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I am trying to solve following functions

k=2;
G(1)=292000.0;
G(2)=262000.0;
Ld(1)=0.00396;
Ld(2)=0.0344;
deps=10;
aa=3.7;
ms=0.0;

 for i=1:k
    ms=@(x) ms+(G(i)/Ld(i))*exp(-x./Ld(i))

 end

f=@(x) (exp(x.*2*deps)-exp(-x.*deps))/((aa-3)+(2*exp(x.*deps)+exp(-2*x.*deps)))
g=@(x) ms(x).*f(x)
g(1);

but I receive this error "Undefined function or method 'plus' for input arguments of type 'function_handle'."

hope somebody can help me out..Thanks

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2 Answers 2

As Jonas already pointed out, the problem is that you treat ms interchangeably as a numeric value and a function handle, which you can't do.

You actually don't need the for loop to generate the anonymous function ms. You can create it in one line using the function SUM like so:

ms = @(x) sum((G./Ld).*exp(-x./Ld));

This will give you a final result of g(1) = 0.0199;.

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Much better than my solution. +1 –  Jonas Mar 28 '11 at 11:43

The problematic lines are:

ms=0.0;

 for i=1:k
    ms=@(x) ms+(G(i)/Ld(i))*exp(-x./Ld(i))

 end

Inside the loop, you treat ms as both a function handle as well as a number, which won't work.

Although recursive definition of a function handle is most likely not the best way to go, it is - to my surprise - possible. Thus, you can write:

ms = @(x)0; %# initialize 'ms' to nothing
for i=1:k
    ms = @(x) ms(x) +(G(i)/Ld(i))*exp(-x./Ld(i));
end
share|improve this answer
    
thank you Jonas. It works perfectly!! –  annie Mar 26 '11 at 21:30
    
@annie: If you found my answer useful, please consider accepting it. –  Jonas Mar 27 '11 at 3:30
    
@gnovice: Thanks. –  Jonas Mar 28 '11 at 11:42

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