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.

Watch following code:

$a = 'Test';
echo ++$a;

This will output:

Tesu

Question is, why ?

I know "u" is after "t", but why it doesn't print "1" ???

EDIT: Becouse Zend books teach following:

Also, the variable being incremented or decremented will be converted to the appropriate numeric data type—thus, the following code will return 1, because the string Test is first converted to the integer number 0, and then incremented.

share|improve this question
4  
Printing 1 after incrementing a string would be strange. –  David Titarenco Sep 26 '10 at 20:13
4  
@David Titarenco - My guess is that Michal expects the ++ to cause an implicit cast of the string to integer and, similarly to an explicit cast, yield 0. Not an unreasonable expectation, come to think of it, since ++ is a math operator. –  GZipp Sep 26 '10 at 20:29
    
@David o rly? echo $a + 1; –  Your Common Sense Sep 26 '10 at 20:33
4  
@Col. Shrapnel: $a + 1 is not the same as ++$a or $a++. –  BoltClock Sep 26 '10 at 20:37
    
@BoltClock's how enlightening. Care to read whole thread? –  Your Common Sense Sep 26 '10 at 20:40

3 Answers 3

up vote 6 down vote accepted

In PHP you can increment strings (but you cannot "increase" strings using the addition operator, since the addition operator will cause a string to be cast to an int, you can only use the increment operator to "increase" strings!... see the last example):

So "a" + 1 is "b" after "z" comes "aa" and so on.

So after "Test" comes "Tesu"

You have to watch out for the above when making use of PHP's automatic type coercion.

Automatic type coercion:

<?php
$a="+10.5";
echo ++$a;

// Output: 11.5
//   Automatic type coercion worked "intuitively"
?>


No automatic type coercion! (incrementing a string):

<?php
$a="$10.5";
echo ++$a;

// Output: $10.6
//   $a was dealt with as a string!
?>



You have to do some extra work if you want to deal with the ASCII ordinals of letters.

If you want to convert letters to their ASCII ordinals use ord(), but this will only work on one letter at a time.

<?php
$a="Test";
foreach(str_split($a) as $value)
{
    $a += ord($value);  // string + number = number
                        //   strings can only handle the increment operator
                        //   not the addition operator (the addition operator
                        //   will cast the string to an int).
}
echo ++$a;
?>

live example

The above makes use of the fact that strings can only be incremented in PHP. They cannot be increased using the addition operator. Using an addition operator on a string will cause it to be cast to an int, so:

Strings cannot be "increased" using the addition operator:

<?php
   $a = 'Test';
   $a = $a + 1;
   echo $a;

   // Output: 1
   //  Strings cannot be "added to", they can only be incremented using ++
   //  The above performs $a = ( (int) $a ) + 1;
?>

The above will try to cast "Test" to an (int) before adding 1. Casting "Test" to an (int) results in 0.


Note: You cannot decrement strings:

Note that character variables can be incremented but not decremented and even so only plain ASCII characters (a-z and A-Z) are supported.

The previous means that echo --$a; will actually print Test without changing the string at all.


share|improve this answer
1  
Good edit,but, to put a fine point to it, the string is "added to", i.e. in your code 1 is added to 0 (the post-cast value of "Test). For example try echo '7test' + 0; –  GZipp Sep 26 '10 at 20:50
    
@GZipp - Well, how would you explain the difference? "Strings can only be added to using the increment operator, but not the addition operator."? –  Peter Ajtai Sep 26 '10 at 20:51
    
I think "added to" there means concatenation. –  GZipp Sep 26 '10 at 20:52
    
@Peter Ajtai: $a + 1 performs an implicit type cast on $a before adding 1, because there are two explicit operands in that expression and + is as you said not the concatenation operator in PHP. Thus it's equivalent to (int)$a + 1. –  BoltClock Sep 26 '10 at 20:54
    
I know what the concatenation operator in PHP is. And I misread your previous post. My apologies. I was trying to say that in your code the addition is effectively 0 + 1, which I'm sure you know. –  GZipp Sep 26 '10 at 20:56

PHP follows Perl's convention when dealing with arithmetic operations on character variables and not C's. For example, in Perl 'Z'+1 turns into 'AA', while in C 'Z'+1 turns into '[' ( ord('Z') == 90, ord('[') == 91 ). Note that character variables can be incremented but not decremented and even so only plain ASCII characters (a-z and A-Z) are supported.

Source: http://php.net/operators.increment

share|improve this answer

The increment operator in PHP works against strings' ordinal values internally. The strings aren't cast to integers before incrementing.

share|improve this answer

Your Answer

 
discard

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

Not the answer you're looking for? Browse other questions tagged or ask your own question.