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Which one below is correct? First code has no quotes in the $_GET array and the second one does, I know you are supposed to have them when it is a string of text but in this case it is a variable, also what about if the key is a number?

no quotes

function arg_p($name, $default = null) {
  return (isset($_GET[$name])) ? $_GET[$name] : $default;
}

with quotes

function arg_p($name, $default = null) {
  return (isset($_GET['$name'])) ? $_GET['$name'] : $default;
}
share|improve this question
    
Parenthesis is () and not ''. The latter are single quotes or apostrophes. –  Gumbo Sep 4 '09 at 20:09
    
When you say parentheses () are you referring to () or brackets []? If I'm not completely confused, or you've edited the post, it appears that the only difference between your two cases are the single quotes around '$name'. –  dnagirl Sep 4 '09 at 20:12
1  
Gumbo's answer is right. Also, I'd point out that in this case, the version without single-quotes is almost certainly an error. it would always behave the same, regardless of the value of $name. –  Kip Sep 4 '09 at 20:15
    
Also, not trying to confuse you, but $_GET["$name"] would actually work the same as the version without quotes most of the time, but it is not correct –  Kip Sep 4 '09 at 20:18
1  
@kip: why is it an error? The function is meant to return a $_GET request variable if it exists with a value of $name, else return the value in $default. The first function is correct. –  snicker Sep 4 '09 at 20:20

3 Answers 3

up vote 10 down vote accepted

The first one will use the value of $name as key while the second will use the literal string '$name' as key.

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OK good so $something[3]; would not show a NOTICE right? –  JasonDavis Sep 4 '09 at 20:16
3  
@jasondavis: I assume you meant the unknown offset*/*unknown index notice. That’s because you should test if that item exists before trying to read it. One way to do that is isset, another array_key_exists. –  Gumbo Sep 4 '09 at 20:22

With PHP, $_GET["$name"] and $_GET[$name] are identical, because PHP will evaluate variables inside double-quotes. This will return the key of whatever the variable $name stores.

However, $_GET['$name'] will search for the key of $name itself, not whatever the variable $name contains.

If the key is a number, $_GET[6], $_GET['6'], and $_GET["6"] are all syntactically equal.

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  • if the key is a variable

    $array[$key];

you don't have to quote it.

  • but if it a literal string you must (it is not a string if you don't wrap it in quotes)

    $array['myKey'];

and you will get an notice if you do it like this

$array[mykey];
share|improve this answer
1  
you won't get an error for $array[mykey]. you will only get a PHP Notice. check out thephpcode.blogspot.com/2009/09/… for more about this. –  mauris Sep 5 '09 at 14:58
    
yes you it is true but still not good –  Ayoub Sep 5 '09 at 19:10

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