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I use default Linux Mint .bashrc, here is full bashrc, the output is like:

enter image description here

some dir has green background, How to remove it?

  • Try to remove the alias: alias ls='ls --color=auto' – Maroun Nov 13 '16 at 14:31
  • @MarounMaroun I hope keep color but change "green background", for ex, change it to "red background" – chikadance Nov 14 '16 at 9:04
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To remove all background colors, stick the following into your ~/.bashrc :

eval "$(dircolors -p | \
    sed 's/ 4[0-9];/ 01;/; s/;4[0-9];/;01;/g; s/;4[0-9] /;01 /' | \
    dircolors /dev/stdin)"
| improve this answer | |
  • 1
    They are removed for the output of ls, but they still show when using autocomplete in zsh. Any workaround for this? – Alfredo Hernández Oct 13 '18 at 0:47
  • 2
    The colors for ls are set in the LS_COLORS environment variable, if the zsh code uses these colors it should work correctly, if it uses something else it will not work. – Rafael Kitover Oct 17 '18 at 16:19
  • 1
    I found the issue. For some weird reason, the eval needs to be defined after the plugins, but before source $ZSH/oh-my-zsh.sh (I use Oh My Zsh), otherwise it's not fully loaded. – Alfredo Hernández Oct 21 '18 at 7:04
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The explanation is given in the output of dircolors -p, e.g.,

screenshot with dircolors -p

Of course dircolors doesn't color its output. I used this script:

#!/usr/bin/perl -w

use strict;

our $comment = "\e[31m";
our $reset   = "\e[K\e[m";

our @data;

open my $fh, "dircolors -p|" or die "cannot read from dircolors";
@data = <$fh>;
close $fh;

printf "\e[H\e[2J";

for my $n ( 0 .. $#data ) {
    chomp $data[$n];
    if ( $data[$n] =~ /^\s*#/ ) {
        printf "%s%s%s\n", $comment, $data[$n], $reset;
    }
    elsif ( $data[$n] =~ /^\s*TERM\s/ ) {
        printf "%s\n", $data[$n];
    }
    elsif ( $data[$n] =~ /^\s*[^\s]+\s+\d+(;\d+)?\s*(#.*)?$/ ) {
        my $code = $data[$n];
        $code =~ s/^\s*[^\s]+\s+//;
        $code =~ s/\s.*//;
        my $data = $data[$n];
        $data =~ s/(#.*)$/$comment$1$reset/;
        $data =~ s/^(\s*)([^\s]+)(\s+)/$1\e[${code}m$2\e[m$3/;
        printf "%s\n", $data;
    }
    else {
        printf "%s\n", $data[$n];
    }
}

1;

To get rid of the background, you can either change the directory permissions, or use a different database to set your LS_COLORS environment variable. The dircolors documentation is the place to go.

| improve this answer | |
4
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Quick solution:

Enter these two commands in the Bash command line:

dircolors -p | sed 's/;42/;01/' > ~/.dircolors
source ~/.bashrc

Explanation:

There is a program dircolors intended to set up the config for ls. The default ~/.bashrc script loads the config with these lines:

# enable color support of ls and also add handy aliases
if [ -x /usr/bin/dircolors ]; then
    test -r ~/.dircolors && eval "$(dircolors -b ~/.dircolors)" || eval "$(dircolors -b)"

Because by default the file ~/.dircolors does not actually exist the script uses the built-in Bash config (eval "$(dircolors -b)").

To remove green background for o+w ('writable by others' permission marked by last 'w' in drwxrwxrwx notation in ls) directories you need to create this file basing on the current (built-in) config. In the command line type the following:

dircolors -p > ~/.dircolors

dircolor -p prints the current config and > redirects the output to the given file.

Now open the file in an editor and find the following line:

OTHER_WRITABLE 34;42 # dir that is other-writable (o+w) and not sticky

change the number 42 (denoting green background) to 01 (no background) and save changes. Alternatively you can do it with sed program and its substitution feature ('s/PATTERN/NEW_STRING/' syntax) from the command line directly:

sed -i 's/;42/;01/' ~/.dircolors

Above 2 things can be achieved by a single command using a pipe '|':

dircolors -p | sed 's/;42/;01/' > ~/.dircolors

To get the change to take the effect (without restarting the shell), type:

source ~/.bashrc
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