4

I'm trying to use a regex in JavaScript to decide if a message gets deleted. I want to delete the message if it contains "string" anywhere, unless it's surrounded by colons.

  • string - gets deleted
  • blah string - gets deleted
  • :string blah - gets deleted
  • :string: string - gets deleted
  • thing :string: - doesn't get deleted

I'm using JavaScript, and so far I'm using message.match(/string/i) to see if the message gets deleted. I've tried a negative lookahead, but I probably used it wrong.

EDIT: Sorry for not including this earlier, but :blahstring: and :stringblah: and :blahstringblah: should not be deleted as well.

  • Why does thing :string: not get deleted? – guest271314 Feb 12 at 19:30
  • @guest271314 Because the word string is surrounded with colon – LGSon Feb 12 at 19:32
  • Try /(?<!:(?=string:))string/i if lookbehind is supported. – Wiktor Stribiżew Feb 12 at 19:35
  • @Sparky Deleted – Kognise Feb 12 at 19:35
  • @LGSon What is the difference between :string: string - gets deleted and thing :string: - doesn't get deleted? Why is :string: not matched in the second case? – guest271314 Feb 12 at 19:41
4

There are some boundary cases where the colon appears only at one side of "string". Therefore I believe it is easier to remove all occurrences of ":string:" and only then look for a match of "string":

function deleteIt(msg) {
    return /string/i.test(msg.replace(/:\w*string\w*(?=:)/ig, ":"));
}

console.log(deleteIt("this is :string ")); // true
console.log(deleteIt("this is string: ")); // true
console.log(deleteIt("string:string: ")); // true
console.log(deleteIt("this is :string: ")); // false
console.log(deleteIt("this is :blastring:stringbla:string: ")); // false

The last test in the above snippet is a special case. The colon is "shared" by a preceding and following "string". Depending on whether you want such "string" occurrences to be ignored or not, you may need to replace the look-ahead with a normal capture of the second colon.

Addendum

In your edit to the question, you say that ":blastring:" or ":stringbla:" should also not trigger a deletion.

So I added \w* twice in the regex above to align with that extra requirement.

If also punctuation or other non-alphabetical characters could be allowed between the colon and "string", like ":,-°string^0&:", just not white-space, then use \S* instead of \w*.

  • I saw your edit to the question, so I added \w* twice in the regex to align with that extra requirement. Let me know if that is what you need. If you intended to detect a literal "bla", then replace those \w* with (bla)? – trincot Feb 12 at 21:06
4

If lookbehind is supported you may use

/(?<!:(?=string:))string/i

See the regex demo

Details

  • (?<!:(?=string:)) - a negative lookbehind that fails the match if, immediately to the left of the current location, there is : that is not immediately followed with string:
  • string - a string

var strs = ['string - gets deleted','blah string - gets deleted',':string blah - gets deleted',':string: string - gets deleted','thing :string: - doesnt get deleted'];
var rx = /(?<!:(?=string:))string/i;
for (var s of strs) {
  console.log(s, "=>", rx.test(s));
}

Output:

string - gets deleted => true
blah string - gets deleted => true
:string blah - gets deleted => true
:string: string - gets deleted => true
thing :string: - doesnt get deleted => false

A version without lookbehind

It is based on a regex that matches string either without colons or with colons on both sides. If the matches contain at least one match with no colon at the start, the entry must be deleted.

var strs = ['string - gets deleted','blah string - gets deleted',':string blah - gets deleted',':string: string - gets deleted','thing :string: - doesnt get deleted'];
var rx = /(?::(?=string:))?string/gi;
for (var s of strs) {
  var matches = s.match(rx);
  console.log(s, "=>", (matches.some(function (x) { return !/^:/.test(x); }) ));
}

  • I guess I accidentally clicked edit on this instead of my answer, whoever looks at this things please discard my edit. – Adam H Feb 12 at 19:39
  • Ah, and I was puzzled to see another regex in my answer :) – Wiktor Stribiżew Feb 12 at 19:40
  • Thanks, but this doesn't work with my test cases. :D – Kognise Feb 12 at 19:41
  • @UnknownUser It does, see the demo. Only the last one is false – Wiktor Stribiżew Feb 12 at 19:41
  • @UnknownUser What test case does it not work with? Please add it to your question. – blhsing Feb 12 at 19:41
1

You can use a combination of positive lookbehind and negative lookahead:

(?<=^|[^:]|(:))string(?!\1)

Demo: https://regex101.com/r/Ca1TTW/1

  • Wait, shoot, this doesn't work with javascript – Kognise Feb 12 at 20:02
1

This is what worked for me in my tests: ^.*(?<!\:)string(?!\:).*$

  • ^ Match the start of the string
  • .* Match any character any number of times
  • (?<!\:) Match if the : suffix is missing
  • string Match the word string
  • (?!\:) Match if the suffix is missing
  • .* Match any character any number of times
  • $ Match the end of the line
  • I love the explanation, it really helped clear some things up for me, but @blhsing's answer is the one that solved my problem. – Kognise Feb 12 at 19:41
  • As long as you solved your problem I'm happy – Adam H Feb 12 at 19:42
  • @UnknownUser Also, If his answered solved the problem please mark it as the Answer to help people in the future. – Adam H Feb 12 at 19:43
  • I think this gives the wrong result for ":string" and for "string:". – trincot Feb 12 at 19:52
  • @AdamH I would, but now stackoverflow makes you wait a while – Kognise Feb 12 at 19:58
0

Try

let s=[ "string",
        "blah string",
        ":string blah",
        ":string: string",
        "thing :string:",
        ":blahstring:",
        ":stringblah:",
        ":blahstringblah:",
      ];

let d=s.filter(x=> !x.match(/:.*string.*:/i) || x.match(/:.*string.*:.*string.*/i) || x.match(/.*string.*:.*string.*:/i));

console.log('Delete :', d);
console.log('Save   :', s.filter(x=>!d.includes(x)) );

We put to "delete list" d elementh which

  • !x.match(/:string:/i) - not contains :string: or
  • x.match(/:.*string.*:.*string.*/i) contains :string: and then string non surrounded by :
  • x.match(/.*string.*:.*string.*:/i) same as above but vice-versa

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