the Jacobi matrix.
Arguments:
- init is either a vector of n real initial values, where n is the number of unknowns (or a single scalar initial value, in the case of a single ODE).
- x1 and x2 are real, scalar endpoints of the interval over which the solution to the ODE(s) is evaluated. Initial values in init are the values of the ODE function(s) evaluated at x1.
- intvls is the integer number of discretization intervals used to interpolate the solution function. The number of solution points is the number of intervals + 1.
- D is a vector function of the form D(x,y) specifying the right-hand side of the system

iode.examples.sm (204.21 KiB) downloaded 1452 time(s).
iode.kinetic1.sm (7.75 KiB) downloaded 1334 time(s).
iode.kinetic2.sm (14.4 KiB) downloaded 1257 time(s).
iode.kinetic3.sm (14.08 KiB) downloaded 6198 time(s).
iode.integrate.sm (10.57 KiB) downloaded 6192 time(s).
iode.test1.sm (22.49 KiB) downloaded 1283 time(s).
iode.test2.sm (22.5 KiB) downloaded 1371 time(s).
iode.Amplitude detector.sm (20.18 KiB) downloaded 1333 time(s).
Box_models.sm (100.18 KiB) downloaded 6112 time(s).
iode.examples.pdf (416.34 KiB) downloaded 724 time(s).
iode.kinetic1.pdf (74.06 KiB) downloaded 604 time(s).
iode.kinetic2.pdf (90.4 KiB) downloaded 605 time(s).
iode.kinetic3.pdf (88.45 KiB) downloaded 569 time(s).
iode.integrate.pdf (88.91 KiB) downloaded 719 time(s).
iode.test1.pdf (116.24 KiB) downloaded 597 time(s).
iode.test2.pdf (121.64 KiB) downloaded 599 time(s).
iode.Amplitude detector.pdf (147.71 KiB) downloaded 615 time(s).
Box_models.pdf (145.32 KiB) downloaded 629 time(s).
Documents:
Intel ODE Solver Library Reference Manual (2018).pdf (239.74 KiB) downloaded 702 time(s).
See also:
● [topic=726]Mathcad Toolbox[/topic]
● [topic=1918]DotNumerics[/topic]
● [topic=13809]SADEL[/topic]
● [topic=1970]Matlab C++ Math Library[/topic]
● [topic=17063]OSLO[/topic]
● [topic=17067]lsoda[/topic]
● [topic=1997]GNU Scientific Library (GSL)[/topic]

Functions list: rkm9st(5), mk52lfn(5), mk52lfa(5), rkm9mkn(5), rkm9mka(5).
rkm9st(init, x1, x2, intvls, D) A specialized routine for solving non-stiff and middle-stiff ODE systems using the explicit method, which is based on the 4th order Merson’s method and the 1st order multistage method of up to and including 9 stages with stability control.
mk52lfn(init, x1, x2, intvls, D) A specialized routine for solving stiff ODE systems using the implicit method based on L-stable (5,2)-method with the numerical Jacobi matrix, which is computed by the routine.
mk52lfa(init, x1, x2, intvls, D) A specialized routine for solving stiff ODE systems using the implicit method based on L-stable (5,2)-method with numerical or analytical computation of the Jacobi matrix. The user must provide a routine for this computation.
rkm9mkn(init, x1, x2, intvls, D) A specialized routine for solving ODE systems with a variable or a priori unknown stiffness; automatically chooses the explicit or implicit scheme in every step and computes the numerical Jacobi matrix when necessary.
rkm9mka(init, x1, x2, intvls, D) A specialized routine for solving ODE systems with a variable or a priori unknown stiffness; automatically chooses the explicit or implicit scheme in every step. The user must provide a routine for numerical or analytical computation of the Jacobi matrix.
Arguments:
- init is either a vector of n real initial values, where n is the number of unknowns (or a single scalar initial value, in the case of a single ODE).
- x1 and x2 are real, scalar endpoints of the interval over which the solution to the ODE(s) is evaluated. Initial values in init are the values of the ODE function(s) evaluated at x1.
- intvls is the integer number of discretization intervals used to interpolate the solution function. The number of solution points is the number of intervals + 1.
- D is a vector function of the form D(x,y) specifying the right-hand side of the system

iode.examples.sm (204.21 KiB) downloaded 1452 time(s).
iode.kinetic1.sm (7.75 KiB) downloaded 1334 time(s).
iode.kinetic2.sm (14.4 KiB) downloaded 1257 time(s).
iode.kinetic3.sm (14.08 KiB) downloaded 6198 time(s).
iode.integrate.sm (10.57 KiB) downloaded 6192 time(s).
iode.test1.sm (22.49 KiB) downloaded 1283 time(s).
iode.test2.sm (22.5 KiB) downloaded 1371 time(s).
iode.Amplitude detector.sm (20.18 KiB) downloaded 1333 time(s).
Box_models.sm (100.18 KiB) downloaded 6112 time(s).
iode.examples.pdf (416.34 KiB) downloaded 724 time(s).
iode.kinetic1.pdf (74.06 KiB) downloaded 604 time(s).
iode.kinetic2.pdf (90.4 KiB) downloaded 605 time(s).
iode.kinetic3.pdf (88.45 KiB) downloaded 569 time(s).
iode.integrate.pdf (88.91 KiB) downloaded 719 time(s).
iode.test1.pdf (116.24 KiB) downloaded 597 time(s).
iode.test2.pdf (121.64 KiB) downloaded 599 time(s).
iode.Amplitude detector.pdf (147.71 KiB) downloaded 615 time(s).
Box_models.pdf (145.32 KiB) downloaded 629 time(s).
Documents:
Intel ODE Solver Library Reference Manual (2018).pdf (239.74 KiB) downloaded 702 time(s).
See also:
● [topic=726]Mathcad Toolbox[/topic]
● [topic=1918]DotNumerics[/topic]
● [topic=13809]SADEL[/topic]
● [topic=1970]Matlab C++ Math Library[/topic]
● [topic=17063]OSLO[/topic]
● [topic=17067]lsoda[/topic]
● [topic=1997]GNU Scientific Library (GSL)[/topic]
Russia ☭ forever, Viacheslav N. Mezentsev
3 users liked this post
NDTM Amarasekera 2019/2/1 01:43:00, Davide Carpi 2019/2/1 10:56:00, Radovan Omorjan 2019/2/1 15:35:00
Hmm...even dn_GearsBDF() will go nuts for this example.
Just for the record...

iode.Amplitude detector-1.sm (19.9 KiB) downloaded 3474 time(s).
EDIT: mk52lfa() and mk52lfn() will also perform well here
Just for the record...

iode.Amplitude detector-1.sm (19.9 KiB) downloaded 3474 time(s).
EDIT: mk52lfa() and mk52lfn() will also perform well here
When Sisyphus climbed to the top of a hill, they said: "Wrong boulder!"
WroteHmm...even dn_GearsBDF() will go nuts for this example.
From recollection,NONE ODE solve that one.
Cheers ... Jean.
ODE rkfixed Pulse Pitfall.sm (37.2 KiB) downloaded 1129 time(s).
I should have guessed that
. Thank you.
When Sisyphus climbed to the top of a hill, they said: "Wrong boulder!"
2 users liked this post

Plugin updated.
Changes:
- solution restructured;
- converting the task for the ODE solver to the numerical form is now performed through the Mathcad Toolbox plugin (to avoid code duplication), so it must be installed;
- refactored.
Solvers that support mathematical notation now reuse code from the Mathcad Toolbox plugin. Now there is no need to recompile every such plugin.
Russia ☭ forever, Viacheslav N. Mezentsev
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