5

Im very new to Regex . Right now im trynig to use regex to prepare my markup string before sending it to the database.

Here is an example string:

@[admin](user:3) Testing this string @[hellotessginal](user:4) Hey!

So far i am able to identify @[admin](user:3) the entire term here using /@\[(.*?)]\((.*?):(\d+)\)/g

But the next step forward is that i wish to remove the (user:3) leaving me with @[admin].

Hence the result of passing through the stripper function would be:

@[admin] Testing this string @[hellotessginal] Hey!

Please help!

4
  • Why don't you capture @\[(.*?)] then? Something like s.replace(/(@\[.*?])\(.*?:\d+\)/g, '$1') could do. I would use negated character classes instead of . here, though, s.replace(/(@\[[^\][]*])\([^()]*?:\d+\)/g, '$1') – Wiktor Stribiżew Jul 5 '20 at 17:25
  • Im sorry for being a noob @WiktorStribiżew , what does s.replace do? could you assist my understanding by writing a function that i can tinker with? – neowenshun Jul 5 '20 at 17:30
  • @Mandy8055 yup but theres a possibility that the user types in their own paranthesis , which is why the pattern needs to have a condition to have the @[...] infront of the parenthesis – neowenshun Jul 5 '20 at 17:30
  • s is a string variable. – Wiktor Stribiżew Jul 5 '20 at 17:31
3

You may use

s.replace(/(@\[[^\][]*])\([^()]*?:\d+\)/g, '$1')

See the regex demo. Details:

  • (@\[[^\][]*]) - Capturing group 1: @[, 0 or more digits other than [ and ] as many as possible and then ]
  • \( - a ( char
  • [^()]*? - 0 or more (but as few as possible) chars other than ( and )
  • : - a colon
  • \d+ - 1+ digits
  • \) - a ) char.

The $1 in the replacement pattern refers to the value captured in Group 1.

See the JavaScript demo:

const rx = /(@\[[^\][]*])\([^()]*?:\d+\)/g;
const remove_parens = (string, regex) => string.replace(regex, '$1');

let s = '@[admin](user:3) Testing this string @[hellotessginal](user:4) Hey!';
s = remove_parens(s, rx);
console.log(s);

3
  • thanks this works perfectly , however may i ask why did u do a replacement with '$1' – neowenshun Jul 5 '20 at 17:50
  • @neowenshun If I do not use it, I will remove the text matched. However, we need to keep the @ and the subsequent [...] substring in the result. That is why it is captured into a group (with ID=1, capturing groups are 1-indexed), and the $1 backreference is used. – Wiktor Stribiżew Jul 5 '20 at 17:52
  • @WiktorStribiżew, great explanation. I've learned a new thing as well. Upvoted. Thanks. – Shahnawaz Hossan Jul 5 '20 at 17:54
0

Try this:

var str = "@[admin](user:3) Testing this string @[hellotessginal](user:4) Hey!";
str = str.replace(/ *\([^)]*\) */g, ' ');
console.log(str);

5
  • Hey! thanks for replying. If im not wrong, this regex does not have the condition that the @[...] is infront of it am i right? – neowenshun Jul 5 '20 at 17:36
  • @neowenshun, Yes. It will remove all the things within the parentheses. – Shahnawaz Hossan Jul 5 '20 at 17:38
  • @neowenshun See this regex demo. – Wiktor Stribiżew Jul 5 '20 at 17:41
  • @ShahnawazHossan Right, the issue is that i only wish to remove it if it follows the @[...] as the user may type in some messages in the parenthesis – neowenshun Jul 5 '20 at 17:43
  • Probably, I have misunderstood your problem. Ok got it. – Shahnawaz Hossan Jul 5 '20 at 17:44
0

You can replace matches of the following regular expression with empty strings.

str.replace(/(?<=\@\[(.*?)\])\(.*?:\d+\)/g, ' ');

regex demo

I've assumed the strings for which "admin" and "user" are placeholders in the example cannot contain the characters in the string "()[]". If that's not the case please leave a comment and I will adjust the regex.

I've kept the first capture group on the assumption that it is needed for some unstated purpose. If it's not needed, remove it:

(?<=\@\[.*?\])\(.*?:\d+\)

There is of course no point creating a capture group for a substring that is to be replaced with an empty string.

Javascript's regex engine performs the following operations.

(?<=         : begin positive lookbehind
  \@\[       : match '@['
  (.*?)      : match 0+ chars, lazily, save to capture group 1
  \]         : match ']'
)            : end positive lookbehind
\(.*?:\d+\)  : match '(', 0+ chars, lazily, 1+ digits, ')'

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

Not the answer you're looking for? Browse other questions tagged or ask your own question.