138
var str   = 'asd-0.testing';
var regex = /asd-(\d)\.\w+/;

str.replace(regex, 1);

That replaces the entire string str with 1. I want it to replace the matched substring instead of the whole string. Is this possible in Javascript?

1

4 Answers 4

159
var str   = 'asd-0.testing';
var regex = /(asd-)\d(\.\w+)/;
str = str.replace(regex, "$11$2");
console.log(str);

Or if you're sure there won't be any other digits in the string:

var str   = 'asd-0.testing';
var regex = /\d/;
str = str.replace(regex, "1");
console.log(str);
3
  • 2
    or using function: 'asd-0.testing'.replace(/(asd-)\d(\.\w+)/, function(mystring, arg1, arg2){return arg1 + 'mynumber' + arg2})
    – Ivan Rave
    Jun 17, 2015 at 13:59
  • 1
    is there any answer where you DONT know the structure of the regex? here you are basically creating a new regex with two matches Jul 5, 2016 at 22:36
  • 2
    It is good to know that you need braces () around the part you want as $1, $2 etc. Jul 12, 2019 at 7:43
61

using str.replace(regex, $1);:

var str   = 'asd-0.testing';
var regex = /(asd-)\d(\.\w+)/;

if (str.match(regex)) {
    str = str.replace(regex, "$1" + "1" + "$2");
}

Edit: adaptation regarding the comment

1
  • I want to replace the substring with '1' not the entire string with the substring
    – dave
    Aug 30, 2010 at 5:46
30

I would get the part before and after what you want to replace and put them either side.

Like:

var str   = 'asd-0.testing';
var regex = /(asd-)\d(\.\w+)/;

var matches = str.match(regex);

var result = matches[1] + "1" + matches[2];

// With ES6:
var result = `${matches[1]}1${matches[2]}`;
2
  • 6
    +1 I personally like having the collection of matches to frack with.
    – eduncan911
    Apr 28, 2014 at 21:07
  • I agree, having the matched set available is more readable in my opinion.
    – Travis J
    Apr 29, 2015 at 20:57
5

I think the simplest way to achieve your goal is this:

var str   = 'asd-0.testing';
var regex = /(asd-)(\d)(\.\w+)/;
var anyNumber = 1;
var res = str.replace(regex, `$1${anyNumber}$3`);
0

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