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I have the following code

define("SCRIPT_URL", "");
function ifScriptFolder() {
    if(isset(SCRIPT_URL) && !empty(SCRIPT_URL)) {
        echo "/".SCRIPT_URL."/";
    } else {
        echo "/";
    }
}

but it's giving me the following error:

Parse error: syntax error, unexpected ')', expecting :: (T_PAAMAYIM_NEKUDOTAYIM) in *(path)* on line 3

Can anyone see what's going wrong here or how to fix it?

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marked as duplicate by HAL9000, Dagon, NullPoiиteя, Fluffeh, Anand Sep 18 '13 at 9:27

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
I post an answer to show how to judge a constant is empty. Please have a look at it. –  srain Sep 18 '13 at 4:16

3 Answers 3

up vote 6 down vote accepted

If you trying to determine if constant exists, then try to use defined() or constant(), not isset().


From php.net:

Function defined():

Returns TRUE if the named constant given by name has been defined, FALSE otherwise.

Function constant():

Returns the value of the constant, or NULL if the constant is not defined.


Fixed function:

function ifScriptFolder() {
    echo defined('SCRIPT_URL') ? "/" . constant('SCRIPT_URL') . "/" : "/"
}

UPD:

The defined() function is a better solution for this, because it will not emit E_WARNING if constant was not defined.

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Agreed that the functions should be used. However, the question is about a parse or compilation error i.e. the script does not even run so how can these functions be of help? –  eric Oct 4 '13 at 7:11
    
@fuzzybee This question about misuse and misunderstanig of use isset() for constant. And as the result - parse error. –  HAL9000 Oct 4 '13 at 7:27

PHP constants are not variables, so you don't use isset or empty to check them.

Instead, you can use defined:

defined('SCRIPT_URL')

to return a boolean if the field as been defined, then if it is, do a standard comparison on the value to check if it is truthy.

It's also worth noting (for future reference) that isset is not a regular function; it is a "language construct" and cannot be used on anything besides variables (i.e. can't be used on the return value of a function). Same with empty up until PHP 5.5.

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Thanks that worked! Never had to check a defined constant before. :). Will accept when it lets me. –  dpDesignz Sep 18 '13 at 4:09

If you want to see if a variable exists, use isset(), and defined() only applies to constants.

If you want to check if a constant is empty, you can not use:

if (empty(B)) // syntax error
if (empty(constant('B'))) // fatal error

You can convert the constant to boolean:

if((boolean) A) {
}

So, you can change your code to:

<?php
define("SCRIPT_URL", "");
function ifScriptFolder() {
    if(defined('SCRIPT_URL') && !((boolean)SCRIPT_URL)) {
        echo "/".SCRIPT_URL."/";
    } else {
        echo "/";
    }
}
share|improve this answer
    
defined() requires string argument: defined('SCRIPT_URL'), not defined(SCRIPT_URL). –  HAL9000 Sep 18 '13 at 4:17
    
sorry, you are right. I uptated the answer, tks. –  srain Sep 18 '13 at 4:22

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