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This is my string:

'ls\r\n\x1b[00m\x1b[01;31mexamplefile.zip\x1b[00m\r\n\x1b[01;31m'

I was using code to retrieve the output from a SSH command and I want my string to only contain 'examplefile.zip'

What I can use to remove the extra escape sequences?

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3 Answers 3

up vote 18 down vote accepted

Delete them with a regular expression:

import re

ansi_escape = re.compile(r'\x1b[^m]*m')
ansi_escape.sub('', sometext)

Demo:

>>> import re
>>> ansi_escape = re.compile(r'\x1b[^m]*m')
>>> sometext = 'ls\r\n\x1b[00m\x1b[01;31mexamplefile.zip\x1b[00m\r\n\x1b[01;31m'
>>> ansi_escape.sub('', sometext)
'ls\r\nexamplefile.zip\r\n'
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Hi, I just tried that. My new string looks like this: ls (next line) arrow pointing left [00m arrow pointing left [01;31mexamplefile.zip arrow pointing left [00m (next line) arrow pointing left [01;31m wish I could include a screen shot... –  SpartaSixZero Feb 4 '13 at 19:19
    
Update your question with the repr() of the string. Your initial example works fine for the regular expression I supplied, it should catch all the others too, from what I can gather from your comment. –  Martijn Pieters Feb 4 '13 at 19:24
    
Works now! Thanks a lot! –  SpartaSixZero Feb 4 '13 at 19:28
    
Trying to break the regular expression down. Isn't ^ the special character for excluding characters? How does [^m] work? –  SpartaSixZero Feb 4 '13 at 20:19
    
@user1557674: see the documentation; in a character class ([...]), a ^ (caret) at the start inverts the class. Any character not in the class matches. So [^...] will match any character not named in the list. –  Martijn Pieters Feb 4 '13 at 20:23

Use below code this unescapes any esapces charcter from the Input string

Regex.Unescape(value);
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In what language? –  Redoubts Jun 4 at 19:12
    
Code it in C# dot net. –  Sagar Jun 10 at 5:31

if you want to remove the \r\n bit, you can pass the string through this function (written by sarnold):

def stripEscape(string):
    """ Removes all escape sequences from the input string """
    delete = ""
    i=1
    while (i<0x20):
        delete += chr(i)
        i += 1
    t = string.translate(None, delete)
    return t

Careful though, this will lump together the text in front and behind the escape sequences. So, using Martijn's filtered string 'ls\r\nexamplefile.zip\r\n', you will get lsexamplefile.zip. Note the ls in front of the desired filename.

I would use the stripEscape function first to remove the escape sequences, then pass the output to Martijn's regular expression, which would avoid concatenating the unwanted bit.

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