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It seems that ls doesn't sort the files correctly when doing a recursive call:

ls -altR . | head -n 3

How can I find the most recently modified file in a directory (including subdirectories)?

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12 Answers 12

up vote 127 down vote accepted
find . -type f -printf '%T@ %p\n' | sort -n | tail -1 | cut -f2- -d" "

For a huge tree, it might be hard for sort to keep everything in memory.

%T@ gives you the modification time like a unix timestamp, sort -n sorts numerically, tail -1 takes the last line (highest timestamp), cut -f2 -d" " cuts away the first field (the timestamp) from the output.

Edit: Just as -printf is probably GNU-only, ajreals usage of stat -c is too. Although it is possible to do the same on BSD, the options for formatting is different (-f "%m %N" it would seem)

And I missed the part of plural; if you want more then the latest file, just bump up the tail argument.

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1  
stat -c is way too slow –  ajreal Dec 30 '10 at 11:12
1  
added the Mac and BSD version as an answer based on this, for those not too familiar with find –  Emerson Farrugia Jan 29 '12 at 11:37
    
If order matters, you can switch use sort -rn | head -3 instead of sort -n | tail -3. One version gives the files from oldest to newest, while the other goes from newest to oldest. –  Don Faulkner Nov 8 '13 at 16:49
1  
I had a huge directory (some ten thousands small files) and I was worried about the performance, but...this command run in less than one second! Great, many thanks!!! :-) –  lucaferrario Dec 7 '13 at 11:27
    
"For a huge tree, it might be hard for sort to keep everything in memory." sort will create temporary files (in /tmp) as needed, so I don't think that's a concern. –  CyberShadow Nov 24 '14 at 7:55

Following up on @plundra's answer, here's the BSD and OS X version:

find . -type f -print0 | xargs -0 stat -f "%m %N" |
sort -rn | head -1 | cut -f2- -d" "
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1  
Already upvoted the answer, but just an upvote won't do. Had to thank you for this! Helped me greatly –  Rohan Prabhu Nov 30 '13 at 13:33
    
You're welcome. Please upvote @plundra's answer too, since all I did was translate it. –  Emerson Farrugia Nov 30 '13 at 14:30
    
Very useful - thanks Emerson! –  Fred Daoud Jan 15 '14 at 12:56
1  
It's better to use find ... -print0 | xargs -0 stat ... rather than find -exec stat ... {} \; — the latter launches a stat process for every file, but the former uses one stat process for many files. Also, sort -n | tail -1 wastes time in tail discarding output: better to write sort -rn | head -1 so that only one line of output from sort needs to be processed. I updated the answer accordingly. –  Gareth Rees Jan 30 '14 at 13:40
    
Thanks Gareth. I hadn't realised stat took multiple arguments. Nice optimisations. –  Emerson Farrugia Jan 30 '14 at 15:04

Instead of sorting the results and keeping only the last modified ones, you could use awk to print only the one with greatest modification time (in unix time):

find . -type f -printf "%T@\0%p\0" | awk '
    {
        if ($0>max) {
            max=$0; 
            getline mostrecent
        } else 
            getline
    } 
    END{print mostrecent}' RS='\0'

This should be a faster way to solve your problem if the number of files is big enough.

I have used the NUL character (i.e. '\0') because, theoretically, a filename may contain any character (including space and newline) but that.

If you don't have such pathological filenames in your system you can use the newline character as well:

find . -type f -printf "%T@\n%p\n" | awk '
    {
        if ($0>max) {
            max=$0; 
            getline mostrecent
        } else 
            getline
    } 
    END{print mostrecent}' RS='\n'

In addition, this works in mawk too.

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This could be easily adapted to keep the three most recent. –  Dennis Williamson Dec 30 '10 at 12:08
1  
This does not work with mawk, the Debian standard alternative. –  Jan Sep 25 '14 at 14:56
    
No, but in that case you can use the newline character if it doesn't bother you ;) –  marco Sep 28 '14 at 14:03

This seems to work fine, even with subdirectories:

find . -type f | xargs ls -ltr | tail -n 1

In case of too many files, refine the find.

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The -l option to ls seems unnecessary. Just -tr seems sufficient. –  A-B-B Jul 28 '14 at 19:56

This gives a sorted list:

find . -type f -ls 2>/dev/null | sort -M -k8,10 | head -n5

Reverse the order by placing a '-r' in the sort command. If you only want filenames, insert "awk '{print $11}' |" before '| head'

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I had the trouble to find the last modified file under Solaris 10. There find does not have the printf option and stat is not available. I discovered the following solution which works well for me:

find . -type f | sed 's/.*/"&"/' | xargs ls -E | awk '{ print $6," ",$7 }' | sort | tail -1

To show the filename as well use

find . -type f | sed 's/.*/"&"/' | xargs ls -E | awk '{ print $6," ",$7," ",$9 }' | sort | tail -1

Explanation

  • find . -type f finds and lists all files
  • sed 's/.*/"&"/' wraps the pathname in quotes to handle whitespaces
  • xargs ls -E sends the quoted path to ls, the -E option makes sure that a full timestamp (format year-month-day hour-minute-seconds-nanoseconds) is returned
  • awk '{ print $6," ",$7 }' extracts only date and time
  • awk '{ print $6," ",$7," ",$9 }' extracts date, time and filename
  • sort returns the files sorted by date
  • tail -1 returns only the last modified file
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Needed exactly this. Thanks! –  Andrew Cheong Apr 24 '14 at 8:43

On Ubuntu 13, the following does it, maybe a tad faster, as it reverses the sort and uses 'head' instead of 'tail', reducing the work. To show the 11 newest files in a tree:

find . -type f -printf '%T@ %p\n' | sort -n -r | head -11 | cut -f2- -d" " | sed -e 's,^./,,' | xargs ls -U -l

This gives a complete ls listing without re-sorting and omits the annoying './' that 'find' puts on every file name.

Or, as a bash function:

treecent () {
  local numl
  if [[ 0 -eq $# ]] ; then
    numl=11   # Or whatever default you want.
  else
    numl=$1
  fi
  find . -type f -printf '%T@ %p\n' | sort -n -r | head -${numl} |  cut -f2- -d" " | sed -e 's,^\./,,' | xargs ls -U -l
}

Still, most of the work was done by plundra's original solution. Thanks plundra.

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If running stat on each file individually is to slow you can use xargs to speed things up a bit:

find . -type f -print0 | xargs -0 stat -f "%m %N" | sort -n | tail -1 | cut -f2- -d" " 
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This recursively changes the modification time of all directories in the current directory to the newest file in each directory:

for dir in */; do find $dir -type f -printf '%T@ "%p"\n' | sort -n | tail -1 | cut -f2- -d" " | xargs -I {} touch -r {} $dir; done
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It breaks badly if any dirs contain spaces - need to set IFS and use quotes: IFS=$'\n';for dir in $(find ./ -type d ); do echo "$dir"; find "$dir" -type f -printf '%T@ "%p"\n' | sort -n | tail -1 | cut -f2- -d" " | xargs -I {} touch -r {} "$dir"; done; –  Andy Lee Robinson Jan 22 '14 at 18:04

I found the command above useful, but for my case I needed to see the date and time of the file as well I had an issue with several files that have spaces in the names. Here is my working solution.

find . -type f -printf '%T@ %p\n' | sort -n | tail -1 | cut -f2- -d" " | sed 's/.*/"&"/' | xargs ls -l
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This simple cli will also work:

ls -1t | head -1

You may change the -1 to the number of files you want to list

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I prefer this one, it is shorter:

find . -type f -print0|xargs -0 ls -drt|tail -n 1
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