Sign up ×
Stack Overflow is a community of 4.7 million programmers, just like you, helping each other. Join them; it only takes a minute:

I am new to Perl and have a string in the format XXXX_XXX_YYYYMMDD.txt.

How can I extract YYYYMMDD part in another string?

Below is what I tried

my $filename = "XXXX_XXX_YYYYMMDD.txt";
my $datepart = split($filename ,'.');
print "$datepart";
share|improve this question

closed as not a real question by pst, Sinan Ünür, Jack Maney, Book Of Zeus, Graviton Oct 25 '11 at 2:30

It's difficult to tell what is being asked here. This question is ambiguous, vague, incomplete, overly broad, or rhetorical and cannot be reasonably answered in its current form. For help clarifying this question so that it can be reopened, visit the help center.If this question can be reworded to fit the rules in the help center, please edit the question.

What have you tried? Looked at regular expressions (e.g. m//)? split? Anything else? – user166390 Oct 20 '11 at 21:41
Yes, simply split the string. Take a look at perldoc -f split. – Jack Maney Oct 20 '11 at 21:44
@SachinChourasiya - Oh, my downvote, along with my vote to close the question, was anything but mindless. Please do not be so condescending and arrogant to presume that those who disagree with you do so mindlessly. – Jack Maney Oct 20 '11 at 21:50
@SachinChourasiya - split($filename ,'.') is your problem. Please look at perldoc -f split for the syntax of the split function. – Jack Maney Oct 20 '11 at 21:53
@SachinChourasiya It is a good thing the site is about questions and not posters because you are being way too much of a jerk with calling us mindless. FWIW, I withdrew my downvote after you posted a snippet of code. But, I agree with Jack Maney's response to your comment. – Sinan Ünür Oct 20 '11 at 21:57

4 Answers 4

Another way would be with substr()

my $txt = "abcd_efg_12340322.txt";
print substr($txt, 9, 8);

The 9 means to start at the 10th character of the string (counting from 0), and the 8 is the number of chars you need to capture.

share|improve this answer
+1, this is probably the simplest answer! – Matt Fenwick Oct 20 '11 at 22:21

Here's a regular expression that does the trick:


And here's it in action:

"abcd_efg_12340322.txt" =~ /.{4}_.{3}_(.{8})/; 
print $1;

The parentheses capture the string and put it in $1.

Note: regexes can get nasty (in any language) and this regex could easily go wrong, but if you want to do something quick 'n dirty it might be all right.

There's lots of info out there on perl regexes: perldocs

share|improve this answer
Thanks Matt, could you please let me know how it worked? – Sachin Chourasiya Oct 20 '11 at 21:52
@SachinCHourasiya -- I already tested it and it worked fine on my computer. What I'm worried about is edge cases -- what if the day or month only has one digit (maybe that's not possible?)? If you're not worried about running into edge cases, then it should be fine. – Matt Fenwick Oct 20 '11 at 21:59
You are completely removing the advantage of using regular expressions by matching any characters that happen to be in the string. Your pattern will also match: "Hey I know_you_did not want this". – Sinan Ünür Oct 20 '11 at 21:59
@Sinan -- you are definitely right that it will match lots of things, but that's what the question asked for. And in my defense, I did say that it "could easily go wrong". But it seemed to me that the OP might be looking for a quick 'n dirty. – Matt Fenwick Oct 20 '11 at 22:02
@Sinan Ünür, There are two primary uses for regex matching: validation and data extraction. Your example file name does NOT match the OP's pattern, so it doesn't matter that Matt's pattern matches it. The OP asked for data extraction, not data validation. – ikegami Oct 20 '11 at 22:13

Some simple field manipulation with split

$date = (split /[_.]/, $filename)[2];

You split the string on underscore and period, and grab the third field with a subscript.

share|improve this answer
 my ($datepart) = ( $filename =~ /([0-9]{4}[0-9]{2}[0-9]{2})[.]txt\z/ );

my ($datepart) creates list context. A regular expression match in list context returns capture groups. The part /(...)/ is a capture group. Inside, you are matching year (4 digits), month (2 digits), and day (2 digits) followed by the .txt extension at the end of the string.

I did it this way so that it is easy to change to:

 my ($year, $month, $day) = ( 
      $filename =~ /([0-9]{4}) ([0-9]{2}) ([0-9]{2})[.]txt\z/x

if you decide you need the the components separately. If all you want is the YYYYMMDD,

 my ($datepart) = ( $filename =~ /([0-9]{8})[.]txt\z/ );

would also have worked.

See also perldoc perlretut.

The problem with using split '.' is simple: The first argument to split is a pattern. In a pattern . is special: It means "match any character". If you had split using split /[.]/, you would have put . in a character class removing the special meaning, and treating it as a character that matches itself. I prefer that to split /\./ or splitqr{.}` for aesthetic reasons.

As @TLP shows, it is possible to use split to get the correct part in this example, but it is better to use m// to ensure you are matching only what you want to match.

share|improve this answer
Thanks Sinan, could you please let me know how it goes? – Sachin Chourasiya Oct 20 '11 at 21:50
Thanks Sinan and Appreciate your nice explanation. I am upvoting you :) – Sachin Chourasiya Oct 20 '11 at 21:56

Not the answer you're looking for? Browse other questions tagged or ask your own question.