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I can't seem to find how to print out the date of a file. I'm so far able to print out all the files in a directory, but I need to print out the dates with it.

I know I need to attach a date format with the echo of the entry, but all I can't find the correct format.

Thank you in advanced!

echo "Please type in the directory you want all the files to be listed"

read directory 

for entry in "$directory"/*
do
  echo "$entry"
done
share|improve this question
1  
read -p "Please type in the directory you want all the files to be listed" directory – CousinCocaine Jul 10 '14 at 11:08
up vote 33 down vote accepted

You can use the stat command

stat -c %y "$entry"

More info

%y   time of last modification, human-readable
share|improve this answer
    
for entry in "$directory"/* do stat -c%y "$entry" done Doesn't work. Prints out stat: missing operand in terminal – Hokerie May 6 '13 at 2:52
    
Hm, could it be my unbuntu? Do you know what the requirements of using stat is? – Hokerie May 6 '13 at 2:57
8  
Note that on OS X (Mac), it's stat -f "%m%t%Sm %N" filename (see man stat examples for more details) – Olie Oct 9 '14 at 23:45

Isn't the 'date' command much simpler? No need for awk, stat, etc.

date -r <filename>
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2  
Much simpler then using stat / more available. – Ing Apr 25 '14 at 13:49
4  
It looks like BSD (or at least OS X's) date's doesn't have this. Its -r is just used to provide a timestamp to format. You'll have to use GNU date to get this functionality. – Waleed Khan Jul 1 '14 at 0:42
1  
On OSX use: date stat -f "%Sm" -t "%m%d%H%M%y" "${1}" – Michaelangel007 Feb 22 at 1:19
    
@Mich - I get stat no such file or directory – chris ahearn Mar 16 at 21:12

Adding to @StevePenny answer, you might want to cut the not-so-human-readable part:

stat -c%y Localizable.strings | cut -d'.' -f1
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If file name has no spaces:

ls -l <dir> | awk '{print $6, " ", $7, " ", $8, " ", $9 }'

This prints as the following format:

 Dec   21   20:03   a1.out
 Dec   21   20:04   a.cpp

If file names have space (you can use the following command for file names with no spaces too, just it looks complicated/ugly than the former):

 ls -l <dir> | awk '{printf ("%s %s %s ",  $6,  $7, $8); for (i=9;   i<=NF; i++){ printf ("%s ", $i)}; printf ("\n")}'
share|improve this answer
    
Ah, I see! That mostly works, except for the files with the spaces in the names. Is there a solution for that? – Hokerie May 6 '13 at 3:02
    
edited the answer...pls try that. – Bill May 6 '13 at 3:06
    
Actually, I tried it again, and it doesn't work... turns out I was trying out a directory that had file names without spaces. =/ Edited my answer below – Hokerie May 6 '13 at 22:52
    
when you say it does not work, can you say what is the error? it works for me when i executed it on my system. – Bill May 6 '13 at 23:18
    
I got a "no such file or directory". – Hokerie May 7 '13 at 3:48

EDITED: turns out that I had forgotten the quotes needed for $entry in order to print correctly and not give the "no such file or directory" error. Thank you all so much for helping me!

Here is my final code:

    echo "Please type in the directory you want all the files to be listed with last modified dates" #bash can't find file creation dates

read directory

for entry in "$directory"/*

do
modDate=$(stat -c %y "$entry") #%y = last modified. Qoutes are needed otherwise spaces in file name with give error of "no such file"
modDate=${modDate%% *} #%% takes off everything off the string after the date to make it look pretty
echo $entry:$modDate

Prints out like this:

/home/joanne/Dropbox/cheat sheet.docx:2012-03-14
/home/joanne/Dropbox/Comp:2013-05-05
/home/joanne/Dropbox/Comp 150 java.zip:2013-02-11
/home/joanne/Dropbox/Comp 151 Java 2.zip:2013-02-11
/home/joanne/Dropbox/Comp 162 Assembly Language.zip:2013-02-11
/home/joanne/Dropbox/Comp 262 Comp Architecture.zip:2012-12-12
/home/joanne/Dropbox/Comp 345 Image Processing.zip:2013-02-11
/home/joanne/Dropbox/Comp 362 Operating Systems:2013-05-05
/home/joanne/Dropbox/Comp 447 Societal Issues.zip:2013-02-11
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On OS X, I like my date to be in the format of YYYY-MM-DD HH:MM in the output for the file.

So to specify a file I would use:

stat -f "%Sm" -t "%Y-%m-%d %H:%M" [filename]

If I want to run it on a range of files, I can do something like this:

#!/usr/bin/env bash
for i in /var/log/*.out; do
  stat -f "%Sm" -t "%Y-%m-%d %H:%M" "$i"
done

This example will print out the last time I ran the sudo periodic daily weekly monthly command as it references the log files.


To add the filenames under each date, I would run the following instead:

#!/usr/bin/env bash
for i in /var/log/*.out; do
  stat -f "%Sm" -t "%Y-%m-%d %H:%M" "$i"
  echo "$i"
done

The output would was the following:

2016-40-01 16:40
/var/log/daily.out
2016-40-01 16:40
/var/log/monthly.out
2016-40-01 16:40
/var/log/weekly.out

Unfortunately I'm not sure how to prevent the line break and keep the file name appended to the end of the date without adding more lines to the script.


PS - I use #!/usr/bin/env bash as I'm a Python user by day, and have different versions of bash installed on my system instead of #!/bin/bash

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For the line breaks i edited your code to get something with no line breaks.

    #!/bin/bash
    for i in /Users/anthonykiggundu/Sites/rku-it/*; do
       t=$(stat -f "%Sm"  -t "%Y-%m-%d %H:%M" "$i")
       echo $t : "${i##*/}"  # t only contains date last modified, then only filename 'grokked'- else $i alone is abs. path           
    done
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