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I have a:

 my ($pid) = ($_ =~ m/^.*\.(\d+)$/);

What does $pid matches?

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closed as off-topic by Wooble, Riccardo Marotti, Roman C, musefan, Patrick Evans Jul 5 '13 at 11:49

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up vote 3 down vote accepted

You are not matching $pid here, but $_ to the regex - m/^.*\.(\d+)$/. The $pid will store the result of matching $_ with the regex pattern.

Here's an explanation of regex pattern:

m/       # Delimiter
   ^     # Match beginning of string
   .*    # Match 0 or more repetition of any character except a newline
   \.    # Match a dot (.)
   (     # Start a capture group
     \d+ # Match 1 or more repetition of digits.
   )     # Close capture group
   $     # Match end of string
/        

So, if the value in $_ matches the above pattern, $pid will contain the value captured in first captured group, since you have got a parenthesis around $pid, so your matching operation will evaluate in list context.

Your matching is effectively the same as:

# Note you can remove the `m`, if you use `/` as delimiter.
my ($pid) = /^.*\.(\d+)$/   

One more thing to notice is that, since you are doing nothing with the text matched at the beginning, you don't really need to match it. So, you can remove .* altogether, but in that case you have to remove the caret (^) from there. So, your regex now can be replaced with:

my $(pid) = /\.(\d+)$/
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Actually, $pid will contain the first capture group, since the parens around $pid make this a list assignment, and so the =~ is evaluated in list context. – Ilmari Karonen Jul 4 '13 at 6:15
    
@llmari. OOPs. Missed that. – Rohit Jain Jul 4 '13 at 6:17
    
To pick a few more nits, "sentence" above should be "string", and . will match any character except a newline (since the /s switch is not used). That one's probably a bug, though. Assuming that it is, the whole thing could be written more compactly as my ($pid) = ($_ =~ /\.(\d+)$/);, or even just my ($pid) = /\.(\d+)$/;. Also, $ can also match the position just before a newline at the end of the string. – Ilmari Karonen Jul 4 '13 at 6:21
    
@IlmariKaronen. Well, let me re-structure my answer. :) – Rohit Jain Jul 4 '13 at 6:25
    
@IlmariKaronen. Refactored my answer now. :) As for your last statement, $ always matches the position just before the newline at the end of the string, unless we are talking about multiline matching right? – Rohit Jain Jul 4 '13 at 6:30

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