Generated Code
The following is matlab code generated by the CellML API from this CellML file. (Back to language selection)
The raw code is available.
function [VOI, STATES, ALGEBRAIC, CONSTANTS] = mainFunction()
% This is the "main function". In Matlab, things work best if you rename this function to match the filename.
[VOI, STATES, ALGEBRAIC, CONSTANTS] = solveModel();
end
function [algebraicVariableCount] = getAlgebraicVariableCount()
% Used later when setting a global variable with the number of algebraic variables.
% Note: This is not the "main method".
algebraicVariableCount =7;
end
% There are a total of 2 entries in each of the rate and state variable arrays.
% There are a total of 10 entries in the constant variable array.
%
function [VOI, STATES, ALGEBRAIC, CONSTANTS] = solveModel()
% Create ALGEBRAIC of correct size
global algebraicVariableCount; algebraicVariableCount = getAlgebraicVariableCount();
% Initialise constants and state variables
[INIT_STATES, CONSTANTS] = initConsts;
% Set timespan to solve over
tspan = [0, 10];
% Set numerical accuracy options for ODE solver
options = odeset('RelTol', 1e-06, 'AbsTol', 1e-06, 'MaxStep', 1);
% Solve model with ODE solver
[VOI, STATES] = ode15s(@(VOI, STATES)computeRates(VOI, STATES, CONSTANTS), tspan, INIT_STATES, options);
% Compute algebraic variables
[RATES, ALGEBRAIC] = computeRates(VOI, STATES, CONSTANTS);
ALGEBRAIC = computeAlgebraic(ALGEBRAIC, CONSTANTS, STATES, VOI);
% Plot state variables against variable of integration
[LEGEND_STATES, LEGEND_ALGEBRAIC, LEGEND_VOI, LEGEND_CONSTANTS] = createLegends();
figure();
plot(VOI, STATES);
xlabel(LEGEND_VOI);
l = legend(LEGEND_STATES);
set(l,'Interpreter','none');
end
function [LEGEND_STATES, LEGEND_ALGEBRAIC, LEGEND_VOI, LEGEND_CONSTANTS] = createLegends()
LEGEND_STATES = ''; LEGEND_ALGEBRAIC = ''; LEGEND_VOI = ''; LEGEND_CONSTANTS = '';
LEGEND_VOI = strpad('time in component environment (second)');
LEGEND_STATES(:,1) = strpad('Ca_cyt in component Ca_cyt (micromolar)');
LEGEND_ALGEBRAIC(:,1) = strpad('J_ERch in component J_ERch (micromolar)');
LEGEND_ALGEBRAIC(:,2) = strpad('J_ERpump in component J_ERpump (micromolar)');
LEGEND_ALGEBRAIC(:,3) = strpad('J_ERleak in component J_ERleak (micromolar)');
LEGEND_ALGEBRAIC(:,5) = strpad('J_CaPr in component J_CaPr (micromolar)');
LEGEND_ALGEBRAIC(:,7) = strpad('J_Pr in component J_Pr (micromolar)');
LEGEND_STATES(:,2) = strpad('Ca_ER in component Ca_ER (micromolar)');
LEGEND_CONSTANTS(:,1) = strpad('beta_ER in component Ca_ER (dimensionless)');
LEGEND_CONSTANTS(:,2) = strpad('rho_ER in component Ca_ER (dimensionless)');
LEGEND_CONSTANTS(:,3) = strpad('k_ERch in component J_ERch (micromolar)');
LEGEND_CONSTANTS(:,4) = strpad('K_ch in component J_ERch (micromolar)');
LEGEND_CONSTANTS(:,5) = strpad('k_ERpump in component J_ERpump (per_second)');
LEGEND_CONSTANTS(:,6) = strpad('k_ERleak in component J_ERleak (per_second)');
LEGEND_CONSTANTS(:,7) = strpad('k_min in component J_CaPr (per_second)');
LEGEND_ALGEBRAIC(:,4) = strpad('CaPr in component CaPr (micromolar)');
LEGEND_CONSTANTS(:,8) = strpad('k_plus in component J_Pr (per_micromolar_per_second)');
LEGEND_ALGEBRAIC(:,6) = strpad('Pr in component Pr (micromolar)');
LEGEND_CONSTANTS(:,9) = strpad('Ca_tot in component CaPr (micromolar)');
LEGEND_CONSTANTS(:,10) = strpad('Pr_tot in component Pr (micromolar)');
LEGEND_RATES(:,1) = strpad('d/dt Ca_cyt in component Ca_cyt (micromolar)');
LEGEND_RATES(:,2) = strpad('d/dt Ca_ER in component Ca_ER (micromolar)');
LEGEND_STATES = LEGEND_STATES';
LEGEND_ALGEBRAIC = LEGEND_ALGEBRAIC';
LEGEND_RATES = LEGEND_RATES';
LEGEND_CONSTANTS = LEGEND_CONSTANTS';
end
function [STATES, CONSTANTS] = initConsts()
VOI = 0; CONSTANTS = []; STATES = []; ALGEBRAIC = [];
STATES(:,1) = 0.01;
STATES(:,2) = 20;
CONSTANTS(:,1) = 0.0025;
CONSTANTS(:,2) = 0.01;
CONSTANTS(:,3) = 0.001;
CONSTANTS(:,4) = 5;
CONSTANTS(:,5) = 20;
CONSTANTS(:,6) = 0.05;
CONSTANTS(:,7) = 0.01;
CONSTANTS(:,8) = 0.1;
CONSTANTS(:,9) = 90;
CONSTANTS(:,10) = 120;
if (isempty(STATES)), warning('Initial values for states not set');, end
end
function [RATES, ALGEBRAIC] = computeRates(VOI, STATES, CONSTANTS)
global algebraicVariableCount;
statesSize = size(STATES);
statesColumnCount = statesSize(2);
if ( statesColumnCount == 1)
STATES = STATES';
ALGEBRAIC = zeros(1, algebraicVariableCount);
utilOnes = 1;
else
statesRowCount = statesSize(1);
ALGEBRAIC = zeros(statesRowCount, algebraicVariableCount);
RATES = zeros(statesRowCount, statesColumnCount);
utilOnes = ones(statesRowCount, 1);
end
ALGEBRAIC(:,1) = CONSTANTS(:,3).*(power(STATES(:,1), 2.00000)./(power(CONSTANTS(:,4), 2.00000)+power(STATES(:,1), 2.00000))).*(STATES(:,2) - STATES(:,1));
ALGEBRAIC(:,2) = CONSTANTS(:,5).*STATES(:,1);
ALGEBRAIC(:,3) = CONSTANTS(:,6).*(STATES(:,2) - STATES(:,1));
RATES(:,2) = (CONSTANTS(:,1)./CONSTANTS(:,2)).*((ALGEBRAIC(:,2) - ALGEBRAIC(:,3)) - ALGEBRAIC(:,1)).*1.00000;
ALGEBRAIC(:,4) = CONSTANTS(:,9) - (STATES(:,1)+ (CONSTANTS(:,2)./CONSTANTS(:,1)).*STATES(:,2));
ALGEBRAIC(:,5) = CONSTANTS(:,7).*ALGEBRAIC(:,4);
ALGEBRAIC(:,6) = CONSTANTS(:,10) - ALGEBRAIC(:,4);
ALGEBRAIC(:,7) = CONSTANTS(:,8).*STATES(:,1).*ALGEBRAIC(:,6);
RATES(:,1) = (((ALGEBRAIC(:,1) - ALGEBRAIC(:,2))+ALGEBRAIC(:,3)+ALGEBRAIC(:,5)) - ALGEBRAIC(:,7)).*1.00000;
RATES = RATES';
end
% Calculate algebraic variables
function ALGEBRAIC = computeAlgebraic(ALGEBRAIC, CONSTANTS, STATES, VOI)
statesSize = size(STATES);
statesColumnCount = statesSize(2);
if ( statesColumnCount == 1)
STATES = STATES';
utilOnes = 1;
else
statesRowCount = statesSize(1);
utilOnes = ones(statesRowCount, 1);
end
ALGEBRAIC(:,1) = CONSTANTS(:,3).*(power(STATES(:,1), 2.00000)./(power(CONSTANTS(:,4), 2.00000)+power(STATES(:,1), 2.00000))).*(STATES(:,2) - STATES(:,1));
ALGEBRAIC(:,2) = CONSTANTS(:,5).*STATES(:,1);
ALGEBRAIC(:,3) = CONSTANTS(:,6).*(STATES(:,2) - STATES(:,1));
ALGEBRAIC(:,4) = CONSTANTS(:,9) - (STATES(:,1)+ (CONSTANTS(:,2)./CONSTANTS(:,1)).*STATES(:,2));
ALGEBRAIC(:,5) = CONSTANTS(:,7).*ALGEBRAIC(:,4);
ALGEBRAIC(:,6) = CONSTANTS(:,10) - ALGEBRAIC(:,4);
ALGEBRAIC(:,7) = CONSTANTS(:,8).*STATES(:,1).*ALGEBRAIC(:,6);
end
% Pad out or shorten strings to a set length
function strout = strpad(strin)
req_length = 160;
insize = size(strin,2);
if insize > req_length
strout = strin(1:req_length);
else
strout = [strin, blanks(req_length - insize)];
end
end
