Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Before completing this code, I just tested it by mistake and realized that it will not stop:

$var = "any"; 
for ($i=1; $i < 2; $i++){ 
    $var.$i = "any"; 
}

Why does this produce an infinite loop? And why doesn't PHP produce an error?

share|improve this question
3  
Don't walk. Run from PHP. –  Will Jul 25 '13 at 13:52

4 Answers 4

up vote 5 down vote accepted

I did a simple test :

echo $i;
 $var.$i = "any";
var_dump($var);

Result :

1string(3) "any"
anzstring(3) "any"

So $i get transformed to "anz" and doesn't pass the validation to get out of the loop.

$var.$i = "any"; is not really correct, i don't know what you are trying to do, but if you want to fill and array you should do something more like :

$var = array();
for ($i=1; $i < 2; $i++){ 
 $var[] = "any";
}

If you want to change your string letter by letter :

$var = "any";
    for ($i=1; $i < 2; $i++){ 
     $var[$i] = "a"; // asign a new letter to the string at the $i position
    }
share|improve this answer
    
thanks morsok, I knew these, I just wonder why PHP not produce any error, if this $var.$i not valid then why PHP executes? –  user1646111 Jul 25 '13 at 11:11
    
Strictly speaking it's valid, the behavior is simply not what you expect. Internally i can't tell you exactly what it does, but it seems to change $i to the string "any" with the last letter being added the value of $i making 'y' go 'z', and this is always < 2 hense it's goes to an infinite loop. –  Morsok Jul 25 '13 at 11:14
    
@Skippy But I don't see any z here, ok, can you please explain what is z? –  user1646111 Jul 25 '13 at 13:04
1  
ok any way, thanks for your attention, I hope he decide if its z or y –  user1646111 Jul 25 '13 at 13:08
1  
It's a 'z', it didn't add space to the debug sorry about that, you should read the debug as : echo $i = "anz" var_dump($var) = .... –  Morsok Jul 25 '13 at 13:19

When you do the following $var.$i = 'any' you set the $i variable and the $var variable. So the the loop never stop running because var_dump($i < 1) returns true.

$var = 'var';
$i = 1;
$var.$i = 'var';

var_dump($i); 

Returns string(3) "var".

This loop will never stop because $i is always reset to 'var', which is smaller than 1.

share|improve this answer

This is incorrect $var.$i = "any"; because this expression is equivalent to:

 $var.($i = "any");

Which assigns $i to new value, therefore the condition of which the while loops checks will always be true.

share|improve this answer
    
I knew that, what is incorrect? why makes the loop go for Infinity! –  user1646111 Jul 25 '13 at 11:03
    
Loop is good. But use $var.$i = "any"; it's not allowed. –  Maciej A. Czyzewski Jul 25 '13 at 11:04

PHP5.4+.

You will get 'anz' result, after $i++, when $i == 'any'. $i == 'any', after assignment and that is, actually, what it should get. Trick is in "$i='any'" part of line. Even when "=" has lower precedence then ".", why do you think that it shouldn't put 'any' inside $i?

Try this instead:

$var = "any"; 
for ($i=1; $i < 2; $i++){ 
 $i.$var = "anything";
}

And your loop will work. And $var will get "anything" value. This doesn't look like a bug. Just unexpected behaviour for somebody.

share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.