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The ; is used as a statement delimiter, so placing multiple ; at the end of a statement is fine as it just adds empty statements.

I came across this code which has multiple ; at the end but deleting them causing errors:

$line =~s;[.,]$;;;

should be same as

$line =~s;[.,;]$;

but it is not. What's going on?

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You did more than just remove semicolons in the second statement, you added one in the middle of it. –  Andrew Marshall Dec 13 '11 at 4:38
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Evidently whoever wrote it thought it had high amusement value –  Zaid Dec 13 '11 at 6:27
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The ; is NOT used as a statement delimiter (like it is in most other languages). The ; in Perl is used as a statement separator. This is why the semicolon is optional on the last statement in a block. –  tadmc Dec 13 '11 at 14:14

3 Answers 3

up vote 7 down vote accepted

In your code only the last ; is the statement delimiter. The others are regex delimiters which the substitution operator takes. A better way to write this is:

$line =~s/[.,]$//;

Since you must have the statement delimiter and regex delimiters in your statement, you can't drop any of the trailing ;

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in the snippet provided by you a ; is used as a delimiter for a search-n-replace regular expression.

$line =~s;[.,]$;;;

is equivalent to

$line =~ s/[.,]$//;
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3  
Just to be clear - yes, it is legal to do. No, you should never ever do that in your code unless you want a raving psychopath to bash your head in. And by raving psychopath I mean the next developer who has to maintain your code. –  DVK Dec 13 '11 at 15:05

A semicolon is not universally a statement separator; it can also be a quoted string or regex delimiter. Or even a variable name, as in this classic JAPH by Abigail, entitled "Things are not what they seem like."

$;                              # A lone dollar?
=$";                            # Pod? 
$;                              # The return of the lone dollar?
{Just=>another=>Perl=>Hacker=>} # Bare block?
=$/;                            # More pod?
print%;                         # No right operand for %?
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