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.
if ((!in_array("9", $settingid)) || ($username1 == $username2) && ($username_viewed_by_other2 != "-view-by-other-people")) { //start function }

now warning message appear because $username1 is not set yet.

I cannot use if(isset($username1)){ //start function } because the function need to be carried out when $username1 is not set, how to fix this conflict situation?

share|improve this question
2  
Well... define it. –  Steve Robbins Jul 13 '12 at 19:24
1  
So you can't use isset because the function runs when $username1 isn't set? Why are you also comparing it to $username2, in that case? –  andrewsi Jul 13 '12 at 19:25
    
@andrewsi you have point it out, but !in_array("9", $settingid) and $username_viewed_by_other2 != "-view-by-other-people still need to be executed when $username1 isn't set. Anyway I got the solution from newfurniturey's answer already. Thanks anyway. Have a good day. –  zac1987 Jul 13 '12 at 20:42

3 Answers 3

up vote 1 down vote accepted

There are numerous things you could do here in this case.

The most straightforward one would be to define the variable if it's not already set:

if (!isset($username1)) $username1 = '';
if ((!in_array("9", $settingid)) || ($username1 == $username2) && ($username_viewed_by_other2 != "-view-by-other-people")) {
//start function
}

Another could be to validate prior to using it:

if ((!in_array("9", $settingid)) || (isset($username1) && ($username1 == $username2)) && ($username_viewed_by_other2 != "-view-by-other-people")) {
//start function
}

If not declaring your variables is something that "needs" to be done (which I highly doubt and recommend against), you can turn off these notices in PHP via:

error_reporting(E_ALL ^ E_NOTICE);

This will still show all other errors but will hide the notices such as "Undefined variable".

share|improve this answer
    
i see!! I tried to wrap the if statement inside another if statement : if(isset($username1){ if ((!in_array("9", $settingid)) || ($username1 == $username2)) {///} } and it cause the conflict. Your 2nd codes fixed the conflict! You are smart! Thank you very much. Sometime I feel that I am very stupid, such a simple solution also never come out in my mind. LOL –  zac1987 Jul 13 '12 at 20:36
    
No problem; practice makes perfect (or, provides multiple ways to solve a problem =P)! –  newfurniturey Jul 16 '12 at 2:43

Just use the not operator

if(!isset($username1)) { /*do function*/ }

This if statement basically asks if variable is not set.

share|improve this answer

try adding @ to the variable or using empty function instead of isset.

share|improve this answer
    
i cannot assign value to $username1 because if(isset($username1)){ //start other functions } for other functions. If I assign the value to $username1, then other functions cannot be carried out anymore. –  zac1987 Jul 13 '12 at 19:28

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.