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<?php
echo test(); 
$a = "123";

function test(){
global $b;
b =$a;
return $b;
}
?>

I want to get the value from another form, so I setup a function, but why can't show the value at test()

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Both njk and I have provided you with correct solutions below. Please select one as an answer, thank you. –  James Jan 8 '13 at 15:23
    
@JamesKirby — Have patience. Give the asker time to examine answers, test them and determine if they really do answer the question. Also note that (at the time of writing) the asker can't select an answer as there is an enforced delay on stackoverflow. –  Quentin Jan 8 '13 at 15:25
1  
Why isn't the standard response to people using "global" to beat them around the head with a wet mackerel? –  Mark Baker Jan 8 '13 at 15:28
    
@MarkBaker Thanks for that visual. –  Kermit Jan 8 '13 at 15:36

2 Answers 2

up vote 3 down vote accepted

Because $a is out of scope, declared after the function call and you have a syntax error. You need global $a.

$a = "123";
echo test( ); 

function test( ) {
    global $a;
    $b = $a;
    return $b;
}

Result

123

Take a look at variable scopes

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Dear, echo test( ); –  user1940813 Jan 8 '13 at 15:28
    
Dear, I can't declared $a before the function because I want pass the value $b to another <form>, have another method can help me? –  user1940813 Jan 8 '13 at 15:34
    
@user1940813 Please update your question with more code. –  Kermit Jan 8 '13 at 15:35

Firstly, you cannot populate a variable like this: b = $a you need to use the proper PHP syntax, so: $b = $a.

Secondly, "njk" got it right, you need to declare the variable as a global as it's out of scope, so using global $a will work.

Finally, it'll only work if you pre-define the variable BEFORE calling the function, so this is how it'd look:

$a = 123;

function test() {

  global $a;

  $b = $a;

  return $b;

}

echo test();

That will return this result:

123

Hope that helps.

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