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.

Why is the output of sqrt not an integer for "16" in PHP?

Example

php > $fig = 16;
php > $sq = sqrt($fig); //should be 4
php > echo $sq;
4
php > echo is_int($sq);            // should give 1, but gives false
php >

I feel that the problem is in the internal presentation which PHP hides similarly as Python. How can you then know when the given figure is integer after taking a square root?

So how can you differentiate between 4 and 4.12323 in PHP without using a regex?

share|improve this question
add comment

6 Answers

up vote 13 down vote accepted

According to the PHP manual, float sqrt ( float $arg ), sqrt() always returns a float. Using the is_int() function won't solve the problem because it checks the datatype and returns a failure.

To get around this, you can test it by using modulus instead: (must be fmod() for floating point modulus and not the % operator for integer modulus)

if (fmod(sqrt(16), 1) == 0) {
   // is an integer
}

If you are using PHP 5.2.0 or later, I believe this would also work, but I haven't used it in this type of circumstance to be certain:

$result = sqrt(16);
if (filter_var($result, FILTER_VALIDATE_INT)) {
    // is an integer
}
share|improve this answer
    
Your first command is not working for me, but the last one works. –  Masi Oct 31 '09 at 14:33
    
You're right. The first one works now too. I double checked it before I posted the edit. –  Jason Oct 31 '09 at 14:37
    
As a side note, testing for an integer by using (float % 1) works in JavaScript and MySQL, just not in PHP which requires fmod() instead of %. –  Jason Oct 31 '09 at 14:51
    
I didn't know that FILTER_VALIDATE_INT existed, and had written my own function. check_is_integer($n) {$i = (int)$n; return ($n == $i);} –  TRiG Dec 2 '09 at 18:39
add comment

No, it's not an integer. It's a float.

share|improve this answer
add comment

Says it right in the API, return type is float.

http://us2.php.net/sqrt

 float sqrt  ( float $arg  )

Returns the square root of arg .

share|improve this answer
add comment

You can use the floor function to get the integer part of the value and subtract the original value. If the difference is != 0 then its NOT an integer. e.g.

if (($sq - floor($sq)) == 0){
   YES
}else{
 NO
}
share|improve this answer
1  
This is also a good method. Thank you for pointing out Knuth's function! –  Masi Oct 31 '09 at 14:56
add comment

Because it always returns a float:

float sqrt(float $arg)

You can cast it into a integer if you want:

intval(sqrt(16));

EDIT, Ok then:

$sqrt = sqrt(16);

if (strpos($sqrt, '.') !== false)
{
    $sqrt = intval($sqrt);
}

else
{
    $sqrt = floatval($sqrt);
}

var_dump($sqrt);
share|improve this answer
1  
The problem with intval is that it rounds off. I need to know exactly which is an integer which is not after taking a square root. –  Masi Oct 31 '09 at 14:22
add comment

Another way to check for integers would be casting to a string and checking that with ctype_digit()

$result = sqrt(16);
if (ctype_digit((string)$result)) {
   // is an integer
}

Of course this is a somewhat weird way compared to using modulo when you are doing calculations anyway. But it is handy when testing values posted from a form, as they will be strings to begin with. A caveat is that it would return false for a negative integer.

share|improve this answer
add comment

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.