I have a text in a textarea and I read it out using the .value attribute. Now I would like to remove all linebreaks(the character that is produced when you press enter) from my text now using .replace with a regular expression, but how do I indicate a linebreak in a regex? If that is not possible, is there any other way?

12 Answers 12

up vote 342 down vote accepted

This is probably a FAQ. Anyhow, line breaks (better: newlines) can be one of Carriage Return (CR, \r, on older Macs), Line Feed (LF, \n, on Unices incl. Linux) or CR followed by LF (\r\n, on WinDOS). (Contrary to another answer, this has nothing to do with character encoding.)

Therefore, the most efficient RegExp literal to match all variants is

/\r?\n|\r/

If you want to match all newlines in a string, use a global match,

/\r?\n|\r/g

respectively. Then proceed with the replace method as suggested in several other answers. (Probably you do not want to remove the newlines, but replace them with other whitespace, for example the space character, so that words remain intact.)

  • 10
    For the sake of completeness, it should be noted that there are four different new line characters in Unicode: \u000a or \n, which is a line feed; \u000d or \r, which is a carriage return; \u2028, a line separator; and \u2029, a paragraph separator. In practice though, the regex you posted is sufficient in most cases. – Mathias Bynens May 30 '12 at 17:02
  • 4
    @MathiasBynens Thanks, but U+2028 and U+2029 explicitly do not constitute line breaks in HTML (4.01), which the DOM tree and the textarea's live value are based on: w3.org/TR/html4/struct/text.html#whitespace – PointedEars May 30 '12 at 17:12
  • 4
    @PointedEars Yes, but HTML serialization doesn’t occur when setting the textarea’s .value dynamically, e.g. textarea.value = 'a\u2029b'; textarea.value.charAt(1) == '\u2029'; // true. But this is probably an edge case — as I said, in most cases your regex is sufficient. – Mathias Bynens May 30 '12 at 18:58
  • 2
    @MathiasBynens Because U+2028 and U+2029 do not constitute line breaks in HTML (4.01), that assignment does not display two lines in the textarea with any major DOM implementation and layout engine. So nobody in their right mind would make such an assignment in the first place. – PointedEars Jun 28 '12 at 22:44
  • 1
    I had to escape the backslash to get this working for me i.e. textIn.replace(/(\\r\\n|\\n|\\r)/gm, ""). +1 still. Thank you – Crab Bucket May 3 '17 at 9:01

How you'd find a line break varies between operating system encodings. Windows would be \r\n\t but Linux just uses \n and Apple uses \r.

I found this in javascript line breaks

someText = someText.replace(/(\r\n\t|\n|\r\t)/gm,"");

That should remove all kinds of line breaks.

  • 11
    Why is having the separate \r\n and \n and \r better than just /[\n\r]/g? Surely this is slower than it should be, as it only needs to check each character against the set of two possible options. – Gone Coding Dec 11 '14 at 17:58
  • 1
    When parsing returned data from memcached in node.js using /[\n\r]/g did the trick for me. Thanks Gone Coding! The option in the answer butchered it. – toystory Sep 21 at 3:11

String.trim() removes whitespace from the beginning and end of strings... including newlines.

const myString = "   \n \n\n Hey! \n I'm a string!!!         \n\n";
const trimmedString = myString.trim();

console.log(trimmedString);
// outputs: "Hey! \n I'm a string!!!"

Here's an example fiddle: http://jsfiddle.net/BLs8u/

NOTE! it only trims the beginning and end of the string, not line breaks or whitespace in the middle of the string.

  • 21
    This only removes line breaks from the beginning and end of the string. OP asked how to remove ALL line breaks. – Ian Walter Feb 1 '15 at 15:45
  • 1
    Yep, just adding as an option. – RobW Apr 13 at 21:47

You can use \n in a regex for newlines, and \r for carriage returns.

var str2 = str.replace(/\n|\r/g, "");

Different operating systems use different line endings, with varying mixtures of \n and \r. This regex will replace them all.

  • I think this will only replace the first occurence – Sebas May 29 '12 at 19:10
  • 3
    /\n|\r/g is more efficiently written /[\n\r]/g or even /[\n\r]+/g. Avoid alternation unless you absolutely need it. – PointedEars May 29 '12 at 19:56

If you want to remove all control characters, including CR and LF, you can use this:

myString.replace(/[^\x20-\x7E]/gmi, "")

It will remove all non-printable characters. This are all characters NOT within the ASCII HEX space 0x20-0x7E. Feel free to modify the HEX range as needed.

  • 2
    That will also remove some national characters from languages other than english.... – smentek Oct 25 '16 at 11:56
var str = "bar\r\nbaz\nfoo";

str.replace(/[\r\n]/g, '');

>> "barbazfoo"

To remove new line chars use that:

yourString.replace(/\r?\n?/g, '')

Then you can trim your string to remove leading and trailing spaces:

yourString.trim()

The simplest solution would be:

let str = '\t\n\r this  \n \t   \r  is \r a   \n test \t  \r \n';
str.replace(/\s+/g, ' ').trim();
console.log(str); // logs: "this is a test"

.replace() with /\s+/g regexp is changing all groups of white-spaces characters to a single space in the whole string then we .trim() the result to remove all exceeding white-spaces before and after the text.

Are considered as white-spaces characters:
[ \f\n\r\t\v​\u00a0\u1680​\u2000​-\u200a\u2028\u2029\u202f\u205f\u3000\ufeff]

A linebreak in regex is \n, so your script would be

var test = 'this\nis\na\ntest\nwith\newlines';
console.log(test.replace(/\n/g, ' '));

The answer provided by PointedEars is everything most of us need. But by following Mathias Bynens's answer, I went on a Wikipedia trip and found this: https://en.wikipedia.org/wiki/Newline.

The following is a drop-in function that implements everything the above Wiki page considers "new line" at the time of this answer.

If something doesn't fit your case, just remove it. Also, if you're looking for performance this might not be it, but for a quick tool that does the job in any case, this should be useful.

// replaces all "new line" characters contained in `someString` with the given `replacementString`
const replaceNewLineChars = ((someString, replacementString = ``) => { // defaults to just removing
  const LF = `\u{000a}`; // Line Feed (\n)
  const VT = `\u{000b}`; // Vertical Tab
  const FF = `\u{000c}`; // Form Feed
  const CR = `\u{000d}`; // Carriage Return (\r)
  const CRLF = `${CR}${LF}`; // (\r\n)
  const NEL = `\u{0085}`; // Next Line
  const LS = `\u{2028}`; // Line Separator
  const PS = `\u{2029}`; // Paragraph Separator
  const lineTerminators = [LF, VT, FF, CR, CRLF, NEL, LS, PS]; // all Unicode `lineTerminators`
  let finalString = someString.normalize(`NFD`); // better safe than sorry? Or is it?
  for (let lineTerminator of lineTerminators) {
    if (finalString.includes(lineTerminator)) { // check if the string contains the current `lineTerminator`
      let regex = new RegExp(lineTerminator.normalize(`NFD`), `gu`); // create the `regex` for the current `lineTerminator`
      finalString = finalString.replace(regex, replacementString); // perform the replacement
    };
  };
  return finalString.normalize(`NFC`); // return the `finalString` (without any Unicode `lineTerminators`)
});
  • 2
    First - for people finding this not using JS - "most" RE flavors support \R which is "all" linefeeds. Secondly - why not simply someString.replace(new RegExp(lineTerminators.join('|')), ''); – SamWhan Jun 8 '17 at 14:41
  • @ClasG, you make a good point. I think my line of thought when I wrote this was to only run replace() for the lineTerminators that existed in the string for performance reasons. – futz.co Jun 8 '17 at 16:00

Try this code, works on all platforms:

var break_for_winDOS = 'test\r\nwith\r\nline\r\nbreaks';
var break_for_linux = 'test\nwith\nline\nbreaks';
var break_for_older_mac = 'test\rwith\rline\rbreaks';

break_for_winDOS.replace(/(\r?\n|\r)/gm, ' ');
//output
'test with line breaks'

break_for_linux.replace(/(\r?\n|\r)/gm, ' ');
//output
'test with line breaks'

break_for_older_mac.replace(/(\r?\n|\r)/gm, ' ');
//output
'test with line breaks'

Another trick, if you want to get numbers, is to use parseFloat() or parseInt() and it will return you nice number

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