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I have this directory path:

\main\ABC_PRD\ABC_QEM\1\testQEM.txt\main\ABC_QEM\1

How can I get the file name testQEM.txt from the above string?

I use this:

$file =~ /(.+\\)(.+\..+)(\\.+)/;

But get this result:

file = testQEM.txt\main\ABC_QEM

Thanks,

Jirong

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7 Answers 7

I'm not sure I understand, as paths cannot have a file node half way through them! Have multiple paths got concatenated somehow?

Anyway, I suggest you work though the path looking for the first node that validates as a real file using -f

Here is an example

use strict;
use warnings;

my $path = '\main\ABC_PRD\ABC_QEM\1\testQEM.txt\main\ABC_QEM\1';

my @path = split /\\/, $path;
my $file = shift @path;
$file .= '\\'.shift @path until -f $file or @path == 0;

print "$file\n";
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This string is generated by ClearCase, the original string is this "M:\ccadm01_ABC_BUILD\Informatica_AVOB\ABC_infa\dummy@@\main\ABC_PRD\ABC_QEM\1\t‌​estQEM.txt\main\ABC_QEM\1". I want to reconstruct the real file like this: M:\ccadm01_ABC_BUILD\Informatica_AVOB\ABC_infa\dummy\testQEM.txt –  user1288329 Sep 19 '12 at 14:21
/[^\\]+\.[^\\]+/

Capture anything separated by a . between two backslashes. Is this what you where looking for?

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Right, but can you write the complete line of code to get that testQEM.txt from the above string? –  user1288329 Sep 19 '12 at 14:19
    
It's literally the same as what you wrote, but with this regex instead of yours. –  FrankieTheKneeMan Sep 19 '12 at 18:03

This is a bit difficult, as directory names can contain contain periods. This is especially true for *nix Systems, but is valid under Windows as well.

Therefore, each possible subpath has to be tested iteratively for file-ness.

I'd maybe try something like this:

my $file;
my $weirdPath = q(/main/ABC_PRD/ABC_QEM/1/testQEM.txt/main/ABC_QEM/1);
my @parts = split m{/} $weirdPath;

for my $i (0 .. $#parts) {
   my $path = join "/", @parts[0 .. $i];
   if (-f $path) { # optionally "not -d $path"
     $file = $parts[$i];
     last;
   }
}
print "file=$file\n"; # "file=testQEM.txt\n"

I split the weird path at all slashes (change to backslashes if interoperability is not an issue for you). Then I join the first $i+1 elements together and test if the path is a normal file. If so, I store the last part of the path and exit the loop.

If you can guarantee that the file is the only part of the path that contains periods, then using one of the other solutions will be preferable.

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my $file = '\main\ABC_PRD\ABC_QEM\1\testQEM.txt\main\ABC_QEM\1';
my ($result) = $file =~ /\\([^\\]+\.[^\\]+)\\/;

Parentheses around $result force the list context on the right hand side expression, which in turn returns what matches in parentheses.

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Thank you very much! The result is right but I don't understand the expression, will study. –  user1288329 Sep 19 '12 at 14:42

Use regex pattern /(?=[^\\]+\.)([^\\]+)/

my $path = '\main\ABC_PRD\ABC_QEM\1\testQEM.txt\main\ABC_QEM\1';
print $1 if $path =~ /(?=[^\\]+\.)([^\\]+)/;

Test this code here.

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>echo "\main\ABC_PRD\ABC_QEM\1\testQEM.txt\main\ABC_QEM\1"|perl -pi -e "s/.*([\\][a-zA-Z]*\.txt).*/\1/"
\testQEM.txt
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The file can be any extension,not just .txt. And please give me a complete line of perl code. This has to be done inside a perl script. –  user1288329 Sep 19 '12 at 14:38

i suggest you may comprehend principle of regexp Backtracking ,such as how * and + to work. you only make a little change about your regexp as:

/(.+\\)(.+\..+?)(\\.+)/
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