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What is the correct way to write code that calls a function that accepts a variable pointer and changes the value?

The following works, but my IDE complains that $v is an undefined variable, which it is until the function it calls sets a value:

function foo(&$bar) {
  $bar = 12345;
}

foo($v);

Should I initialize $v first to satisfy my IDE? Or is there a better way to do this?

$v = NULL;
foo($v);
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Just curious, do you have a good reason to use a variable reference over a return value? –  zzzzBov Mar 16 '12 at 14:51
2  
No, you can't get around it. You're using an undefined variable in a function call. The warning is unavoidable. –  Marc B Mar 16 '12 at 14:52
    
@zzzzBov our vendor libraries use this pattern (personally I dislike it). –  aw crud Mar 16 '12 at 14:54
2  
"Satisfy your IDE"? Is that how you think about programming, or life? Work until everyone stops complaining? You have to write correct code that makes sense. If your function wants to modify an external variable, then that variable has to exist, so you have to create it first before calling the function. –  Kerrek SB Mar 16 '12 at 14:58
    
Why would initialising the variable be a bad idea? It's generally best practice to do so. –  Matt Gibson Mar 16 '12 at 15:01

1 Answer 1

When passing a variable by reference to a function, you need to have a reference to the variable from the calling code. To have a reference, the variable needs to exist. To exist, the variable needs to be initialized.

I recommend setting it to a reasonable default value. If the reasonable default is null, then use null. In some cases it may be more reasonable to use '' or 0 depending on what type of value you want the variable to hold.

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