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I don't unserstand why PHP doesn't make replacements in strings containing dollar signs. Look at the following example:

<?php
error_reporting (E_ERROR | E_WARNING | E_PARSE | E_NOTICE);
$var = 1024;
$str = '$var';
echo $str, '<br>', "$str";

Output is $var $var. Why is it so? Everything is clear with first echo parameter, but I expected that the last parameter will give a different result (1024), because it contains dollar sign encapsulated by double quotes, so it should be interpreted as variable and replaced to 1024. Where am I going wrong?

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have you looked at php.net/manual/en/language.types.string.php before asking the question? –  Gordon Sep 3 '12 at 11:29
    
Sure. When a string is specified in double quotes or with heredoc, variables are parsed within it. I thought that $str content should be interpreted as a variable. –  Kirill Smirnov Sep 3 '12 at 11:32
    
yes. it was interpreted as $str which holds the string '$var'. –  Gordon Sep 3 '12 at 11:33
    
I just wanted to clarify that this is not bacause of, for example, configuration settings, escaping dollar signs under such conditions. –  Kirill Smirnov Sep 3 '12 at 11:37
    
no, it's expected behavior. –  Gordon Sep 3 '12 at 11:38

4 Answers 4

up vote 8 down vote accepted

$str contains a string with the content of "$var" (no variable replacement, just these very characters). It was created using single quotes, so no variable replacement there.

When echoing it using echo "$str", the variable $str gets replaced with its content, namely the string "$var", thus resulting in your output.

The string replacement in double quotes strings does not work recursively! So in order to have $str replaced by 1024 in the second appearance, you have to create $str using double quotes in the first place.

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1  
You can also escape the dollar sign: "pas\$word". –  Steve Oct 15 '14 at 16:22

" allows you to place variables inside string.

' takes everything inside just as a string.

So, if you do '$var' - it's string with $ inside.

"$str" takes $str value so it prints $var

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$str contains the literal string $var, which will not be interpreted ever, since it is between single quotes.

To interpret it, you need eval()

eval($str)

will output 1042

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eval is evil –  hsz Sep 3 '12 at 11:24
    
yes. it is. but in this case, it does what is asked, i rekon –  njzk2 Sep 3 '12 at 11:26

Do you mean this?

<?php
  error_reporting (E_ERROR | E_WARNING | E_PARSE | E_NOTICE);
  $var = 1024;
  $str = $var;
  echo $str, '<br>', "$str";

Output -

1024

1024

hehe

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