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I want the file name from the output of ls -lrt, but I am unable to find a file name. I used the command below, but it doesn't work.

$cmd=' -rw-r--r-- 1 admin u19530 3506 Aug  7 03:34 sla.20120807033424.log';
my $result=`cut -d, -f9 $cmd`;
print "The file name is $result\n";

The result is blank. I need the file name as sla.20120807033424.log


So far, I have tried the below code, and it works for the filename.

Code

#!/usr/bin/perl
my $dir = <dir path>;
opendir (my $DH, $dir) or die "Error opening $dir: $!";
my %files = map { $_ => (stat("$dir/$_"))[9] } grep(! /^\.\.?$/, readdir($DH));
closedir($DH);
my @sorted_files = sort { $files{$b} <=> $files{$a} } (keys %files);
print "the file is $sorted_files[0] \n";
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4  
Why on earth would you want to parse something as inherently unparseable as output of ls, when you can get all the information more efficiently and without any nasty corner-cases with glob and stat functions? –  Jan Hudec Aug 7 '12 at 6:11
1  
Why don't you use perl's glob function? Parsing the output of ls will get you in trouble at some point. (And stat if you need the file's metadata.) And if you find yourself having to use cut inside a Perl script, read about split instead. –  Mat Aug 7 '12 at 6:11
    
@JanHudec Could be he needs the -rt part. glob won't do that. –  Ariel Aug 7 '12 at 6:15
1  
@Ariel: No. But the stat (or -M) builtin function and few comparisons will. –  Jan Hudec Aug 7 '12 at 6:18
6  
Or in better words, what are you trying to actually achieve? Parsing of text intended for human consumption is rarely a good idea, but if you provide more context, there is probably a much better solution. –  Jan Hudec Aug 7 '12 at 6:27

5 Answers 5

up vote 2 down vote accepted

You're making it harder for yourself by using -l. This will do what you want

print((`ls -brt`)[0]);

But it is generally better to avoid shelling out unless Perl can't provide what you need, and this can be done easily

print "$_\n" for (sort { -M $a <=> -M $b } glob "*")[0];
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Hi Thanks for all the suggestions.. i have tried so far the below code and it works for the filename: I m sharing the code below: –  pauler Aug 8 '12 at 3:06
    
#!/usr/bin/perl my $dir = <dir path>; opendir(my $DH, $dir) or die "Error opening $dir: $!"; my %files = map { $_ => (stat("$dir/$_"))[9] } grep(! /^\.\.?$/, readdir($DH)); closedir($DH); my @sorted_files = sort { $files{$b} <=> $files{$a} } (keys %files); print "the file is $sorted_files[0] \n"; –  pauler Aug 8 '12 at 3:07
    
@pauler: That is a lot longer than my solution using glob. Why do you prefer it? –  Borodin Aug 8 '12 at 3:16
    
Glob wasnt wroking for me, the glob was giving me the oldest of ls -rt o/p, but i needed was the latest file from ls -lrt o/p –  pauler Aug 8 '12 at 3:20
    
@pauler: I apologize. In that case the sort just needs to be reversed. I have updated my solution –  Borodin Aug 8 '12 at 3:37
use File::Find::Rule qw( );
use File::stat       qw( stat );
use List::Util       qw( reduce );

my ($oldest) =
   map $_ ? $_->[0] : undef,                              # 4. Get rid of stat data.
   reduce { $a->[1]->mtime < $b->[1]->mtime ? $a : $b }   # 3. Find one with oldest mtime.
   map [ $_, scalar(stat($_)) ],                          # 2. stat each file.
   File::Find::Rule                                       # 1. Find relevant files.
      ->maxdepth(1)                                       #       Don't recurse.
      ->file                                              #       Just plain files.
      ->in('.');                                          #       In whatever dir.
share|improve this answer
    
Add some comments in there and you get my upvote. –  Ariel Aug 7 '12 at 6:58
    
@Ariel, done. Each line is rather independent of the others, so that was easy. –  ikegami Aug 7 '12 at 8:13
    
@ikegami: can u let me know which shebang statement ur using for this code –  pauler Aug 8 '12 at 3:30
    
@pauler, I didn't use one. Why do you care where I installed my Perl? –  ikegami Aug 8 '12 at 4:35

It's not possible to do it reliably with -lrt - if you were willing to choose other options you could do it.

BTW you can still sort by reverse time with -rt even without the -l.

Also if you must use ls, you should probably use -b.

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1  
Sorry, I disagree. It's not possible to parse output of ls reliably, period. You see, most unices are crazy enough to allow a newline character in filename and that will break anything that does not support NUL-termination. –  Jan Hudec Aug 7 '12 at 6:18
    
@JanHudec When I said 'other options' I meant other programs (alternatives). But in any case the -b will help with newlines. –  Ariel Aug 7 '12 at 6:29
    
@JanHudec I just tried it and the newline was printed as \n –  Ariel Aug 7 '12 at 6:32
    
You are right, it will print escape sequences with -b. Which makes it parseable, but quite a lot of work to actually do. –  Jan Hudec Aug 7 '12 at 6:39
    
@JanHudec Sure - I agree this isn't a good way to do it unless it's for a quick and dirty one-off. And it also seems to me that it's time for you to post some perl code using stat that will do this including the reverse time sort :) The OP seems AWOL but I'll give you an upvote :) –  Ariel Aug 7 '12 at 6:41
my $cmd = ' -rw-r--r-- 1 admin u19530 3506 Aug  7 03:34 sla.20120807033424.log';

$cmd =~ / ( \S+) $/x or die "can't find filename in string " ;
my $filename = $1 ;

print $filename ; 

Disclaimer - this won't work if filename has spaces and probably under other circumstances. The OP will know the naming conventions of the files concerned. I agree there are more robust ways not using ls -lrt.

share|improve this answer

Maybe as this:

ls -lrt *.log | perl -lane 'print $F[-1]'
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1  
and what if the filename contains, say, a space? (like my resume.txt) –  pavel Aug 7 '12 at 8:12

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