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is it possible that a variable is referenced without using the $?

For example:

if ($a != 0 && a == true) {
...
}

I don't think so, but the code (not written by me) doesn't show an error and I think it's weird. I've overlooked the code and a is not a constant either.

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5  
try: error_reporting(E_ALL ^ E_STRICT); And php will tell you that it couldn't find $a and will instead use a literal a (meaning the character a) for the comparsion. –  Yoshi Aug 22 '11 at 13:05
    
@Yoshi: Write an answer ;p –  Lightness Races in Orbit Aug 22 '11 at 13:10
    
@Tomalak Geret'kal Michael already includes this point and he even has a better explanation. ;P –  Yoshi Aug 22 '11 at 13:14
    
@Yoshi: Oh, he didn't at the time ;) –  Lightness Races in Orbit Aug 22 '11 at 13:17
    
I've just inherited a site that has hundreds of lines like: $lastRequest = $userArray[lastRequest]; They tell me the site worked fine at one point...I'm scratching my head...HOW? Glad to see someone else had a similar issue here, at least I feel better now. –  PeterG Jun 16 at 16:30

3 Answers 3

up vote 7 down vote accepted

In PHP, a constant can be defined, which would then not have a $, but a variable must have one. However, this is NOT a variable, and is not a substitute for a variable. Constants are intended to be defined exactly once and not changed throughout the lifetime of the script.

define('a', 'some value for a');

Additionally, you cannot interpolate the value of a constant inside a double-quoted or HEREDOC string:

$a = "variable a"
define('a', 'constant a');

echo "A string containing $a";
// "A string containing variable a";

// Can't do it with the constant
echo "A string containing a";
// "A string containing a";

Finally, PHP may issue a notice for an Use of undefined constant a - assumed 'a' and interpret it as a mistakenly unquoted string "a". Look in your error log to see if that is happening. In that case, "a" == TRUE is valid, since the string "a" is non-empty and it is compared loosely to the boolean TRUE.

echo a == TRUE ? 'true' : 'false';
// Prints true
// PHP Notice:  Use of undefined constant a - assumed 'a'
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On top of that, by default if PHP sees an undefined constant it will assume a constant with the value of the string. With your example of a, PHP will interpret that as a constant named a, with a value of 'a' (as a string). This does cause a notice or something: increase your error reporting value to see it. –  Narcissus Aug 22 '11 at 13:09
    
@Narcissus thanks - already added while you were typing your comment :) –  Michael Berkowski Aug 22 '11 at 13:10

With this code:

if ($a != 0 && a == true) {
    ...
}

You're not getting any error because you (or someone else) have told PHP to not report any errors, warnings or notices with that code. You set error reporting to a higher level and you will get a notice:

Notice: Use of undefined constant a - assumed 'a' in ...

Which will mean that a is read as a constant with a value of "a". This is not what you're actually looking for I guess:

if ($a != 0 && "a" == true) {
    ...
}

The second part "a" == true will always be true, so this is actually like so:

if ($a != 0) {
    ...
}

As it's not your code, one can only assume that this was not intended by the original author.

So: Variables in PHP always start with the dollar sign $. Everything else is not a variable.

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By definition a variable MUST start with a $. Also, it cannot start with a number so a variable name like $1badVar is invalid. It may however, start with letters or underscores.

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