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I have the following characters being repeated at the end of every line ^[[00m

How can I remove them from each line using vim editor?

When I give this command; :%s/^[[00m//g, it doesn't work.

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2  
Noting that the ^[ represents the ESC character, I'd take the easy way out: %s/.....$//, or %s/..00m$//, since the ESC and [ will give you issues is you're not conversant with VIM's (or PERL's!) regex parsing. But yeah, that '^[' thing will get you. put your cursor on it, notice it never touches the [ of ^[, which means it's a single character. Something I find VERY helpful is to add the value of the char under the cursor to your statusbar, which of course I can't find. Try putting cursor on a character and typing 'ga', it'll show you what that character is. –  lornix Jul 10 '12 at 10:08

7 Answers 7

You could use :%s/.\{6}$// to literally delete 6 characters off the end of each line.

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I would use the global command.

Try this:

:g/$/norm $xxxxxx

or even:

:g/$/norm $5Xx

I think the key to this problem is to keep it generic and not specific to the characters you are trying to delete. That way the technique you learn will be applicable to many other situations.

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3  
It is good to know how to remove the last # characters from every line but I think it is important to inform everyone what you are doing exactly. Something like: :g/$/ (for every line)?, norm run the following command, $ go to the end of the line, xxxxxx remove 6 characters. Most importantly explain the lesser known like norm. –  DutGRIFF Dec 9 '13 at 18:10
    
2 years later.. still a great answer. thanks –  N8TRO Feb 28 at 10:16
    
By the way, the capital X is like x, but deletes backwards. –  Evgeni Sergeev Jul 19 at 2:48

Assuming this is an ANSI escape sequence, the ^[ stands for a single <Esc> character. You have to enter it by pressing Ctrl + V (or Ctrl + Q) on many Windows Vim installations), followed by Esc. Notice how this is then highlighted in a slightly different color, too.

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if they are all aligning you can do a visiual-block selection and delete it then. Otherwise if you have a sequence unknown how to input, you can visually select it by pressing v, then mark and yank it y (per default into register "). Then you type :%s/<C-R>"//g to delete it.

Note:

  • <C-R>" puts the content of register " at the cursor position.
  • If you yanked it into another register say "ay (yank to register a - the piglatin yank, as I call it) and forgot where you put it you can look at the contents of your registers with :reg
  • <C-R> is vimspeak for Ctrl+R
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It's easy enough to replace the last six characters of every line being agnostic to what those characters are, but it leaves considerable room for error so I wouldn't recommend it. Also, if ^[ is an escape character, you're really looking for five characters.

Escape code

Using ga on the character ^[ you can determine whether it's an escape code, in which case the status bar would display

<^[>  27,  Hex 1b,  Octal 033

Assuming it is, you can replace everything using

:%s/\%x1b\[00m$//gc

With \%x1b coming from the hex value above. Note also that you have to escape the bracket ([) because it's a reserved character in Vim regex. $ makes sure it occurs at the end of a line, and the /gc flags will make it global and confirm each replacement (you can press a to replace all).

Not escape code

It's a simple matter of escaping then. You can use either of the two below:

:%s/\^\[\[00m$//gc
:%s/\V^[[00m\$//gc
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Have you tried something like this to delete:

:%s/^[[00m//gc
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This seems to work fine when the line is more than 5 chars long:

:perldo $_ = substr $_, 0, -5

but when the line is 5 or less chars long it does nothing. Maybe there is a easy way in perl to delete the last 5 chars of a string, but I don't really know it:)

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