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I must be missing something really simple because this doesnt seem like it should be this hard.

This code is correct:

clear all
whatever = @(x) deal(max(x), size(x));
input = randn(1,1000);
[a b] = whatever(input) 

However, what I really want to do is something like this:

clear all
whatever = @(x) deal(q = 3; q*max(x), size(x));
input = randn(1,1000);
[a b] = whatever(input)    

Why does this break? I cant define q inside the function?? The whole reason I want to use anonymous functions is so that I can actually do multiple lines of code within them, and then return an answer. I suppose the last statement of an anonymous function is what is returned, but how do I define variables within them? I dont want to define q before the definition of the anonymous function.

Thanks.

share|improve this question
    
You cannot. What prevents you from doing @(x)deal(3 * max(x), size(x))? –  Eitan T Sep 1 '12 at 16:28
    
@EitanT I could do that. The reason I am asking is because I want q to be some_very_complicated_function, so it was going to be a place holder so that the code is readable in the end. I was under the impression I could code anonymous functions the same way I would actual functions. Its for readability of human. –  Learnaholic Sep 1 '12 at 16:32

4 Answers 4

up vote 4 down vote accepted

You cannot declare variables inside an anonymous function, because it must be constructed from an expression, i.e.: handle = @(arglist)expr

If you want readability, define q outside the function, like this:

q = 3;
whatever = @(x) deal(q * max(x), size(x));
share|improve this answer
    
Meh, I suppose so. :-/ –  Learnaholic Sep 1 '12 at 16:48

You don't. Anonymous functions have only a single statement. You use subfunctions for that (not a nested function, those are sick things with strange scoping rules).

function whatever = not_anonymous (x)
  % your code here
end

If you need to pass function handles, you can just use @not_anonymous.

share|improve this answer
    
Hurray for nested functions! :p –  Rody Oldenhuis Sep 2 '12 at 6:26

What do you think of following construct:

tmpfun = @(x,q) deal...
whatever = @(x) tmpfun(x,3)
share|improve this answer
    
That thought did occur to my mind, yes... –  Learnaholic Sep 1 '12 at 19:21

I'm pretty sure deal can't take in multiple commands. Multiple parameters, sure, but you're trying to pass in commands. Would this work?

whatever = @(x) q=3; deal(q*max(x), size(x));

Also, why wouldn't you just have this?

whatever = @(x) deal(3*max(x), size(x));

If you're going to define it within the function, you might as well just put the actual value there, if you can't get anything else to work.

share|improve this answer
    
"Would this work?" -- are you asking or answering? BTW, the answer is: it won't work. –  Eitan T Sep 1 '12 at 16:30
    
Camdroid, please seem my comment to @EitanT above. Its for future readability for human. –  Learnaholic Sep 1 '12 at 16:33

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