Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

If I have a set of functions

f = @(x1,x2) ([x1 + x2; x1^2 + x2^2])

and I have a second matrix with

b = [x1,x2]

How do I evaluate f([b])? The only way I know how is to say f(b(1),b(2)) but I can't figure out how to automate that because the amount of variables could be up to n. I'm also wondering if there is a better way than going individually and plugging those in.

share|improve this question
    
What is it that you wish to evaluate? –  Eitan T Mar 10 '13 at 20:38
    
I need to get out what the f matrix is with x1, x2. Sorry wasn't clear, I'll edit the post –  user2154669 Mar 10 '13 at 20:43

3 Answers 3

up vote 1 down vote accepted

convertToAcceptArray.m:

function f = convertToAcceptArray(old_f)
    function r = new_f(X)
        X = num2cell(X);
        r = old_f(X{:});
    end
    f = @new_f
end

usage.m:

f = @(x1,x2) ([x1 + x2; x1^2 + x2^2])
f2 = convertToAcceptArray(f);
f2([1 5])
share|improve this answer
    
Yep, I think this worked out well for my issue, thanks! –  user2154669 Mar 10 '13 at 22:20
    
You're welcome. –  Dmitry Galchinsky Mar 10 '13 at 22:45

You could rewrite your functions to take a vector as an input.

f = @(b)[b(1) + b(2); b(1)^2 + b(2)^2]

Then with, e.g., b=[2 3] the call f(b) gives [2+3; 2^2+3^2]=[5; 13].

share|improve this answer
    
Matrix subscripts inside brackets is not valid syntax in MATLAB. Also, how does redefining f like this help? –  Eitan T Mar 10 '13 at 21:58

Assuming that b is an N-by-2 matrix, you can invoke f for every pair of values in b as follows:

cell2mat(arrayfun(f, b(:, 1), b(:, 2), 'UniformOutput', 0)')'

The result would also be an N-by-2 matrix.

Alternatively, if you are allowed to modify f, you can redefine it to accept a vector as input so that you can obtain the entire result by simply calling f(b):

f = @(x)[sum(x, 2), sum(x .^ 2, 2)]
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.