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I have a function in PHP that looks basically like this

$to_echo = prepare(2);
echo $to_echo;

function prepare($id){

    switch($id){
        case 1:
        $res = format1();
            break;
        case 2:
        $res = format2();
            break;
    }

    function format1(){
        return "asdf";
    }

    function format2(){
        return "1234";
    }

    return $res;

}

But I'm getting the error Fatal error: Call to undefined function format2() in line...

Can somehow the $res within the switch statement not see the function format1 and format2? How can I give it access to that function?

It works like this in javascript, but there's a lot to PHP I don't understand, so maybe this isn't the problem at all;

share|improve this question
    
@Jocelyn Line 19 – 1252748 Mar 19 '13 at 18:57
    
Related question: Calling a function before it's defined – Jocelyn Mar 19 '13 at 18:59
up vote 6 down vote accepted

Can you try like this :

$to_echo = prepare(2);
echo $to_echo;

function prepare($id){
switch($id){
    case 1:
    $res = format1();
    return $res;
    break;
    case 2:
    $res = format2();
    return $res;
    break;
}

}

function format1(){
    return "asdf";
}

function format2(){
    return "1234";
}
share|improve this answer
    
This works. But how can the inside of the switch statement have access to functions on the exterior of its parent, when not even to the children of its parent? ^^ Thanks! – 1252748 Mar 19 '13 at 18:56
1  
You can access all the functions which are written on a page or if you are including any file and you have any functions on it then you can access that as well inside of switch case. – Dead Man Mar 19 '13 at 18:57

The thing with your code is that the functions (when within a function) needs to be declared before used:

function prepare($id){
  function format1(){..}
  function format2(){..}
  //do prepare here
  switch($id){..}
}

However, if you declare the functions outside of the function, they can come before or after the function.

function format1(){..}
function prepare($id){..}
function format2(){..}
share|improve this answer
    
yes, if you move the two inner functions above the switch, it will work – Jeff Hawthorne Mar 19 '13 at 19:02

The nested functions format1() and format2() are not declared until a call to function prepare(...) has been made. However in the current sequence the declaration of these functions happens after the switch-statement. Therefore they are not present on time.

You should either try putting these function declarations at the top of the prepare(...) function or don't use nesting at all. I would recommend the latter.

share|improve this answer
    
Makes sense. Thanks! – 1252748 Mar 19 '13 at 19:22

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