13

I found a bug in my JavaScript code that I have isolated to a string replace that is acting in a way I didn't expect. Here is an example of the code:

var text = "as";
text = text.replace(text,"$\'");
console.log(text);

This prints an empty string to the console. I was expecting it to print $' to the console. Can anyone explain this?

  • 2
    More information can be found in the specification: es5.github.com/#x15.5.4.11. As Alex mentioned in his deleted answer, $' is a special character sequence which gets replaced by the string following the match. E.g. "foobar".replace("foo", "$'") becomes barbar. – Felix Kling Feb 24 '12 at 0:45
19

In order to use $ in resulting string, use $$ as $ has special meaning in JavaScript Regular Expressions and String replace method: https://developer.mozilla.org/en/JavaScript/Reference/Global_Objects/String/replace#Specifying_a_string_as_a_parameter

  • JS fiddle: jsfiddle.net/3YTT5 – Mike Edwards Feb 24 '12 at 0:47
  • If I use $$, will other browsers understand that I want '$' rather than accepting it as a '$$' string literal? edit: It looks like this is standard JavaScript. When I first asked the question about other browsers, it appeared to me that this was a quirk of Firefox. – user1052335 Feb 24 '12 at 0:54
  • this is standardized behavior and it works in IE too: msdn.microsoft.com/en-us/library/windows/apps/… – Misha Reyzlin Feb 24 '12 at 0:56
  • 1
    Thanks. I was unclear on whether this was standard JavaScript or a quirk of Firefox. – user1052335 Feb 24 '12 at 0:57
  • Fwiw: Painfully, odd numbered strings of $ can have their replacement $s "round up", so to speak. So (using Chrome), "1,2,3,4".replace(/,/g, "$$$") gives "1$$2$$3$$4". That is, here, one escaped $ plus one unescaped (ie, $$$) acts likes two escaped ($$$$)! Makes the two-for-one escape pattern a little more difficult to sniff. ;^) – ruffin Jan 4 '16 at 16:58
12

If I don't know what is in my replacement string I use

replaceWith = "might have 2 $ signs $$ $$$ $$$$"
"a b c".replace("b", replaceWith) // unexpected result
"a b c".replace("b", function(){return replaceWith}) // no surprises
  • 1
    this is so simple and so useful! thanks, spared me some trouble, i was beginning to think about how to escape all $ with $.. using regexes? obviously not a good idea! – Kaddath Jul 5 '17 at 13:42
  • 1
    This trick actually just saved my butt potentially everywhere in one of my projects due to templating within localizable strings used throughout. It was a little too much hassle to sort out what $s are meant to be escaped if any are given from user input or whatever. So much easier just to throw () => before the string and be done with it. – Zack Campbell Jul 6 '17 at 21:31
  • Best reply, no need to mess around with escaping. The exact string you want to be inserted as the replacement is what it gets – Omer Dec 14 '17 at 10:21

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