2

I'm learning closures but I'm stuck with this:

function addPrefix($string) {
    return function($prefix) use ($string) {
        echo $prefix.$string;
    };
}
$randomstring = "a test";
$c = addPrefix($randomstring);
echo $c("This is ");

Why is $prefix concatenated? It's not even called as an argument, I just don't get it.

1
  • $prefix is concatenated to $string, because that is the intent of the outer function, addPrefix, and if it is not declared as an argument, must be because it is declared somewhere else in the same scope as the outer function.
    – saljuama
    Jan 1, 2016 at 17:59

1 Answer 1

5

Pay attention in your example there is 2 functions. addPrefix, and an anonymous function it addPrefix returns.

So, $c is this anonymous function (returned by addPrefix), which has the $prefix argument.

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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