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i want to compare the current time and file creation time in Perl but both are in different format. localtime is in this format:

22116291110813630

and file creation time is

Today, December 29, 2008, 2:38:37 PM

How do i compare which one is greater and their difference?

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1  
Maybe of interest: perl.com/doc/manual/html/pod/perlfunc/stat.html –  some Dec 29 '08 at 11:10
    
Info of how to convert dates: perl.com/pub/a/2003/03/13/datetime.html –  some Dec 29 '08 at 11:13
    
The answer to your question is: Convert them to the same format. I suggest converting "Today, December 29, 2008" to a timestamp (number of (milli)seconds since epoch). Then it is a simple compare of two numbers –  some Dec 29 '08 at 11:15
    
Do you really mean "creation time," which is not tracked by many file systems, or do you mean "ctime" which is the "inode change time" on Unix-like operating systems? –  John Siracusa Dec 29 '08 at 15:31

4 Answers 4

These two functions are thanks to jimtut's answer. fileage prints the number of seconds as an integer, perfect for usage in a shell, of a file from when it was created. fileage is the answer to the above question, while dataage prints the same for the contents of a file as that's the answer I was looking for I'm sure these will both be useful.

function fileage {
  perl -e 'printf "%i\n", 60 * 60 * 24 * -C "'"${1:?Must provide a file name}"'"'
}

function dataage {
  perl -e 'printf "%i\n", 60 * 60 * 24 * -M "'"${1:?Must provide a file name}"'"'
}
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It's even easier than using stat() and time()/localtime().

my $diff = -M $filename;

The -M operator returns the "age" of the file (in days since the start of the program). It's documented in perlop.

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1  
I know this is an old thread but I'm posting a reply anyway. -M gives the "age" of the last modification not file creation. -C would have given the correct value as requested but I only use the -X functions (perldoc.perl.org/functions/-X.html) in one-liners and use stat the rest of the time. –  Mr. Muskrat Sep 13 '12 at 15:25

If you want to compare values, you might want to use the number you got from localtime in scalar context and the inode change time that you can get from stat:

               ($dev,$ino,$mode,$nlink,$uid,$gid,$rdev,$size,
                  $atime,$mtime,$ctime,$blksize,$blocks)
                      = stat($filename);

where:

                 0 dev      device number of filesystem
                 1 ino      inode number
                 2 mode     file mode  (type and permissions)
                 3 nlink    number of (hard) links to the file
                 4 uid      numeric user ID of file's owner
                 5 gid      numeric group ID of file's owner
                 6 rdev     the device identifier (special files only)
                 7 size     total size of file, in bytes
                 8 atime    last access time in seconds since the epoch
                 9 mtime    last modify time in seconds since the epoch
                10 ctime    inode change time in seconds since the epoch (*)
                11 blksize  preferred block size for file system I/O
                12 blocks   actual number of blocks allocated

So you want field 9:


$mtime = ( stat $filename )[9];
$current_time = time;

$diff = $current_time - $mtime;

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Thanks for giving information to me.i think it is giving the diff in no of secs.anyway thanks for ur guide.Advance happy new year –  Anonymous Dec 30 '08 at 6:21

localtime returns a list of values in list context. See the localtime documentation or perlcheat. In your example, it looks like those all mushed together. In scalar context, it returns a formatted string like Mon Dec 29 03:16:33 2008. On most platforms, the file inode change time will be returned from stat as a number of seconds since some epoch. You should be able to directly compare that to the result of time() (not localtime()).

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