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I've seen a lot of php code that does the following to check whether a string is valid by doing:

$str is a string variable.

if (!isset($str) || $str !== '') {
  // do something
}

I prefer to just do

if (strlen($str) > 0) {
  // something
}

Is there any thing that can go wrong with the second method? Are there any casting issues I should be aware of?

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3  
Um.. php.net/manual/en/function.empty.php? –  Marwelln Dec 25 '10 at 19:04
    
Good points. I should be aware of strings with trailing whitespaces –  Yada Dec 25 '10 at 19:06
1  
yup, there is. An error would be thrown if $str is undefined. –  Your Common Sense Dec 25 '10 at 19:07
1  
You're also presuming in the 2nd method that $str is previously defined - if not, you'll get an 'undefined variable' notice. The use of isset() in the first method checks this. –  richsage Dec 25 '10 at 19:07
    
@richsage no, not isset(), but empty(). –  Your Common Sense Dec 25 '10 at 19:07
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6 Answers

up vote 8 down vote accepted
if(empty($stringvar))
{
    // do something
}

You could also add trim() to eliminate whitespace if that is to be considered.

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is there any different between if(empty(trim($str))) and if (strlen(trim($strim))> 0) ? –  Yada Dec 25 '10 at 21:14
7  
Yes. Consider the string '0' on which empty() will return true while strlen() will not. –  JYelton Dec 25 '10 at 22:00
    
Also see: stackoverflow.com/questions/1318350/… –  JYelton Dec 25 '10 at 22:04
2  
This is worse than strlen( $str ) > 0 because it considers "0" to be an empty string. –  Jesse Jun 17 '13 at 3:43
    
"Worse" depends on the OP's requirement. If "0" should be treated as not empty, then this method is not ideal. It is just an alternate suggestion. However, in many situations, "0" might just as well be empty. It's situational. –  JYelton Jun 17 '13 at 6:12
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You need isset() in case $str is possibly undefined:

if (isset($str) && $str !== '') {
    // variable set, not empty string
}

Using !empty() would have a caveat: the string '0' evaluates to false.


Also, sometimes one wants to check, in addition, that $str is not something falsy, like false or null[1]. The previous code would fail on that. It's one of the rare situations where loose comparison can be useful:

if (isset($str) && $str != '') {
    // variable set, not empty string, not falsy
}

This method is interesting as it remains concise and doesn't filter out '0'. But make sure to document your code if you use it.

Finally, considering that '' == false, '0' == false, but '' != '0', you may have guessed it: PHP comparisons aren't transitive (fun graphs included).


[1] Note that isset() already filters out null.

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What about this:

if( !isset($str[0]) )
   echo "str is NULL or an empty string";

I found it on PHP manual in a comment by Antone Roundy

I posted it here, because I did some tests and it seems to work well, but I'm wondering if there is some side effect I'm not considering. Any suggestions in comments here would be appreciated.

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According to PHP empty() doc (http://ca1.php.net/empty):

Prior to PHP 5.5, empty() only supports variables; anything else will result in a parse error. In other words, the following will not work: empty(trim($name)).

Instead, use trim($name) == false.

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If your variable $str is not defined then your strlen() method will throw an exception. That is the whole purpose of using isset() first.

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I think not, because strlen (string lenght) returns the lenght (integer) of your $str variable. So if the variable is empty i would return 0. Is 0 greater then 0. Don't think so. But i think the first method might be a little more safer. Because it checks if the variable is init, and if its not empty.

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