• Operating system: Linux

  • Filesystem type: ext3

  • Preferred solution: bash (script/oneliner), ruby, python

I have several directories with several subdirectories and files in them. I need to make a list of all these directories that is constructed in a way such that every first-level directory is listed next to the date and time of the latest created/modified file within it.

To clarify, if I touch a file or modify its contents a few subdirectory levels down, that timestamp should be displayed next to the first-level directory name. Say I have a directory structured like this:

./alfa/beta/gamma/example.txt

and I modify the contents of the file example.txt, I need that time displayed next to the first-level directory alfa in human readable form, not epoch. I've tried some things using find, xargs, sort and the likes but I can't get around the problem that the filesystem timestamp of 'alfa' doesn't change when I create/modify files a few levels down.

  • If you can take the pain of building it, github.com/shadkam/recentmost can be used. – user3392225 Mar 7 '14 at 10:37
  • 1
    Incredible. 16 answers, and most/all don't even try to do what the OP specified... – hmijail Nov 4 '17 at 11:35

16 Answers 16

Try this one:

#!/bin/bash
find $1 -type f -exec stat --format '%Y :%y %n' "{}" \; | sort -nr | cut -d: -f2- | head

Execute it with the path to the directory where it should start scanning recursively (it supports filenames with spaces).

If there are lots of files it may take a while before it returns anything. Performance can be improved if we use xargs instead:

#!/bin/bash
find $1 -type f -print0 | xargs -0 stat --format '%Y :%y %n' | sort -nr | cut -d: -f2- | head

which is a bit faster.

  • 111
    Your "fast method" should also be able to use print0 to support spaces and even linefeeds in filenames. Here's what I use: find $1 -type f -print0 | xargs -0 stat --format '%Y :%y %n' | sort -nr | cut -d: -f2- | head This still manages to be fast for me. – Dan Jun 20 '12 at 23:12
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    Some directories I was looking in didn't allow me to stat them, so I made the following changes (to the 'fast' one) so I didn't have to see the errors in my final output. find ${1} -type f | xargs stat --format '%Y :%y %n' 2>/dev/null | sort -nr | cut -d: -f2- – tj111 Dec 14 '12 at 14:13
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    On Mac OS X it's not GNU's stat so command fails. You have to brew install coreutils and use gstat instead of stat – CharlesB Mar 28 '13 at 10:56
  • 30
    You don't need to run stat since find PATH -type f -printf "%T@ %p\n"| sort -nr does the job. It's also a bit faster that way. – n.r. Jun 16 '13 at 3:49
  • 4
    can we somehow turn @user37078 's comment into an actual answer or edit the original answer? it seems to be "the right way" [tm] to do it. – mnagel Jul 17 '13 at 9:43

To find all files that file status was last changed N minutes ago:

find -cmin -N

for example:

find -cmin -5

  • 4
    +1 Thanks, very useful. Works on Windows using GnuWin32 find. – Sabuncu Jan 1 '14 at 18:08
  • very terse. very nice! – the0ther Apr 16 '14 at 15:26
  • it's faster than other solutions more complicated – david.perez Nov 11 '15 at 15:23
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    Really good, also you can use 'find -ctime -50' for example for last 50 days of change. – Gorkem Jan 1 '16 at 18:28
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    To exclude clutter, use sudo find -cmin -1 2>&1 |grep -v /proc/ – Cees Timmerman Jan 4 '16 at 10:15

I shortened halo's awesome answer to this one-liner

stat --printf="%y %n\n" $(ls -tr $(find * -type f))

Updated: If there are spaces in filenames, you can use this modification

OFS="$IFS";IFS=$'\n';stat --printf="%y %n\n" $(ls -tr $(find . -type f));IFS="$OFS";
  • 2
    will not work if file or dir containing a space in the name... – jm666 Apr 28 '14 at 15:08
  • How about this: IFS=$'\n'; stat --printf="%y %n\n" $(ls -tr $(find . -type f)) – slashdottir Apr 28 '14 at 19:02
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    This will not work if you have a very large number of files. the answers that use xargs solve that limit. – carl verbiest Jan 27 '15 at 14:32
  • @carlverbiest indeed a large number of files will break slashdottir's solution. Even xargs-based solutions will be slow then. user2570243's solution is best for big filesystems. – Stéphane Gourichon Dec 14 '17 at 18:38

GNU Find (see man find) has a -printf parameter for displying the files EPOC mtime and relative path name.

redhat> find . -type f -printf '%T@ %P\n' | sort -n | awk '{print $2}'
  • 3
    Thanks! This is the only answer that is fast enough to search through my very wide directory structure in a reasonable time. I pass the output through tail to prevent thousands of lines from being printed in the output. – sffc Oct 18 '13 at 3:52
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    Another comment: the awk '{print $2}' part seems to cause issues when there are filenames with spaces. Here is a solution using sed instead, and it also prints the time in addition to the path: find . -type f -printf '%T@ %Tc %P\n' | sort -n | tail | sed -r 's/^.{22}//' – sffc Oct 18 '13 at 4:04
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    I think it should be sort -rn – Bojan Dević Mar 24 '15 at 11:46
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    The -printf variant is far quicker than calling a 'stat' process each time - it cut hours off my backup job(s). Thanks for making me aware of this. I avoided the awk/sed thing as I'm only concerned about the last update within the tree - so X=$(find /path -type f -printf '%T %p\n' | grep -v something-I-don-tcare-about | sort -nr | head -n 1) and a echo ${X#*" "} worked well for me (give me stuff up to the first space) – David Goodwin Feb 4 '16 at 16:19
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    All will not works if filename across multiple line. Use touch "lala<Enter>b" to create such file. I think unix utilities design has big flaw about filename. – 林果皞 Apr 20 '16 at 6:48

Try this

#!/bin/bash
stat --format %y $(ls -t $(find alfa/ -type f) | head -n 1)

It uses find to gather all files from the directory, ls to list them sorted by modification date, head for selecting the 1st file and finally stat to show the time in a nice format.

At this time it is not safe for files with whitespace or other special chars in their names. Write a commend if it doesn't meet your needs yet.

  • 1
    halo: I like your answer, it works well and prints out the correct file. I doesn't help me however since there are too many sublevels in my case. So I get "Argument list too long" for ls... and xargs wouldn't help in this case either. I'll try something else. – fredrik Apr 12 '11 at 8:34
  • In that case it's a bit more complex and will need some real program. I will hack some Perl. – Daniel Böhmer Apr 12 '11 at 8:36
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    I solved this using PHP instead. A recursive function that descends through the filesystem tree and stores the time of the most recently modified file. – fredrik Apr 19 '11 at 11:33

This command works on Mac OS X:

find "$1" -type f -print0 | xargs -0 stat --format '%Y :%y %n' | sort -nr | cut -d: -f2- | head

On Linux, as the original poster asked, use stat instead of gstat.

This answer is, of course, user37078's outstanding solution, promoted from comment to full answer. I mixed in CharlesB's insight to use gstat on Mac OS X. I got coreutils from MacPorts rather than homebrew, by the way.

And here's how I packaged this into a simple command ~/bin/ls-recent.sh for reuse:

#!/bin/bash
# ls-recent: list files in a dir tree, most recently modified first
#
# Usage: ls-recent path [-10 | more]
# 
# Where "path" is a path to target directory, "-10" is any arg to pass
# to "head" to limit the number of entries, and "more" is a special arg
# in place of "-10" which calls the pager "more" instead of "head".
if [ "more" = "$2" ]; then
   H=more; N=''
else
   H=head; N=$2
fi

find "$1" -type f -print0 |xargs -0 gstat --format '%Y :%y %n' \
    |sort -nr |cut -d: -f2- |$H $N
  • 1
    On OS X yosemite; I get error: find: ftsopen: No such file or directory – Reece Dec 8 '16 at 0:09
  • Interesting. What command did you type (with parameters)? And what were the names of the files in that directory? And if you created your own version of ~/bin/ls-recent.sh, have you carefully checked the script for differences? – Jim DeLaHunt Dec 8 '16 at 22:50
  • 6
    for those who don't want to install anything on Mac OS X: find . -exec stat -f '%m%t%Sm %N' {} + | sort -n | cut -f2- – Jake Apr 30 '17 at 21:43

Both the perl and Python solutions in this post helped me solve this problem on Mac OS X: https://unix.stackexchange.com/questions/9247/how-to-list-files-sorted-by-modification-date-recursively-no-stat-command-avail.

Quoting from the post:

Perl:

find . -type f -print |
perl -l -ne '
    $_{$_} = -M;  # store file age (mtime - now)
    END {
        $,="\n";
        print sort {$_{$b} <=> $_{$a}} keys %_;  # print by decreasing age
    }'

Python:

find . -type f -print |
python -c 'import os, sys; times = {}
for f in sys.stdin.readlines(): f = f[0:-1]; times[f] = os.stat(f).st_mtime
for f in sorted(times.iterkeys(), key=lambda f:times[f]): print f'
  • It sorts by modification date but alphabetically i.e. April.. August... – sgarg Aug 20 '12 at 1:17

I'm showing this for latest access time, you can easily modify this to do latest mod time.

There is two ways to do this:


1)If you want to avoid global sorting which can be expensive if you have tens of millions of files, then you can do: (position yourself in the root of the directory where you want your search to start)

linux> touch -d @0 /tmp/a;
linux> find . -type f -exec tcsh -f -c test `stat --printf="%X" {}` -gt  `stat --printf="%X" /tmp/a`  ; -exec tcsh -f -c touch -a -r {} /tmp/a ; -print 

The above method prints filenames with progressively newer access time and the last file it prints is the file with the latest access time. You can obviously get the latest access time using a "tail -1".


2)You can have find recursively print the name,access time of all files in your subdirectory and then sort based on access time and the tail the biggest entry:

linux> \find . -type f -exec stat --printf="%X  %n\n" {} \; | \sort -n | tail -1

And there you have it...

I have this alias in my .profile that I use quite often

$ alias | grep xlogs
xlogs='sudo find . \( -name "*.log" -o -name "*.trc" \) -mtime -1 | sudo xargs ls -ltr --color | less -R'

So it does what you are looking for (with exception it doesn't travers change date/time multiple levels) - looks for latest files (*.log and *.trc files in this case); also it only finds files modified in last day, then sorts by time and pipes output through less:

sudo find . \( -name "*.log" -o -name "*.trc" \) -mtime -1 | sudo xargs ls -ltr --color | less -R

ps. Notice I don't have root on some of the servers, but always have sudo, so you may not need that part.

  • How is this "exactly what you are looking for"? The OP wrote a good explanation of what he wanted, and this totally ignores it. – hmijail Nov 4 '17 at 11:29
  • thanks for pointing to that. you're correct - this method doesn't go multiple levels to get change date/time, it only shows date/time of directories' files within it. edited my answer. – Tagar Nov 4 '17 at 23:17

Quick bash function:

# findLatestModifiedFiles(directory, [max=10, [format="%Td %Tb %TY, %TT"]])
function findLatestModifiedFiles() {
    local d="${1:-.}"
    local m="${2:-10}"
    local f="${3:-%Td %Tb %TY, %TT}"

    find "$d" -type f -printf "%T@ :$f %p\n" | sort -nr | cut -d: -f2- | head -n"$m"
}

Find the latest modified file in a directory:

findLatestModifiedFiles "/home/jason/" 1

You can also specify your own date/time format as the third argument.

The following returns you a string of the time-stamp and the name of the file with the most recent time-stamp:

find $Directory -type f -printf "%TY-%Tm-%Td-%TH-%TM-%TS %p\n" | sed -r 's/([[:digit:]]{2})\.([[:digit:]]{2,})/\1-\2/' |     sort --field-separator='-' -nrk1 -nrk2 -nrk3 -nrk4 -nrk5 -nrk6 -nrk7 | head -n 1

Resulting to an output of the form: <yy-mm-dd-hh-mm-ss.nanosec> <filename>

Here is one version that works with filenames that may contain spaces, newlines, glob characters as well:

find . -type f -printf "%T@ %p\0" | sort -zk1nr
  • find ... -printf prints file modification (EPOCH value) followed by a space and \0 terminated filenames.
  • sort -zk1nr reads NUL terminated data and sorts it reverse numerically

As question is tagged with Linux so I am assuming gnu utils are available.

You can pipe above with:

xargs -0 printf "%s\n"

to print modification time and filenames sorted by modification time (most recent first) terminated by newlines.

Ignoring hidden files — with nice & fast time stamp

Handles spaces in filenames well — not that you should use those!

$ find . -type f -not -path '*/\.*' -printf '%TY.%Tm.%Td %THh%TM %Ta %p\n' |sort -nr |head -n 10

2017.01.28 07h00 Sat ./recent
2017.01.21 10h49 Sat ./hgb
2017.01.16 07h44 Mon ./swx
2017.01.10 18h24 Tue ./update-stations
2017.01.09 10h38 Mon ./stations.json

More find galore can be found by following the link.

You may give the printf command of find a try

%Ak File's last access time in the format specified by k, which is either @' or a directive for the C strftime' function. The possible values for k are listed below; some of them might not be available on all systems, due to differences in `strftime' between systems.

For plain ls output, use this. There is no argument list, so it can't get too long:

find . | while read FILE;do ls -d -l "$FILE";done

And niceified with cut for just the dates, times, and name:

find . | while read FILE;do ls -d -l "$FILE";done | cut --complement -d ' ' -f 1-5

EDIT: Just noticed that the current top answer sorts by modification date. That's just as easy with the second example here, since the modification date is first on each line - slap a sort onto the end:

find . | while read FILE;do ls -d -l "$FILE";done | cut --complement -d ' ' -f 1-5 | sort

This could be done with a reccursive function in bash too

Let F a function that displays the time of file which must be lexicographically sortable yyyy-mm-dd etc., (os-dependent?)

F(){ stat --format %y "$1";}                # Linux
F(){ ls -E "$1"|awk '{print$6" "$7}';}      # SunOS: maybe this could be done easier

R the recursive function that run through directories

R(){ local f;for f in "$1"/*;do [ -d "$f" ]&&R $f||F "$f";done;}

And finally

for f in *;do [ -d "$f" ]&&echo `R "$f"|sort|tail -1`" $f";done

protected by anubhava Nov 17 '16 at 19:35

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