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How can I match a multiline block in the following statements, given the blocks does not nest each other or itself:

       if (EXPR) BLOCK
       if (EXPR) BLOCK else BLOCK
       if (EXPR) BLOCK elsif (EXPR) BLOCK ... else BLOCK
       unless (EXPR) BLOCK
       unless (EXPR) BLOCK else BLOCK
       unless (EXPR) BLOCK elsif (EXPR) BLOCK ... else BLOCK
       LABEL while (EXPR) BLOCK
       LABEL while (EXPR) BLOCK continue BLOCK
       LABEL until (EXPR) BLOCK
       LABEL until (EXPR) BLOCK continue BLOCK
       LABEL for (EXPR; EXPR; EXPR) BLOCK
       LABEL foreach VAR (LIST) BLOCK
       LABEL foreach VAR (LIST) BLOCK continue BLOCK
       LABEL BLOCK continue BLOCK

If this cannot be done with regex, is a there a state machine capable doing so?

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up vote 9 down vote accepted

Don't try to parse perl yourself. If you really need to, use PPI, which does a decent job.

use PPI;
my $source = 'LABEL: { print "block" } continue { print "cont block" }';
my $doc = PPI::Document->new(\$source);
my $blocks = $doc->find("PPI::Structure::Block");
print ":$_:\n" for @$blocks;
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He's not parsing it. He's matching it; and a very small subset, at that. – jrajav Nov 26 '12 at 1:22
1  
What do you think is the difference between parsing and matching here? Also, why do you think it's a "very small subset"? – melpomene Nov 26 '12 at 1:27
    
The question could use some context in order to see whether it's attempted parsing or just matching a small subset. – engineerC Nov 26 '12 at 1:27
1  
Again, why do you think there's a difference here? – melpomene Nov 26 '12 at 1:30
1  
added an example to show how easy it is to "do it right" – ysth Nov 26 '12 at 1:31

This can't be done at all. In general, if you want to parse arbitrary Perl code, you need to be able to execute Perl as well, because use and BEGIN run at parse time and can affect how the rest of the code is parsed.

Example:

use Some::Module;
foo / 1;
is_this_code();
#/;

How this is parsed depends on how foo is declared. If it's a normal function, it's called with the result of the regex / 1;\nis_this_code();\n#/. If it's declared with a prototype of (), the code will divide the return value of foo by 1, then call is_this_code().

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