Generated Code
The following is c_ida code generated by the CellML API from this CellML file. (Back to language selection)
The raw code is available.
/*
There are a total of 11 entries in the algebraic variable array.
There are a total of 7 entries in each of the rate and state variable arrays.
There are a total of 14 entries in the constant variable array.
*/
/*
* VOI is time in component environment (second).
* STATES[0] is q_GTP in component environment (fmol).
* STATES[1] is q_E5c in component environment (fmol).
* STATES[2] is q_cGMP in component environment (fmol).
* STATES[3] is q_PDE in component environment (fmol).
* STATES[4] is q_GTP_E5c in component environment (fmol).
* STATES[5] is q_cGMP_PDE in component environment (fmol).
* STATES[6] is q_GMP in component environment (fmol).
* ALGEBRAIC[7] is v_R_1a_cGMP in component cGMP (fmol_per_sec).
* ALGEBRAIC[8] is v_R_1b_cGMP in component cGMP (fmol_per_sec).
* ALGEBRAIC[9] is v_R_2a_cGMP in component cGMP (fmol_per_sec).
* ALGEBRAIC[10] is v_R_2b_cGMP in component cGMP (fmol_per_sec).
* CONSTANTS[0] is kappa_R_1a_cGMP in component cGMP_parameters (fmol_per_sec).
* CONSTANTS[1] is kappa_R_1b_cGMP in component cGMP_parameters (fmol_per_sec).
* CONSTANTS[2] is kappa_R_2a_cGMP in component cGMP_parameters (fmol_per_sec).
* CONSTANTS[3] is kappa_R_2b_cGMP in component cGMP_parameters (fmol_per_sec).
* CONSTANTS[4] is K_GTP in component cGMP_parameters (per_fmol).
* CONSTANTS[5] is K_E5c in component cGMP_parameters (per_fmol).
* CONSTANTS[6] is K_cGMP in component cGMP_parameters (per_fmol).
* CONSTANTS[7] is K_PDE in component cGMP_parameters (per_fmol).
* CONSTANTS[8] is K_GTP_E5c in component cGMP_parameters (per_fmol).
* CONSTANTS[9] is K_cGMP_PDE in component cGMP_parameters (per_fmol).
* CONSTANTS[10] is K_GMP in component cGMP_parameters (per_fmol).
* CONSTANTS[11] is R in component constants (J_per_K_per_mol).
* CONSTANTS[12] is T in component constants (kelvin).
* ALGEBRAIC[0] is mu_GTP in component cGMP (J_per_mol).
* ALGEBRAIC[1] is mu_E5c in component cGMP (J_per_mol).
* ALGEBRAIC[2] is mu_cGMP in component cGMP (J_per_mol).
* ALGEBRAIC[3] is mu_PDE in component cGMP (J_per_mol).
* ALGEBRAIC[4] is mu_GTP_E5c in component cGMP (J_per_mol).
* ALGEBRAIC[5] is mu_cGMP_PDE in component cGMP (J_per_mol).
* ALGEBRAIC[6] is mu_GMP in component cGMP (J_per_mol).
* CONSTANTS[13] is F in component constants (C_per_mol).
* RATES[0] is d/dt q_GTP in component environment (fmol).
* RATES[1] is d/dt q_E5c in component environment (fmol).
* RATES[2] is d/dt q_cGMP in component environment (fmol).
* RATES[3] is d/dt q_PDE in component environment (fmol).
* RATES[4] is d/dt q_GTP_E5c in component environment (fmol).
* RATES[5] is d/dt q_cGMP_PDE in component environment (fmol).
* RATES[6] is d/dt q_GMP in component environment (fmol).
* There are a total of 0 condition variables.
*/
void
initConsts(double* CONSTANTS, double* RATES, double *STATES)
{
STATES[0] = 1e-18;
STATES[1] = 1e-18;
STATES[2] = 1e-18;
STATES[3] = 1e-18;
STATES[4] = 1e-18;
STATES[5] = 1e-18;
STATES[6] = 1e-18;
CONSTANTS[0] = 1772.99;
CONSTANTS[1] = 0.0302117;
CONSTANTS[2] = 73652.7;
CONSTANTS[3] = 0.0143623;
CONSTANTS[4] = 1600.8;
CONSTANTS[5] = 0.0255983;
CONSTANTS[6] = 0.0939434;
CONSTANTS[7] = 10.5002;
CONSTANTS[8] = 152.027;
CONSTANTS[9] = 7.31926;
CONSTANTS[10] = 0.000481761;
CONSTANTS[11] = 8.31;
CONSTANTS[12] = 310;
CONSTANTS[13] = 96485;
RATES[0] = 0.1001;
RATES[1] = 0.1001;
RATES[2] = 0.1001;
RATES[3] = 0.1001;
RATES[4] = 0.1001;
RATES[5] = 0.1001;
RATES[6] = 0.1001;
}
void
computeResiduals(double VOI, double* CONSTANTS, double* RATES, double* OLDRATES, double* STATES,
double* OLDSTATES, double* ALGEBRAIC, double* CONDVARS)
{
resid[0] = RATES[0] - - ALGEBRAIC[7];
resid[1] = RATES[1] - - ALGEBRAIC[7]+ALGEBRAIC[8];
resid[2] = RATES[2] - (ALGEBRAIC[8] - ALGEBRAIC[9]) - ALGEBRAIC[10];
resid[3] = RATES[3] - - ALGEBRAIC[9]+ALGEBRAIC[10];
resid[4] = RATES[4] - ALGEBRAIC[7] - ALGEBRAIC[8];
resid[5] = RATES[5] - ALGEBRAIC[9] - ALGEBRAIC[10];
resid[6] = RATES[6] - ALGEBRAIC[10];
}
void
computeVariables(double VOI, double* CONSTANTS, double* RATES, double* STATES, double* ALGEBRAIC)
{
}
void
computeEssentialVariables(double VOI, double* CONSTANTS, double* RATES, double* STATES, double* ALGEBRAIC)
{
ALGEBRAIC[0] = CONSTANTS[11]*CONSTANTS[12]*log( CONSTANTS[4]*STATES[0]);
ALGEBRAIC[1] = CONSTANTS[11]*CONSTANTS[12]*log( CONSTANTS[5]*STATES[1]);
ALGEBRAIC[4] = CONSTANTS[11]*CONSTANTS[12]*log( CONSTANTS[8]*STATES[4]);
ALGEBRAIC[7] = CONSTANTS[0]*(exp((ALGEBRAIC[0]+ALGEBRAIC[1])/( CONSTANTS[11]*CONSTANTS[12])) - exp(ALGEBRAIC[4]/( CONSTANTS[11]*CONSTANTS[12])));
ALGEBRAIC[2] = CONSTANTS[11]*CONSTANTS[12]*log( CONSTANTS[6]*STATES[2]);
ALGEBRAIC[8] = CONSTANTS[1]*(exp(ALGEBRAIC[4]/( CONSTANTS[11]*CONSTANTS[12])) - exp((ALGEBRAIC[2]+ALGEBRAIC[1])/( CONSTANTS[11]*CONSTANTS[12])));
ALGEBRAIC[3] = CONSTANTS[11]*CONSTANTS[12]*log( CONSTANTS[7]*STATES[3]);
ALGEBRAIC[5] = CONSTANTS[11]*CONSTANTS[12]*log( CONSTANTS[9]*STATES[5]);
ALGEBRAIC[9] = CONSTANTS[2]*(exp((ALGEBRAIC[2]+ALGEBRAIC[3])/( CONSTANTS[11]*CONSTANTS[12])) - exp(ALGEBRAIC[5]/( CONSTANTS[11]*CONSTANTS[12])));
ALGEBRAIC[6] = CONSTANTS[11]*CONSTANTS[12]*log( CONSTANTS[10]*STATES[6]);
ALGEBRAIC[10] = CONSTANTS[3]*(exp((ALGEBRAIC[5]+ALGEBRAIC[2])/( CONSTANTS[11]*CONSTANTS[12])) - exp((ALGEBRAIC[6]+ALGEBRAIC[3])/( CONSTANTS[11]*CONSTANTS[12])));
}
void
getStateInformation(double* SI)
{
SI[0] = 1.0;
SI[1] = 1.0;
SI[2] = 1.0;
SI[3] = 1.0;
SI[4] = 1.0;
SI[5] = 1.0;
SI[6] = 1.0;
}
void
computeRoots(double VOI, double* CONSTANTS, double* RATES, double* OLDRATES, double* STATES,
double* OLDSTATES, double* ALGEBRAIC, double* CONDVARS)
{
}
