How can I use integral to solve a equation with two function handle?

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Louis Liu
Louis Liu on 18 Nov 2017
Commented: Walter Roberson on 19 Nov 2017
Hello, I want to solve the equation below solution = fzero(@(Cpk_hat) fun2,0.01) but I get the feedback :
'Undefined operator '==' for input arguments of type 'function_handle'.'
Error in fzero (line 314)
if fx == 0
Does anyone can tell me how to solve the problem?
thanks!
===========================================below is my code ======================================
n = 150;
w = 1.33;
p = 0.95;
s = 0.00969;
delta = 0.103;
alpha = ( n-1 )/2; beta = ( ((n-1)*s^2)./2 )^-1;
b1_of_y = @(y) 3*sqrt(n)*( Cpk_hat*sqrt( 2./((n-1)*y)) - w );
b2_of_y = @(y) 3*sqrt(n)*( (Cpk_hat + 2*delta./3)*sqrt( 2./((n-1)*y)) - w );
fun = @(y,Cpk_hat) ( (1./( gamma(alpha).*(y.^(alpha+1)) ) ).*exp(-1./y).*( normcdf(b1_of_y,0,1))+normcdf(b2_of_y,0,1) - 1);
fun2 = @(Cpk_hat) integral(@(y) fun,0,inf) - p ;
solution = fzero(@(Cpk_hat) fun2,0.01) ;

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Accepted Answer

Walter Roberson
Walter Roberson on 18 Nov 2017
solution = fzero(fun2, 0.01) ;
or
solution = fzero(@(Cpk_hat) fun2(Cpk_hat), 0.01) ;
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Walter Roberson
Walter Roberson on 19 Nov 2017
Let me put it this way: with that formula, you are attempting to do the equivalent of
solution = fzero(@(Cpk_hat) -infinity, 0.01) ;
The value of Cpk_hat does not matter: whatever numeric value you give to Cpk_hat, the result of the integral is going to be -infinity . It will never equal 0.
Walter Roberson
Walter Roberson on 19 Nov 2017
fzero can only solve functions that cross zero. Your function does not cross zero.

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