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How do I remove the carriage return character (\r) and the new line character(\n) from the end of a string?

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9 Answers 9

up vote 78 down vote accepted

This will trim off any combination of carriage returns and newlines from the end of s:

s = s.TrimEnd(new char[] { '\r', '\n' });

Edit: Or as JP kindly points out, you can spell that more succinctly as:

s = s.TrimEnd('\r', '\n');
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5  
Take note of the params keyword in the declaration of TrimEnd, it let's you pass multiple instances of a character instead of the array. msdn.microsoft.com/en-us/library/w5zay9db(VS.71).aspx –  JP Alioto May 16 '09 at 18:59
1  
How about this: s = s.TrimEnd(System.Environment.NewLine.ToCharArray()); –  Ε Г И І И О Oct 6 '12 at 21:11
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I've been writing c# since v1.0 came out (10 years ago). Now you tell me about TrimEnd. Doh! –  s15199d Dec 28 '12 at 20:05
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Just out of interest, all you really need is s = s.TrimEnd() - as the docs say: If trimChars is null or an empty array, Unicode white-space characters are removed instead. - see String.TrimEnd –  Stuart Wood Mar 12 '13 at 12:37
    
@StuartWood: ...which is not what Avik asked for. He asked specifically for '\r' and '\n' and nothing else, not the space character ' ' for instance. –  RichieHindle Mar 12 '13 at 13:11

This should work ...

var tst = "12345\n\n\r\n\r\r";
var res = tst.TrimEnd( '\r', '\n' );
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String temp = s.replace("\r\n","").trim();

s being the original string.

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4  
That will also: 1) Remove \r\n from the middle of the string, 2) Remove any whitespace characters from the start of the string, and 3) remove any whitespace characters from the end of the string. –  RichieHindle May 16 '09 at 20:48
    
True, I assumed only one /r/n at the end. It wasn't mentioned in the orginal post. I'm not sure that warrents a -1 vote –  Crash893 May 17 '09 at 0:16
    
Exactly what I was looking for. Thanks. –  Chris Lively Jul 17 '12 at 18:38
    
Is using replace() then trim() not overkill when TrimEnd() can do the job alone, or am I missing something? –  Matthew T. Baker May 28 at 9:07

If you are using multiple platforms you are safer using this method.

value.TrimEnd(System.Environment.NewLine.ToCharArray());

It will account for different newline and carriage-return characters.

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JP's method -- tst.TrimEnd( '\r', '\n' ) -- is reasonably "safe" in practice since major EOLs are [currently] just different combos of \r and \n, but alexw's is the "right" answer. Let the CLR tell you what chars are in this platform's newline. EOL hasn't always been combos of 0Ds and 0As –  ruffin Apr 26 at 15:23
    
I used to use Environment.NewLine but it didn't seem to handle instances where \r was present without \n. TrimEnd('r','\n') seems to be more reliable in this case. –  Matthew T. Baker May 28 at 9:09

For us VBers:

TrimEnd(New Char() {ControlChars.Cr, ControlChars.Lf})
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If there's always a single CRLF, then:

myString = myString.Substring(0, myString.Length - 2);

If it may or may not have it, then:

Regex re = new Regex("\r\n$");
re.Replace(myString, "");

Both of these (by design), will remove at most a single CRLF. Cache the regex for performance.

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This was too easy -- for me I'm filtering out certain email items. I'm writing my own custom email junk filter. With \r and/or \n in the string it was wiping out all items instead of filtering.

So, I just did filter = filter.Remove('\n') and filter = filter.Remove('\r'). I'm making my filter such that an end user can use Notepad to directly edit the file so there's no telling where these characters might embed themselves -- could be other than at the start or end of the string. So removing them all does it.

The other entries all work but Remove might be the easiest?

I learned quite a bit more about Regex from this post -- pretty cool work with its use here.

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Looks like you could do just filter = filter.Remove('\n').Remove('\r'); –  John Saunders Jan 12 '13 at 19:32
string k = "This is my\r\nugly string. I want\r\nto change this. Please \r\n help!";
k = System.Text.RegularExpressions.Regex.Replace(k, @"\r\n+", " ");
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varName.replace(/[\r\n]/mg, '')                                              
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