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Let's say in the I have all these files in the a directory:

$ ls
file1 file2 file3 file4 ... file200

I want to remove all files but file4. In zsh I'm used to do like this:

$ rm ^file4

How would I do this with fish?

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2 Answers 2

You could use the find command, which is more powerful in general. Although a bit more unconvenient to write.

find . -not -name file4 -type f | xargs rm

Edit

A shorter one for the simpler use cases:

ls | grep -v file4 | xargs rm
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True, it may be easier in the end to forget about globbing. –  Danny Navarro Feb 14 at 9:36

Here's one way.

set files *
set i 1; for f in $files; test $f = file4; and break; or set i (math $i+1); end
set -e files[$i]
echo rm $files

Since fish aims to be lean, there's not much in the way of array or filename manipulation. You might as well stick to a plain loop:

for f in *; test $f != file4; and echo rm $f; end

Note the code example at http://fishshell.com/docs/current/commands.html#continue

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Frankly I still jump into bash to do stuff. My fingers are still unlearning the bash vi readline mode. –  glenn jackman Feb 13 at 16:07
    
Well, this is quite verbose but it could be recycled into a custom function. I'll leave the question unanswered for a while in case something else comes along. –  Danny Navarro Feb 13 at 18:46

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