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The output of this PHP code is 33.

$b=2;
$a=&$b;
$a=3;
print $a;
print $b;

How did $b become 3?

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4  
    
Yes, yes, you should go through the php.net site's explanation on references. There are lot more interesting things. You would love references after reading it. –  Imdad Sep 11 '12 at 6:36
    
$b is not "real" variable and has no value but it is pointer to value of variable $a. When You output $b in reality You output value of $a. –  Juris Malinens Sep 11 '12 at 6:37
    
@Juris Malinens: Thank you for your information!! –  user1581029 Sep 11 '12 at 6:56

5 Answers 5

up vote 1 down vote accepted

$a=&$b; this line is like saying "from now on $b, you are also $a."

print $a; // prints 3
print $b; // prints another 3
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As $a is pointing to the $b memory location.

Now if you change value of $a it will actually update $b value (where the $b is stored). As both are pointing to the same memory location.

OR you can say $a and $b are the two different way to access the same memory location as you've assigned reference of $b to $a.

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Thank you for your information! –  user1581029 Sep 11 '12 at 6:44

References in php

As you can see from the above image , when you assign a reference of a variable to another variable then they both point to same location ,thus changes made by one reflect to other as well.
Thanks

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Very well explained –  Rahat Ali Mar 6 at 10:51

You are sotring the "$b's address into the $a,and after that $a is changed,so that the value in the $b's address have changed and thus $b also changed

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Once you make a reference $a and $b are two names for the same variable.

See also: http://php.net/manual/en/language.references.php (Specifically first article in the list)

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