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Not sure how to ask this without rambling about preprocessors in C, but I will try:

Is there a way in PHP, to use the name of a variable as a string or value.

Such that instead of calling function like this,

$somevar = 'whatever';

fun('somevar', $somevar);

you can call it like this:

fun(<magic:$somevar>, $somevar);

or even, dare I say it, like this:

fun($somevar);

and the fun() would itself deduce both the value ('whatever'), and the name ('somevar') of the variable. (In C, it could be done with a preprocessor #define.)

"magic" above is of course a place holder for the magic syntax in PHP I am looking for which will help me do this. I guess it could be made somehow with eval()? But people keep telling me not to use eval.

Someone hinted that introspection might somehow do the trick. Any leads there would be welcome.

share|improve this question
    
I got some hints about ReflectionParameters by passers-by, but you deleted your comments. –  Prof. Falken Sep 6 '12 at 7:24
    
What are you trying to accomplish? –  sberry Sep 6 '12 at 7:28
    
@Amigable are you looking for something like returning the variable name as a value.? –  ravz Sep 6 '12 at 7:29
    
@sberry, more succinct code, I have lots of variable names which are always the same as that string. Stupid to type the same thing twice. –  Prof. Falken Sep 6 '12 at 7:29
1  
@goldenparrot, from the description, technically yes, but actually not quite, what happens if I mistype, fun(ltrim('$somevarr', '$'), $somevar); is that the PHP gives no help at all. If the first argument was just a variable, the parser could warn that $somevarr was undefined. –  Prof. Falken Sep 6 '12 at 7:58

3 Answers 3

up vote 1 down vote accepted

No. PHP's scoping rules prevent you from doing that. The only way would be through a pre processor (as you are aware) or by introspecting the code, which would be kind of the same thing. PHP has a built-in tokenizer, that you can use to parse a file with. You can use debug_backtrace to find out which files to parse through. It's going to be a really messy and inefficient thing to do though, so you would probably be better off rethinking what you're doing.

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Elan - "I don't wanna sell you death sticks." troelskn - "You want to go home and rethink your life." Amigable - "I wanna go home and rethink my life." –  Prof. Falken Sep 6 '12 at 8:10
    
;) - Not knowing your use case, I may be off, but it sounds like you might want to use an array for this, somehow? –  troelskn Sep 6 '12 at 8:12
    
I think I will just use fun('x', $x); at least it's very readable and straightforward and easy to spot errors visually. –  Prof. Falken Sep 6 '12 at 8:23
1  
If it works, then I concur. Verbose is usually better than clever. –  troelskn Sep 6 '12 at 8:26

Try this

function var_name(&$var, $scope=0)
{
    $old = $var;
    if (($key = array_search($var = 'unique'.rand().'value', !$scope ? $GLOBALS : $scope)) && $var = $old) return $key;  
}
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1  
This isn't quite what he is looking for –  Lucas Green Sep 6 '12 at 7:22
    
@Mythril i think he wants the variable name to be as a string. This function returns that. or can u please explain where I'm wrong so that i correct it. –  ravz Sep 6 '12 at 7:33
    
Run this in the same scope as your function $x = 5; $y = 5; echo var_name($x), "\n"; echo var_name($y), "\n"; –  Lucas Green Sep 6 '12 at 7:34
    
also, this would utterly fail when trying to use it on a local inside of a function –  Lucas Green Sep 6 '12 at 7:35
1  
If nothing better performance wise shows up, I will eventually accept this answer, because your function works. But I won't use it, it's too weird. :-) –  Prof. Falken Sep 6 '12 at 8:03

http://php.net/manual/en/language.variables.variable.php

The probably explain it better than I can, I think this is what you're looking for?

Alright, before you call the function do the following:

$var= "variableName";
$$var = "variableValue";
fun($var);

Now within the function definition for fun:

function fun($parameter)
{
    global $$parameter;
    echo $parameter; //echos the variableName
    echo $$parameter; //echos the variableValue
}
share|improve this answer
    
Either, no it's NOT what I am looking for, OR I don't understand what that page says. –  Prof. Falken Sep 6 '12 at 7:26
    
@RedHydra: I would have given the same answer –  maxdec Sep 6 '12 at 7:29
    
@Double so you would also have pointed to a page and not actually write an answer. ;-) –  Prof. Falken Sep 6 '12 at 7:30
1  
@AmigableClarkKant I've updated my answer, I'm pretty sure this will work for you, let me know if it doesn't. –  RedHydra Sep 6 '12 at 7:36
    
How will that help me write: $clevername = 'something'; fun($clevername); ....... and the fun() knowing both 'clevername' and 'something' –  Prof. Falken Sep 6 '12 at 7:39

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