Hello, if you have a moment, I could use your help in resolving this error.

Question

Danikha Shyken 2023-10-19

0
链接

此问题的直接链接

https://ww2.mathworks.cn/matlabcentral/answers/2035859-hello-if-you-have-a-moment-i-could-use-your-help-in-resolving-this-error

评论： Guillaume 2023-10-23

采纳的回答： Guillaume

1 个评论
显示 -1更早的评论隐藏 -1更早的评论

Danikha Shyken 2023-10-19

编辑：dpb 2023-10-20

在 MATLAB Online 中打开

Below is the code:

function [q1, q2, q3, q4] = buckBoostControl(inputVoltage, ~, ~)
% Constants for duty cycle and delay values
dutyCycleBoost = [85.71, 81.82, 60.00];
delayBoost = [51.444, 65.448, 144.000];
dutyCycleBuck = 47.37;
delayBuck = 170.532;
% Check input voltage to determine the mode (Boost or Buck)
if inputVoltage == 0.3 || inputVoltage == 0.4 || inputVoltage == 1.2
    % Boost Mode
    dutyCycle = dutyCycleBoost(inputVoltage == [0.3, 0.4, 1.2]);
    delay = delayBoost(inputVoltage == [0.3, 0.4, 1.2]);
    
    q1 = 1;
    q2 = dutyCycle / 100;
    q3 = 0;
    q4 = 1 - q2;
elseif inputVoltage == 2
    % Buck Mode
    dutyCycle = dutyCycleBuck;
    delay = delayBuck;
    
    q1 = dutyCycle / 100;
    q2 = 0;
    q3 = 1 - q1;
    q4 = 1;
else
    error('Input voltage is out of the specified range.');
end
end

请先登录，再进行评论。

请先登录，再回答此问题。

Answer 1

Guillaume 2023-10-20

1
链接

此回答的直接链接

https://ww2.mathworks.cn/matlabcentral/answers/2035859-hello-if-you-have-a-moment-i-could-use-your-help-in-resolving-this-error#answer_1337646

编辑：Guillaume 2023-10-20

在 MATLAB Online 中打开

Hello,

You should help the interpreter to determine the size of your variables. You can define the size in the data properties or in the code with unambiguous assignments. Your code could work like that :

function [q1, q2, q3, q4] = buckBoostControl(inputVoltage, ~, ~)
% Constants for duty cycle and delay values
dutyCycleBoost = [85.71, 81.82, 60.00];
delayBoost = [51.444, 65.448, 144.000];
dutyCycleBuck = 47.37;
delayBuck = 170.532;
% Check input voltage to determine the mode (Boost or Buck)
ind = inputVoltage == [0.3, 0.4, 1.2]; % avoid to repeat 3 times this "inputVoltage == [0.3, 0.4, 1.2]"
if any(ind) % easier 
    % Boost Mode
    dutyCycle = dutyCycleBoost(ind);
    delay = delayBoost(ind);
    
    q1 = 1;
    q2 = dutyCycle(1) / 100; % add (1) to clearly define size 
    q3 = 0;
    q4 = 1 - q2;
elseif inputVoltage == 2
    % Buck Mode
    dutyCycle = dutyCycleBuck;
    delay = delayBuck;
    
    q1 = dutyCycle / 100;
    q2 = 0;
    q3 = 1 - q1;
    q4 = 1;
else
    error('Input voltage is out of the specified range.');
end
end

2 个评论
显示无隐藏无

Danikha Shyken 2023-10-21

I got it to work. Thank you so much for your help.

Guillaume 2023-10-23

You are welcome :-)

请先登录，再进行评论。

Answer 2

dpb 2023-10-20

1
链接

此回答的直接链接

https://ww2.mathworks.cn/matlabcentral/answers/2035859-hello-if-you-have-a-moment-i-could-use-your-help-in-resolving-this-error#answer_1337651

在 MATLAB Online 中打开

inputVoltage=0.3;
[q1, q2, q3, q4]=buckBoostControl(inputVoltage)
q1 = 1
q2 = 0.8571
q3 = 0
q4 = 0.1429
function [q1, q2, q3, q4] = buckBoostControl(inputVoltage, ~, ~)
% Constants for duty cycle and delay values
dutyCycleBoost = [85.71, 81.82, 60.00];
delayBoost = [51.444, 65.448, 144.000];
dutyCycleBuck = 47.37;
delayBuck = 170.532;
% Check input voltage to determine the mode (Boost or Buck)
if inputVoltage == 0.3 || inputVoltage == 0.4 || inputVoltage == 1.2
    % Boost Mode
    dutyCycle = dutyCycleBoost(inputVoltage == [0.3, 0.4, 1.2]);
    delay = delayBoost(inputVoltage == [0.3, 0.4, 1.2]);
    
    q1 = 1;
    q2 = dutyCycle / 100;
    q3 = 0;
    q4 = 1 - q2;
elseif inputVoltage == 2
    % Buck Mode
    dutyCycle = dutyCycleBuck;
    delay = delayBuck;
    
    q1 = dutyCycle / 100;
    q2 = 0;
    q3 = 1 - q1;
    q4 = 1;
else
    error('Input voltage is out of the specified range.');
end
end

The function is ok in MATLAB although

if inputVoltage == 0.3 || inputVoltage == 0.4 || inputVoltage == 1.2

is very problematical in doing exact comparisons with floating point values; internal rounding of even the last significant digit away from the value converted from the text representation to internal representation will be sufficient for the comparison to fail when running and the inputVoltage value is not input manually as in the above.

More robust would be

BOOST_V=[0.3, 0.4, 1.2];                    % put constants in variables so can change instead of in code
BUCK_V=2.0; 
if any(ismembertol(inputVoltage,BOOST_V));  % check if any match
  ...

See ismembertol for details and how to set the "nearness" to a match for comparison; the above default will be at about 1E-12 or roughly three digits of precision of a double precision floating point value. How close to the actual values the computation will return will depend upon just how the inputVoltage value is calculated.

As for the syntax error, it appears that Simulink (I presume?) looks at code with a jaundiced eye and if it can't determine the shape of anything internally, it throws up its hands.

Try the following rearrangement of the code which is also just a little more efficient as it doesn't do the lookup indexing twice...

BOOST_V=[0.3, 0.4, 1.2];                    % put constants in variables so can change instead of in code
BUCK_V=2.0; 
ix=ismembertol(inputVoltage,BOOST_V));      % Check input voltage to determine the mode (Boost or Buck)
if any(ix)                                  % found one matched...Boost Mode
    ix=find(ix);                            % convert logical array to index for addressing
    dutyCycle = dutyCycleBoost(ix);
    delay = delayBoost(ix);
    ...