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I ran into a block of code that executes print with double quotes around the argument. The argument contained a variable that was seemingly escaped by a dollar sign. Is that how a variable is called inside double quotes in php?

print("$$owed");

Here's the full block from the source:

<html>

 <head>

 <title>Loans</title>

 </head>


 <body>

 <?php

 $interest_rate = .14;

 function YouOweMe($cost, $interest_rate) {

 $weekly_payment = ($cost*$interest_rate);

 print "You better pay me $$weekly_payment every week, or else!";

 }

<font color="#000000">YouOweMe($cost, $interest_rate);

 ?>

 </body>

 </html>

I had to strip the numbers. So annoying.

Anyway, ... What doesn't make sense to me is that $$owed is supposed to, what? Create a new variable from a separate variable that contains a string 'owed'? That doesn't seem practical in any situation. Isn't $$owed just to get a dollar sign before the amount?

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4  
That right there is a variable variable - php.net/manual/en/language.variables.variable.php –  Lix Jul 26 '12 at 23:22
1  
variable variables is probably one of the reason Jeff Atwood wrote The PHP Singularity in his Coding Horror blog recently. –  Ken White Jul 26 '12 at 23:26
1  
Wow, lots of confusion in the answers. Try this in your console. $owed = 'test'; print "$$owed"; Will print $test. The first $ is a literal and the sec belongs to the variable. –  Michael Berkowski Jul 26 '12 at 23:30
    
I don't know that they were attempting a variable variable. It doesn't make sense in context. webmonkey.com/2010/02/php_tutorial_for_beginners/#Functions . I have strong reason to believe my phone isn't displaying a character. –  Wolfpack'08 Jul 27 '12 at 1:50
    
Thanks, ken white. I enjoyed reading that article. I didn't see an alternative, though. Is Jeff Aswood a fan of Ruby? Maybe Node.js? –  Wolfpack'08 Jul 27 '12 at 5:16

4 Answers 4

Here is an example to understand variable variables :

<?php
   $var = "test";
   $test = "hey !";
   echo "$$var";   //$test
   echo "${$var}"; //hey !
   echo '$$var';   //$$var
?>

Edited according to comments.

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2  
No, in my console this prints $test. –  Michael Berkowski Jul 26 '12 at 23:24
    
You need to say echo "${$var}"; –  David Jul 26 '12 at 23:27
    
Ow, right, it works only with ${$var}. Sorry for my bad memory ! –  zessx Jul 26 '12 at 23:28
    
How do you get "$hey !" –  Wolfpack'08 Jul 27 '12 at 1:40
    
With echo "$$test"; or even echo "$${$var}"; –  zessx Jul 27 '12 at 7:18

In PHP, a variable is escaped with $ when inside a string defined with double quotes. This does NOT work with single quotes.

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That's not what he asked. –  David Jul 26 '12 at 23:26
    
I guess I'm confused on what he asked then. It seed like he wanted conformation that variables were escaped with $ in php? –  dykeag Jul 26 '12 at 23:27
    
He's curious why the double $ was there –  David Jul 26 '12 at 23:28
1  
Oh! There are two $ there because one of them is an actual '$' character, and the other one escapes the variable –  dykeag Jul 26 '12 at 23:29
1  
Nothing, it just prints as itself. echo "$owed" would print the value of owed, where echo '$owed' would print '$owed', the string literal. –  dykeag Jul 27 '12 at 1:56
$string = "world"; 

echo "Hello ${string}"; 
#### outputs "Hello World"

That is how you put a variable into a string (you need the double quotes).

What you have is variable-variable. You can call a variable $foo by using a string with foo in it.

$string = 'foo';
$foo = 'hello world';
echo "I say, ${$string}"; 

Would output "hello world.

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There are a couple of ways to use variables inside double quotes, some common ways are

  1. print("$owed") will print the value of $owed

  2. print("$$owed") is called a "variable variable" (as linked previously)

     $owed = "test";
     $test = 16;
     print("$$owed");
    

    will print out "$test".

  3. Another use of this comes in the form of print("${$owed}"), which takes the value of $test and uses it as the variable name.

I strongly advise you to use single quotes and concatenate the variables needed, as it saves the time for evaluating variables in out, e.g.:

$owed = 42;
print('The value is: ' . $owed);

lg,

flo

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1  
That isn't a variable variable in double quotes. Did you try your example? It prints $test, not 16. –  Michael Berkowski Jul 26 '12 at 23:28
    
My answer has the proper syntax. The brackets are needed, for example: print("${$owed}"); –  David Jul 26 '12 at 23:29
    
got a little mixed up, when writing this, corrected it. –  Florian Jul 26 '12 at 23:33
    
If you can verify your answer, I can accept it because of the bit of advice on what I actually should be doing. –  Wolfpack'08 Jul 27 '12 at 1:43

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