9

I have a directory src/ that contain many .cc files and its binary. For example:

src/
  |_ foo.cc
  |_ bar.cc
  |_ qux.cc
  |_ thehead.hh
  |_ foo  (executable/binary)
  |_ bar  (executable/binary)
  |_ qux  (executable/binary)
  |_ makefile

In reality there are many .cc and executable files.

I need to remove those binaries in a global way without having to list all the files. Is there a fast and compact way to do it?

I tried:

$ rm *

but it removes all the files include .cc and .hh files.

I am aware of this command:

$ rm foo bar qux ....

but then we still have to list all the files one by one.

11 Answers 11

20

Here you go:

ls | grep -v "\." | xargs rm

The grep -v says "only allow filenames that don't contain a dot", and the xargs rm says "then pass the list of filenames to rm".

4
  • 5
    @Richie: thanks. Is there a way to exclude "makefile"? Which we want to keep.
    – neversaint
    May 13, 2009 at 7:04
  • 4
    @foolishbrat: Just add another grep: ls | grep -v "\." | grep -v makefile | xargs rm May 13, 2009 at 7:51
  • 2
    how about excluding subdirectories? guessing you need to use find instead of ls for that? also, you can exclude files with . and Makefile with one grep like so: ls | grep -v "\.\|Makefile"
    – sixty4bit
    Feb 23, 2016 at 13:04
  • 1
    complete mess and misleading. I wonder about so many upvotes.
    – Valentin H
    Apr 25, 2016 at 8:30
17

you can run

find . -perm +100 -type f -delete
1
  • 3
    Just for clarity, this only checks whether the user's exec bit is set, and it's using deprecated syntax. See man find for the gory details. May 13, 2009 at 7:14
12

Use the find. What you want is this:

find . -type f -executable -exec rm '{}' \;

Removing everything without an extension can also be done:

find . -type f -not -iname "*.*" -exec rm '{}' \;

The former option does not delete the Makefile, and is thus to be preferred. I think kcwu's answer shows a nice way to improve the above using the -delete option :

find . -type f -executable -delete
find . -type f -not -iname "*.*" -delete

Edit: I use GNU findutils find, version 4.4.0, under Ubuntu 8.10. I was not aware the -executable switch is so uncommon.

6
  • @Stephan: I got "find: -executable: unknown option"
    – neversaint
    May 13, 2009 at 7:06
  • What find are you using? -executable doesn't work for me. However, I can do use -perm /ugo+x with GNU find. May 13, 2009 at 7:10
  • @foolishbrat: perhaps you're using an older option of find. Try kcwu's answer.
    – Stephan202
    May 13, 2009 at 7:10
  • @Matthew: I updated the answer. I suppose most alternatives to -executable are more portable.
    – Stephan202
    May 13, 2009 at 7:16
  • Interesting. I'm using Ubuntu 8.04 (only one version behind, albeit LTS). May 13, 2009 at 8:31
6

I would rather go for a clean target in the Makefile. Most probably it already contains a list of these binaries, so adding a clean target would not require much effort.

4
  • And it's safer. Just think about what happens if you use one of the other grep'ish solutions and someone decides that it would be a good idea to have a "README" file ;-)
    – lothar
    May 13, 2009 at 22:32
  • 1
    How would you write the make clean target to remove all the compiled executables? I thought that was the point of the find and ls | grep type answers, to put under clean: and catch all the executables? Or am I missing a point somewhere?
    – Harry
    Jan 7, 2014 at 21:30
  • Makefiles are made of static instructions describing a map which sources files are used to generate a specific target file and how. Therefore you usually have a list of all possible target executables in a variable named TARGETS or similar.
    – raimue
    Jan 9, 2014 at 13:47
  • so is it actually a better practice to specifically list out every single executable in the Makefile's clean target?
    – sixty4bit
    Feb 23, 2016 at 13:09
3
find . -perm /ugo+x -delete

Corrected version of Stephan202's first command.

EDIT: Also try:

find . -perm /111 -delete

which uses the octal equivalent

2
  • @Matt: under MacOsX, I get this: find: -perm: /ugo+x: illegal mode string
    – neversaint
    May 13, 2009 at 9:02
  • On my Mac, the following works: find . -type f -perm +ugo=x finds files that are executable for any of ugo, find . -type f -perm -ugo=x finds files that are executable for all of ugo. Apr 10, 2020 at 0:37
2

Instead of passing -exec rm '{}' \; to find one can use -delete arg.

2

Use find to remove all files (not folders) that do not contain a dot characeter:

find . \! -name "*.*" -type f -exec rm {} \;
1
  • absence of . doesn't mean it is executable
    – Valentin H
    Apr 25, 2016 at 8:36
2

i suggest using first

find . -not -name "*.*" -exec ls -l {} \;

to see the name of files that are matched.

and then, change the ls -l to rm

find . -not -name "*.*" -exec rm {} \;

also, you can use a confirm prompt to make it more safe:

find . -not -name "*.*" -exec rm -i {} \;
2

findutils deprecated +omode syntax, now you can use /omode instead:

find . -perm /100 -type f -delete
0

You could just compile your executables in /bin and simply rm /bin/*. Simple and easy.

0

Wow, I obtain so many methods from your answer~ And I want to share with you a method, though it's not very concise. With ls -F, you can get files with * or /, which are executable file and directory. And then you can rm them with sed, this method is useful in some situation such as a.out file. The Bash code is as follows.

rm `ls -F |grep \*|sed 's/.$//'`

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