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I want to get the folder last modified date and time through perl. My code is:

my @dirs = grep { -d } glob "$SOME_DIR/*";
foreach my $dir (@dirs)
{
    print($dir);
    print((stat $dir)[9]);  #line got problem with
}

But it just printed nothing but the sub foders under $SOME_DIR. I am SURE the $SOME_DIR path exists since the print($dir) works. Would anyone know what cant get the last modified time of a directory? Thanks!

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1  
Can you show what $SOME_DIR looks like and what your output looks like? I can't reproduce the problem. –  dms Oct 17 '13 at 5:17
    
Can you look into $! after the failing stat() call? –  Slaven Rezic Oct 17 '13 at 5:57
    
I got it, Thanks everyone. After remove use File::stat, it works fine. –  Ben Oct 17 '13 at 5:59

2 Answers 2

up vote 1 down vote accepted

For me, with $SOME_DIR = ".";, I got the output:

./c-vs-c++1369283477./computist-1.dSYM1381934424./computist-2.dSYM1381934897./ll3.dSYM1381816690./syncio.dSYM1381984813./xs.dSYM1381986208

This mildy revised code:

#!/usr/bin/env perl
use strict;
use warnings;

my $SOME_DIR = ".";

my @dirs = grep { -d } glob "$SOME_DIR/*";
foreach my $dir (@dirs)
{
    printf "%-20s - %d\n", $dir, (stat $dir)[9];
}

gave the output:

./c-vs-c++           - 1369283477
./computist-1.dSYM   - 1381934424
./computist-2.dSYM   - 1381934897
./ll3.dSYM           - 1381816690
./syncio.dSYM        - 1381984813
./xs.dSYM            - 1381986208

You need to demonstrate what is in your $SOME_DIR. For example, you might use:

system "ls -l $SOME_DIR";

to show what you should be seeing.

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I got the list of sub folders under my $SOME_DIR:fullDate1, fullDate2, fullDate3 –  Ben Oct 17 '13 at 5:51
    
Wouldn't it be simpler to use my @dirs = glob "$SOME_DIR/*/", or does that not work on all operating systems? –  Brad Gilbert Oct 17 '13 at 21:40
    
Quite possibly...I was mostly demonstrating that the code described in the question could work by creating an SSCCE (Short, Self-Contained, Correct Example). The problem appears to have been the use of File::stat. The grep finds the directories (the -d test). Otherwise the tests will need to be done in the body of the loop. –  Jonathan Leffler Oct 17 '13 at 22:26

try this:-

   #!/usr/bin/perl

    @1=`ls -ltr abcdpathtodir | grep ^d | awk '{\$1=\$2=\$3=\$4=\$5=""; print \$0}'`;
    foreach $i (@1)
    {
            print " ---$i\n";
    }

or other way:-

@m=`ls -ltr dir | grep ^d | awk '{print \$6,\$7,\$8,\$9}'`;
foreach $i (@m)
{
        print "$i\n";

}
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Using numbers as array names, and depending on shell commands makes sense when scripting in bash and similar, but in perl it is unnecessary dependency. –  mpapec Oct 17 '13 at 11:14
    
thanks for your comment ...as far as number as array name is considered we can change but for this case the shell commands works fine...do u have any solution with such short length of code i will be very happy to learn from that....... –  mkp Oct 17 '13 at 11:39
    
Check stackoverflow.com/a/19418840/223226 It uses perl native glob() for directory listing, filters directories with -d and stat() to get modification time –  mpapec Oct 17 '13 at 11:49
    
well thanks for comment....i will try to use –  mkp Oct 17 '13 at 11:56

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