Is there a simple way, in a pretty standard UNIX environment with bash, to run a command to delete all but the most recent X files from a directory?

To give a bit more of a concrete example, imagine some cron job writing out a file (say, a log file or a tar-ed up backup) to a directory every hour. I'd like a way to have another cron job running which would remove the oldest files in that directory until there are less than, say, 5.

And just to be clear, there's only one file present, it should never be deleted.

17 Answers 17

up vote 76 down vote accepted

The problems with the existing answers:

  • inability to handle filenames with embedded spaces or newlines.
    • in the case of solutions that invoke rm directly on an unquoted command substitution (rm `...`), there's an added risk of unintended globbing.
  • inability to distinguish between files and directories (i.e., if directories happened to be among the 5 most recently modified filesystem items, you'd effectively retain fewer than 5 files, and applying rm to directories will fail).

wnoise's answer addresses these issues, but the solution is GNU-specific (and quite complex).

Here's a pragmatic, POSIX-compliant solution that comes with only one caveat: it cannot handle filenames with embedded newlines - but I don't consider that a real-world concern for most people.

For the record, here's the explanation for why it's generally not a good idea to parse ls output: http://mywiki.wooledge.org/ParsingLs

ls -tp | grep -v '/$' | tail -n +6 | xargs -I {} rm -- {}

The above is inefficient, because xargs has to invoke rm once for each filename.
Your platform's xargs may allow you to solve this problem:

If you have GNU xargs, use -d '\n', which makes xargs consider each input line a separate argument, yet passes as many arguments as will fit on a command line at once:

ls -tp | grep -v '/$' | tail -n +6 | xargs -d '\n' -r rm --

-r (--no-run-if-empty) ensures that rm is not invoked if there's no input.

If you have BSD xargs (including on OS X), you can use -0 to handle NUL-separated input, after first translating newlines to NUL (0x0) chars., which also passes (typically) all filenames at once (will also work with GNU xargs):

ls -tp | grep -v '/$' | tail -n +6 | tr '\n' '\0' | xargs -0 rm --

Explanation:

  • ls -tp prints the names of filesystem items sorted by how recently they were modified , in descending order (most recently modified items first) (-t), with directories printed with a trailing / to mark them as such (-p).
  • grep -v '/$' then weeds out directories from the resulting listing, by omitting (-v) lines that have a trailing / (/$).
    • Caveat: Since a symlink that points to a directory is technically not itself a directory, such symlinks will not be excluded.
  • tail -n +6 skips the first 5 entries in the listing, in effect returning all but the 5 most recently modified files, if any.
    Note that in order to exclude N files, N+1 must be passed to tail -n +.
  • xargs -I {} rm -- {} (and its variations) then invokes on rm on all these files; if there are no matches at all, xargs won't do anything.
    • xargs -I {} rm -- {} defines placeholder {} that represents each input line as a whole, so rm is then invoked once for each input line, but with filenames with embedded spaces handled correctly.
    • -- in all cases ensures that any filenames that happen to start with - aren't mistaken for options by rm.

A variation on the original problem, in case the matching files need to be processed individually or collected in a shell array:

# One by one, in a shell loop (POSIX-compliant):
ls -tp | grep -v '/$' | tail -n +6 | while IFS= read -r f; do echo "$f"; done

# One by one, but using a Bash process substitution (<(...), 
# so that the variables inside the `while` loop remain in scope:
while IFS= read -r f; do echo "$f"; done < <(ls -tp | grep -v '/$' | tail -n +6)

# Collecting the matches in a Bash *array*:
IFS=$'\n' read -d '' -ra files  < <(ls -tp | grep -v '/$' | tail -n +6)
printf '%s\n' "${files[@]}" # print array elements
  • 2
    Certainly better than most other answers here, so I'm happy to lend my support, even inasmuch as I consider ignoring the newline case to be a thing to be done only with caution. – Charles Duffy Jan 18 '16 at 20:13
  • 1
    If you do ls not in the current directory, then the paths to files will contain '/', which means that grep -v '/' won't match anything. I believe grep -v '/$' is what you want to only exclude directories. – waldol1 Feb 29 '16 at 12:33
  • 1
    @waldol1: Thanks; I've updated the answer to include your suggestion, which also makes the grep command conceptually clearer. Note, however, that the problem you describe would not have surfaced with a single directory path; e.g., ls -p /private/var would still only print mere filenames. Only if you passed multiple file arguments (typically via a glob) would you see actual paths in the output; e.g., ls -p /private/var/* (and you'd also see the contents of matching subdirectories, unless you also included -d). – mklement0 Feb 29 '16 at 13:41

Remove all but 5 (or whatever number) of the most recent files in a directory.

rm `ls -t | awk 'NR>5'`
  • 1
    Concise and relatively readable. I like it! – James T Snell Feb 6 '14 at 20:34
  • 2
    I needed this to only consider my archive files. change ls -t to ls -td *.bz2 – James T Snell Feb 6 '14 at 20:37
  • 2
    I used this for directories by changing it to rm -rf ls -t | awk 'NR>1' (I only wanted the most recent). Thanks! – lohiaguitar91 Jul 9 '14 at 18:07
  • 8
    ls -t | awk 'NR>5' | xargs rm -f if you prefer pipes and you need to suppress the error if there is nothing to be deleted. – H2ONaCl Jul 30 '14 at 7:58
  • 12
    Concise and readable, perhaps, but dangerous to use; if trying to delete a file created with touch 'hello * world', this would delete absolutely everything in the current directory. – Charles Duffy Jan 18 '16 at 20:16
(ls -t|head -n 5;ls)|sort|uniq -u|xargs rm

This version supports names with spaces:

(ls -t|head -n 5;ls)|sort|uniq -u|sed -e 's,.*,"&",g'|xargs rm
  • 18
    This command will not correctly handle files with spaces in the names. – tylerl Apr 13 '10 at 20:33
  • 5
    (ls -t|head -n 5;ls) is a command group. It prints the 5 most recent files twice. sort puts identical lines together. uniq -u removes duplicates, so that all but the 5 most recent files remains. xargs rm calls rm on each of them. – Fabien Nov 13 '14 at 14:24
  • 14
    This deletes all your files if you have 5 or less! Add --no-run-if-empty to xargs as in (ls -t|head -n 5;ls)|sort|uniq -u|xargs --no-run-if-empty rm please update the answer. – Gonfi den Tschal Apr 27 '15 at 21:29
  • 3
    Even the one that "supports names with spaces" is dangerous. Consider a name that contains literal quotes: touch 'foo " bar' will throw off the whole rest of the command. – Charles Duffy Jan 18 '16 at 16:55
  • 2
    ...it's safer to use xargs -d $'\n' than to inject quotes into your content, though NUL-delimiting the input stream (which requires using something other than ls to really do right) is the ideal option. – Charles Duffy Jan 18 '16 at 17:00

Simpler variant of thelsdj's answer:

ls -tr | head -n -5 | xargs --no-run-if-empty rm 

ls -tr displays all the files, oldest first (-t newest first, -r reverse).

head -n -5 displays all but the 5 last lines (ie the 5 newest files).

xargs rm calls rm for each selected file.

  • 14
    Need to add --no-run-if-empty to xargs so that it doesn't fail when there are fewer than 5 files. – Tom May 7 '14 at 18:31
  • 1
    -5 doesn't work on bsd and macos :( – Aruna Herath Sep 11 '15 at 18:13
  • ls -1tr | head -n -5 | xargs rm <---------- you need to add a -1 to the ls or you won't get a list output for head to properly work against – Al Joslin Sep 15 '15 at 21:02
  • 3
    @AlJoslin, -1 is default when output is to a pipeline, so it isn't mandatory here. This has much larger issues, related to default behavior of xargs when parsing names with spaces, quotes, &c. – Charles Duffy Jan 18 '16 at 20:18
  • seems that the --no-run-if-empty isn't recognized in my shell. I'm using Cmder on windows. – StayFoolish Sep 6 at 3:39
find . -maxdepth 1 -type f -printf '%T@ %p\0' | sort -r -z -n | awk 'BEGIN { RS="\0"; ORS="\0"; FS="" } NR > 5 { sub("^[0-9]*(.[0-9]*)? ", ""); print }' | xargs -0 rm -f

Requires GNU find for -printf, and GNU sort for -z, and GNU awk for "\0", and GNU xargs for -0, but handles files with embedded newlines or spaces.

  • 2
    If you want to remove directories, just change the -f to a -d and add a -r to the rm. find . -maxdepth 1 -type d -printf '%T@ %p\0' | sort -r -z -n | awk 'BEGIN { RS="\0"; ORS="\0"; FS="" } NR > 5 { sub("^[0-9]*(.[0-9]*)? ", ""); print }' | xargs -0 rm -rf – alex Jan 10 '11 at 19:19
  • 1
    At a glance, I'm surprised at the complexity (or, for that matter, necessity) of the awk logic. Am I missing some requirements inside the OP's question that make it necessary? – Charles Duffy Jan 18 '16 at 20:25
  • @Charles Duffy: The sub() removes the timestamp, which is what is sorted on. The timestamp produced by "%T@" may include a fraction part. Splitting on space with FS breaks paths with embedded spaces. I suppose removing up through first space works, but is nearly as difficult to read. The RS and ORS separators can't be set on the command line, because they are NULs. – wnoise Jan 19 '16 at 21:07
  • 1
    @wnoise, my usual approach to this is to pipe into a shell while read -r -d ' '; IFS= -r -d ''; do ... loop -- the first read terminates on the space, while the second goes on to the NUL. – Charles Duffy Jan 19 '16 at 21:08
  • err, IFS= read -r -d '', of course. – Charles Duffy Jan 19 '16 at 21:38

All these answers fail when there are directories in the current directory. Here's something that works:

find . -maxdepth 1 -type f | xargs -x ls -t | awk 'NR>5' | xargs -L1 rm

This:

  1. works when there are directories in the current directory

  2. tries to remove each file even if the previous one couldn't be removed (due to permissions, etc.)

  3. fails safe when the number of files in the current directory is excessive and xargs would normally screw you over (the -x)

  4. doesn't cater for spaces in filenames (perhaps you're using the wrong OS?)

  • 4
    What happens if find returns more filenames than can be passed on a single command line to ls -t? (Hint: You get multiple runs of ls -t, each of which is only individually sorted, rather than having a globally-correct sort order; thus, this answer is badly broken when running with sufficiently large directories). – Charles Duffy Jan 18 '16 at 20:14
ls -tQ | tail -n+4 | xargs rm

List filenames by modification time, quoting each filename. Exclude first 3 (3 most recent). Remove remaining.

EDIT after helpful comment from mklement0 (thanks!): corrected -n+3 argument, and note this will not work as expected if filenames contain newlines and/or the directory contains subdirectories.

  • The -Q option doesn't seem to exist on my machine. – Pierre-Adrien Buisson Feb 13 '14 at 10:59
  • 4
    Hmm, the option has been in GNU core utils for ~20 years, but is not mentioned in BSD variants. Are you on a mac? – Mark Feb 14 '14 at 2:59
  • I am indeed. Didn't think there was differences for this kind of really basic commands between up-to-date systems. Thanks for your answer ! – Pierre-Adrien Buisson Feb 14 '14 at 15:10
  • 3
    @Mark: ++ for -Q. Yes, -Q is a GNU extension (here's the POSIX ls spec). A small caveat (rarely a problem in practice): -Q encodes embedded newlines in filenames as literal \n, which rm won't recognize. To exclude the first 3, the xargs argument must +4. Finally, a caveat that applies to most other answers too: your command will only work as intended if there are no subdirectories in the current dir. – mklement0 Jan 18 '16 at 20:09
  • 1
    When there is nothing to remove, you have call xargs with --no-run-if-empty option : ls -tQ | tail -n+4 | xargs --no-run-if-empty rm – Olivier Lecrivain Apr 30 '16 at 14:53

Ignoring newlines is ignoring security and good coding. wnoise had the only good answer. Here is a variation on his that puts the filenames in an array $x

while IFS= read -rd ''; do 
    x+=("${REPLY#* }"); 
done < <(find . -maxdepth 1 -printf '%T@ %p\0' | sort -r -z -n )
  • 2
    I'd suggest clearing IFS -- otherwise you'd risk losing trailing whitespace from filenames. Can scope that to the read command: while IFS= read -rd ''; do – Charles Duffy Jan 18 '16 at 17:05
  • @charlesduffy Done – Ian Kelling Jan 18 '16 at 20:45
  • 1
    why "${REPLY#* }"? – msciwoj Jan 28 '16 at 16:15

If the filenames don't have spaces, this will work:

ls -C1 -t| awk 'NR>5'|xargs rm

If the filenames do have spaces, something like

ls -C1 -t | awk 'NR>5' | sed -e "s/^/rm '/" -e "s/$/'/" | sh

Basic logic:

  • get a listing of the files in time order, one column
  • get all but the first 5 (n=5 for this example)
  • first version: send those to rm
  • second version: gen a script that will remove them properly
  • Don't forget the while read trick for dealing with spaces: ls -C1 -t | awk 'NR>5' | while read d ; do rm -rvf "$d" ; done – pinkeen Nov 17 '14 at 13:00
  • 1
    @pinkeen, not quite safe as given there. while IFS= read -r d would be a bit better -- the -r prevents backslash literals from being consumed by read, and the IFS= prevents automatic trimming of trailing whitespace. – Charles Duffy Jan 18 '16 at 20:22
  • 3
    BTW, if one is worried about hostile filenames, this is an extremely dangerous approach. Consider a file created with touch $'hello \'$(rm -rf ~)\' world'; the literal quotes inside the filename would counter the literal quotes you're adding with sed, resulting in the code within the filename being executed. – Charles Duffy Jan 18 '16 at 20:23
  • 1
    (to be clear, the "this" above was referring to the | sh form, which is the one with the shell injection vulnerability). – Charles Duffy Jan 19 '16 at 21:13

With zsh

Assuming you don't care about present directories and you will not have more than 999 files (choose a bigger number if you want, or create a while loop).

[ 6 -le `ls *(.)|wc -l` ] && rm *(.om[6,999])

In *(.om[6,999]), the . means files, the o means sort order up, the m means by date of modification (put a for access time or c for inode change), the [6,999] chooses a range of file, so doesn't rm the 5 first.

  • Intriguing, but for the life of me I couldn't get the sorting glob qualifier (om) to work (any sorting I've tried showed no effect - neither on OSX 10.11.2 (tried with zsh 5.0.8 and 5.1.1), nor on Ubuntu 14.04 (zsh 5.0.2)) - what am I missing?. As for the range endpoint: no need to hard-code it, simply use -1 to refer to the last entry and thus include all remaining files: [6,-1]. – mklement0 Jan 19 '16 at 5:42

I realize this is an old thread, but maybe someone will benefit from this. This command will find files in the current directory :

for F in $(find . -maxdepth 1 -type f -name "*_srv_logs_*.tar.gz" -printf '%T@ %p\n' | sort -r -z -n | tail -n+5 | awk '{ print $2; }'); do rm $F; done

This is a little more robust than some of the previous answers as it allows to limit your search domain to files matching expressions. First, find files matching whatever conditions you want. Print those files with the timestamps next to them.

find . -maxdepth 1 -type f -name "*_srv_logs_*.tar.gz" -printf '%T@ %p\n'

Next, sort them by the timestamps:

sort -r -z -n

Then, knock off the 4 most recent files from the list:

tail -n+5

Grab the 2nd column (the filename, not the timestamp):

awk '{ print $2; }'

And then wrap that whole thing up into a for statement:

for F in $(); do rm $F; done

This may be a more verbose command, but I had much better luck being able to target conditional files and execute more complex commands against them.

found interesting cmd in Sed-Onliners - Delete last 3 lines - fnd it perfect for another way to skin the cat (okay not) but idea:

 #!/bin/bash
 # sed cmd chng #2 to value file wish to retain

 cd /opt/depot 

 ls -1 MyMintFiles*.zip > BigList
 sed -n -e :a -e '1,2!{P;N;D;};N;ba' BigList > DeList

 for i in `cat DeList` 
 do 
 echo "Deleted $i" 
 rm -f $i  
 #echo "File(s) gonzo " 
 #read junk 
 done 
 exit 0

Removes all but the 10 latest (most recents) files

ls -t1 | head -n $(echo $(ls -1 | wc -l) - 10 | bc) | xargs rm

If less than 10 files no file is removed and you will have : error head: illegal line count -- 0

To count files with bash

I needed an elegant solution for the busybox (router), all xargs or array solutions were useless to me - no such command available there. find and mtime is not the proper answer as we are talking about 10 items and not necessarily 10 days. Espo's answer was the shortest and cleanest and likely the most unversal one.

Error with spaces and when no files are to be deleted are both simply solved the standard way:

rm "$(ls -td *.tar | awk 'NR>7')" 2>&-

Bit more educational version: We can do it all if we use awk differently. Normally, I use this method to pass (return) variables from the awk to the sh. As we read all the time that can not be done, I beg to differ: here is the method.

Example for .tar files with no problem regarding the spaces in the filename. To test, replace "rm" with the "ls".

eval $(ls -td *.tar | awk 'NR>7 { print "rm \"" $0 "\""}')

Explanation:

ls -td *.tar lists all .tar files sorted by the time. To apply to all the files in the current folder, remove the "d *.tar" part

awk 'NR>7... skips the first 7 lines

print "rm \"" $0 "\"" constructs a line: rm "file name"

eval executes it

Since we are using rm, I would not use the above command in a script! Wiser usage is:

(cd /FolderToDeleteWithin && eval $(ls -td *.tar | awk 'NR>7 { print "rm \"" $0 "\""}'))

In the case of using ls -t command will not do any harm on such silly examples as: touch 'foo " bar' and touch 'hello * world'. Not that we ever create files with such names in real life!

Sidenote. If we wanted to pass a variable to the sh this way, we would simply modify the print (simple form, no spaces tolerated):

print "VarName="$1

to set the variable VarName to the value of $1. Multiple variables can be created in one go. This VarName becomes a normal sh variable and can be normally used in a script or shell afterwards. So, to create variables with awk and give them back to the shell:

eval $(ls -td *.tar | awk 'NR>7 { print "VarName=\""$1"\""  }'); echo "$VarName"
leaveCount=5
fileCount=$(ls -1 *.log | wc -l)
tailCount=$((fileCount - leaveCount))

# avoid negative tail argument
[[ $tailCount < 0 ]] && tailCount=0

ls -t *.log | tail -$tailCount | xargs rm -f
  • 1
    xargs without -0 or at bare minimum -d $'\n' is unreliable; observe how this behaves with a file with spaces or quote characters in its name. – Charles Duffy Jan 18 '16 at 20:18

I made this into a bash shell script. Usage: keep NUM DIR where NUM is the number of files to keep and DIR is the directory to scrub.

#!/bin/bash
# Keep last N files by date.
# Usage: keep NUMBER DIRECTORY
echo ""
if [ $# -lt 2 ]; then
    echo "Usage: $0 NUMFILES DIR"
    echo "Keep last N newest files."
    exit 1
fi
if [ ! -e $2 ]; then
    echo "ERROR: directory '$1' does not exist"
    exit 1
fi
if [ ! -d $2 ]; then
    echo "ERROR: '$1' is not a directory"
    exit 1
fi
pushd $2 > /dev/null
ls -tp | grep -v '/' | tail -n +"$1" | xargs -I {} rm -- {}
popd > /dev/null
echo "Done. Kept $1 most recent files in $2."
ls $2|wc -l

Running on Debian (assume its the same on other distros I get: rm: cannot remove directory `..'

which is quite annoying..

Anyway I tweaked the above and also added grep to the command. In my case I have 6 backup files in a directory e.g. file1.tar file2.tar file3.tar etc and I want to delete only the oldest file (remove the first file in my case)

The script I ran to delete the oldest file was:

ls -C1 -t| grep file | awk 'NR>5'|xargs rm

This (as above) deletes the first of my files e.g. file1.tar this also leaves be with file2 file3 file4 file5 and file6

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