274

I have HTML code before and after the string:

name="some_text_0_some_text"

I would like to replace the 0 with something like : !NEW_ID!

So I made a simple regex :

.*name="\w+(\d+)\w+".*

But I don't see how to replace exclusively the captured block.

Is there a way to replace a captured result like ($1) with some other string ?

The result would be :

name="some_text_!NEW_ID!_some_text"
0
486

A solution is to add captures for the preceding and following text:

str.replace(/(.*name="\w+)(\d+)(\w+".*)/, "$1!NEW_ID!$3")
6
  • 96
    Greetings from the future! Your solution looks really neat. Could you please explain your answer?
    – Polyducks
    Mar 29 '16 at 13:24
  • 36
    The parenthesis are used to create "groups", which then get assigned a base-1 index, accessible in a replace with a $, so the first word (\w+) is in a group, and becomes $1, the middle part (\d+) is the second group, (but gets ignored in the replace), and the third group is $3. So when you give the replace string of "$1!new_ID!$3", the $1 and $3 are replaced automagically with the first group and third group, allowing the 2nd group to be replaced with the new string, maintaining the text surrounding it.
    – mix3d
    Mar 29 '16 at 22:14
  • 4
    That being said, while I understand HOW it works, I was hoping for a more elegant solution >.< Nevertheless, I can move forward with my code now!
    – mix3d
    Mar 29 '16 at 22:16
  • 9
    1) You don't even need to capture \d+ 2) Why do you say it's not elegant? Capturing is meant to keep stuff, not throw it away. What you want to keep is what is AROUND \d+, so it really makes sense (and is elegant enough) to capture these surrounding parts.
    – Sir4ur0n
    Aug 2 '16 at 9:08
  • 3
    Nice solution. What if we want to replace the capture groups using the capture group as a basis for the transformation? Is there an equally elegant solution to doing this? Currently I store the captured groups in a list, loop them, and replace the capture group with the transformed value at each iteration
    – sookie
    Aug 23 '17 at 14:33
35

Now that Javascript has lookbehind (as of ES2018), on newer environments, you can avoid groups entirely in situations like these. Rather, lookbehind for what comes before the group you were capturing, and lookahead for what comes after, and replace with just !NEW_ID!:

const str = 'name="some_text_0_some_text"';
console.log(
  str.replace(/(?<=name="\w+)\d+(?=\w+")/, '!NEW_ID!')
);

With this method, the full match is only the part that needs to be replaced.

  • (?<=name="\w+) - Lookbehind for name=", followed by word characters (luckily, lookbehinds do not have to be fixed width in Javascript!)
  • \d+ - Match one or more digits - the only part of the pattern not in a lookaround, the only part of the string that will be in the resulting match
  • (?=\w+") - Lookahead for word characters followed by " `

Keep in mind that lookbehind is pretty new. It works in modern versions of V8 (including Chrome, Opera, and Node), but not in most other environments, at least not yet. So while you can reliably use lookbehind in Node and in your own browser (if it runs on a modern version of V8), it's not yet sufficiently supported by random clients (like on a public website).

4
  • Just ran a quick timing test, and it's quite impressive how the input matters: jsfiddle.net/60neyop5
    – Kaiido
    Aug 12 '19 at 3:52
  • But if, for example I want to extract the number, multiple and "put it back", I'll have to group also \d+, right?
    – Mosh Feu
    Mar 29 '20 at 14:24
  • @MoshFeu Use a replacer function and use the whole match, the digits: replace the second parameter with match => match * 2. The digits are still the whole match, so there's no need for groups Mar 29 '20 at 22:15
  • thanks for sharing. browser support at ~75%, most notably missing from iOS Safari: caniuse.com/js-regexp-lookbehind
    – Crashalot
    Feb 7 '21 at 20:45
4

A little improvement to Matthew's answer could be a lookahead instead of the last capturing group:

.replace(/(\w+)(\d+)(?=\w+)/, "$1!NEW_ID!");

Or you could split on the decimal and join with your new id like this:

.split(/\d+/).join("!NEW_ID!");

Example/Benchmark here: https://codepen.io/jogai/full/oyNXBX

1

With two capturing groups would have been also possible; I would have also included two dashes, as additional left and right boundaries, before and after the digits, and the modified expression would have looked like:

(.*name=".+_)\d+(_[^"]+".*)

const regex = /(.*name=".+_)\d+(_[^"]+".*)/g;
const str = `some_data_before name="some_text_0_some_text" and then some_data after`;
const subst = `$1!NEW_ID!$2`;
const result = str.replace(regex, subst);
console.log(result);


If you wish to explore/simplify/modify the expression, it's been explained on the top right panel of regex101.com. If you'd like, you can also watch in this link, how it would match against some sample inputs.


RegEx Circuit

jex.im visualizes regular expressions:

enter image description here

0

A simplier option is to just capture the digits and replace them.

const name = 'preceding_text_0_following_text';
const matcher = /(\d+)/;

// Replace with whatever you would like
const newName = name.replace(matcher, 'NEW_STUFF');
console.log("Full replace", newName);

// Perform work on the match and replace using a function
// In this case increment it using an arrow function
const incrementedName = name.replace(matcher, (match) => ++match);
console.log("Increment", incrementedName);

Resources

0
"some_text_0_some_text".replace(/(?=\w+)\d+(?=\w+)/, '!NEW_ID!')

Result is

some_text_!NEW_ID!_some_text

const regExp = /(?=\w+)\d+(?=\w+)/;
const newID = '!NEW_ID!';
const str = 'some_text_0_some_text';
const result = str.replace(regExp, newID);

console.log(result);

x(?=y) in JS RegExp

Matches "x" only if "x" is followed by "y". For example, /Jack(?=Sprat)/ matches "Jack" only if it is followed by "Sprat". /Jack(?=Sprat|Frost)/ matches "Jack" only if it is followed by "Sprat" or "Frost". However, neither "Sprat" nor "Frost" is part of the match results.

details

0

If you're using python, you can use backslash substitution like in re.sub using the Match.expand() method. This means that you don't need to capture the entire string. An example is as follows:

import re

in_str = '<h1> this is valid html</h1>name="some_text_0_some_text"'
use_reg = 'name="(\w+)(\d+)(\w+)"'
replace_str = r"\1!NEW_ID!\3"

def find_with_replace_option(use_str, use_reg, to_str):
""" Find matches of the regex use_reg in the string use_str. Return
    to_str if there are any matches. to_str may contain backslash 
    substitution.
"""
    result_list = []
    for match in re.finditer(use_reg,use_str):
        result = match.expand(to_str)
        result_list.append(result)
    return result_list
print(find_with_replace_option(in_str,use_reg,replace_str))

Here the regex works as follows: the first part "some_text_" is captured in the first group, the zero is captured in the second group and the last part "_some_text" becomes the third group.

replace_str specifies that the output should consist of the first group, followed by "!NEW_ID!" followed by the third group.

The result is some_text_!NEW_ID!_some_text as expected

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