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I have this code:

$img=imagecreatefrompng('http://partner-ad.photobucket.com/albums/g46/xanatha/WidgieWorld/Small-Yellow-Ball.png');

function foo($x,$y)
{
    $col=imagecolorat($img,$x,$y);
    $col=imagecolorsforindex($img,$col);
    var_dump($col);
}
foo(0,0);

echo '<br />';

$col=imagecolorat($img,0,0);
$col=imagecolorsforindex($img,$col);
var_dump($col);

At first glance, we would think that it will output the same result twice.

But the output is:

NULL
array(4) { ["red"]=> int(255) ["green"]=> int(255) ["blue"]=> int(255) ["alpha"]=> int(0) } 

How could it be?
What must I do to put the code in a function and to make it work?

share|improve this question
    
Dup of Why am I getting an "Undefined variable" notice in PHP?, PHP: Variable Scope Question/Referencing Variables, "Undefined Variable" notice. This shows one good reason to have error reporting set as high as possible (E_ALL | E_STRICT in <= 5.3, E_ALL in >= 5.4). –  outis Jul 8 '12 at 18:05

4 Answers 4

up vote 2 down vote accepted

did you try passing the $img as argument?

Or if you really insist not passing $img as argument. You could also put that at the top of your function.

global $img;

As someone said it this question. $img wasn't defined in the function scope. To access it, you either have to use global if its a global variable. Or you have to pass it as a parameter.

share|improve this answer
    
Now it works! But can you give explanations? –  Mageek Jul 8 '12 at 9:50
1  
but really, don't use global! –  Loïc Faure-Lacroix Jul 8 '12 at 9:53
    
In php, if we put $img; at the top it's not global !?!?!?!? –  Mageek Jul 8 '12 at 9:53
1  
If it's not in a class or in a function, i'm pretty sure it's global since php is just mashing up all php files in one big file. It should be usable by any file included after that declaration if my memory isn't playing some game with me –  Loïc Faure-Lacroix Jul 8 '12 at 9:55
    
@LoïcFaureLacroix I was used to javascript. –  Mageek Jul 8 '12 at 10:02

$img is not visible inside the function. You must use the keyword global inside the function to make it visible.

$img=imagecreatefrompng('http://partner-ad.photobucket.com/albums/g46/xanatha/WidgieWorld/Small-Yellow-Ball.png');

function foo($x,$y)
{
    global $img; //<--------------Makes $img visible inside the function
    $col=imagecolorat($img,$x,$y);
    $col=imagecolorsforindex($img,$col);
    var_dump($col);
}
foo(0,0);

echo '<br />';

$col=imagecolorat($img,0,0);
$col=imagecolorsforindex($img,$col);
var_dump($col);

See php.net/manual/language.variables.scope.php

share|improve this answer
function foo($x,$y,$img)
{
    $img_png = imagecreatefrompng($img);
    $col=imagecolorat($img_png,$x,$y);
    $col=imagecolorsforindex($img_png,$col);
    var_dump($col);
}
foo(0,0,'http://partner-ad.photobucket.com/albums/g46/xanatha/WidgieWorld/Small-Yellow-Ball.png');

It's Unable to access that variable defined outside the function.

share|improve this answer
    
It doesn't work –  Mageek Jul 8 '12 at 9:51
    
What's the response? –  user1202278 Jul 8 '12 at 9:52
    
NULL (because you must pass imagecreatefrompng('http://partner-ad.photobucket.com/albums/g46/xanatha/Widgie‌​World/Small-Yellow-Ball.png') as argument) –  Mageek Jul 8 '12 at 9:52
    
Of course, edited accordingly –  user1202278 Jul 8 '12 at 9:53

Variables have function scope. $img is not defined and not available inside your foo function. You need to pass it into the function as well.

share|improve this answer
    
Isn't $img global? –  Mageek Jul 8 '12 at 9:52
    
It exists in the global scope, yes, but that's also the reason why it does not exist inside your function's scope. It's not a superglobal that exists everywhere. –  deceze Jul 8 '12 at 9:53
    
Thanks (I was used to the javascript way) –  Mageek Jul 8 '12 at 9:55

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