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So I have a string that can have an infinite number of decimals in it and could end with any extension...

'tro.lo.lo.lo.lo.lo.zip'

I need to use a regex to replace the last occurrence of a period ('.' without the quotes) with another string like '@2x' and then the period again.

So 'tro.lo.png' would become 'tro.lo@2x.png'

Here's what I have so far but it won't match anything...

str = 'http://google.com/image.png' str.replace(/.([^.]*)$/, ' @2x.')

any suggestions?

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You need a negative lookahead if you want to do it with regex but you really shouldn't –  Benjamin Gruenbaum Jun 21 '12 at 8:12

7 Answers 7

up vote 19 down vote accepted

You do not need a regex for this. String.lastIndexOf will do.

var str = 'tro.lo.lo.lo.lo.lo.zip';
var i = str.lastIndexOf('.');
if (i != -1) {
    str = str.substr(0, i) + "@2x" + str.substr(i);
}

See it in action.

Update: A regex solution, just for the fun of it:

str = str.replace(/\.(?=[^.]*$)/, "@2x.");

Matches a literal dot and then asserts ((?=) is positive lookahead) that no other character up to the end of the string is a dot. The replacement should include the one dot that was matched, unless you want to remove it.

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That returns an integer of the position where that character is, right? –  Jackson Gariety Jun 21 '12 at 8:13
    
How can I use that integer with .replace() ? –  Jackson Gariety Jun 21 '12 at 8:13
    
@gdoron: Was working on that :) –  Jon Jun 21 '12 at 8:13
    
@JacksonGariety: You don't need to. String.substr will round things up. –  Jon Jun 21 '12 at 8:14
2  
@JacksonGariety. It's a lot more readable, and little bit faster. –  gdoron Jun 21 '12 at 8:17
"tro.lo.lo.lo.lo.lo.zip".replace(/\.([^.]+)$/, "@2x.$1");
// "tro.lo.lo.lo.lo.lo@2x.zip"
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1  
Correctly answers OPs question. –  Qtax Jun 21 '12 at 8:26
1  
@Qtax: Not quite, because it won't work if the last dot is also the very last character. –  Jon Jun 21 '12 at 8:26
    
@Jon, true. Almost korrect then. ;) But /\.([^.]*)$/ does it, no need for lookarounds. –  Qtax Jun 21 '12 at 8:32
1  
I am not sure if a filename could have a . as the very last character. –  Salman A Jun 21 '12 at 9:44

You can use the expression \.([^.]*?):

str.replace(/\.([^.]*?)$/, "@2x.$1");

You need to reference the $1 subgroup to copy the portion back into the resulting string.

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I think this needs another period at the end of "$1@2x" to work, right? –  Jackson Gariety Jun 21 '12 at 8:14
    
Was a bit hasty with that answer — fixed it to make more sense w.r.t. your original regex –  rfw Jun 21 '12 at 8:16
    
I think you are missing a . in the replacement string. I prefer escaping ., but character class may be easier to read. .replace(/(.*)\./, "$1@2x."). Anyway, +1 for a simple solution using the greedy property of * quantifier. –  nhahtdh Jun 21 '12 at 8:17

working demo http://jsfiddle.net/AbDyh/1/

code

var str = 'tro.lo.lo.lo.lo.lo.zip',
    replacement = '@2x.';
str = str.replace(/.([^.]*)$/, replacement + '$1');

$('.test').html(str);

alert(str);
​
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1  
Not quite. the output is missing a dot. –  gdoron Jun 21 '12 at 8:16
    
@gdoron got it : jsfiddle.net/AbDyh/1 Thanks bruvnic! –  Tats_innit Jun 21 '12 at 8:18
1  
Output should be tro.lo.lo.lo.lo.lo@2x.zip You output tro.lo.lo.lo.lo.lo@2xzip –  gdoron Jun 21 '12 at 8:19
    
@gdoron lol 35 second difference :) cheers updated version here jsfiddle.net/AbDyh/1 –  Tats_innit Jun 21 '12 at 8:20
    
Perfect (if you have to use regex of course) –  gdoron Jun 21 '12 at 8:23

Use \. to match a dot. The character . matches any character.

Therefore str.replace(/\.([^\.]*)$/, ' @2x.').

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Try your code: "tro.lo.lo.lo.lo.lo.zip".replace(/\.([^\.]*)$/, ' @2x.') It doesn't work. Sorry. –  gdoron Jun 21 '12 at 8:15
    
Cool, did not know that about regex –  Jackson Gariety Jun 21 '12 at 8:16
    
@Jon. Ha? . . . . –  gdoron Jun 21 '12 at 8:17

To match all characters from the beginning of the string until (and including) the last occurence of a character use:

^.*\.(?=[^.]*$)  To match the last occurrence of the "." character

^.*_(?=[^.]*$)   To match the last occurrence of the "_" character
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You could simply do like this,

> "tro.lo.lo.lo.lo.lo.zip".replace(/^(.*)\./, "$1@2x");
'tro.lo.lo.lo.lo.lo@2xzip'
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