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A fellow Stackoverflower tried to use @ARGV in his END block but was unable to.

Why is it that @ARGV is only defined inside the BEGIN block with the following one-liner:

$ perl -lne 'BEGIN{ print "BEGIN"  if @ARGV }
                    print "MIDDLE" if @ARGV }
                  { print "END"    if @ARGV  ' file
  BEGIN

perldoc perlrun doesn't shed any light on the matter. What's going on here?

share|improve this question
    
@PaulTomblin : Nope. That quirky thing Perl allows you to do is affectionately called the Eskimo kiss }{ –  Zaid Jan 2 '12 at 16:47
    
@JonathanLeffler : The END is implicit in the }{. One could also have written it as } END { or statement; END {. This is something only possible with a one-liner. As for the three lines, there is nothing stopping me from writing it all out on one line but I hate it when the code activates the scroll bar. –  Zaid Jan 2 '12 at 17:03
    
Run the original script with 2 or more file names. Then @ARGV is defined in the middle. It still isn't defined when the block with the implied END (it isn't strictly the END block; it is just a block that is executed after the while (<>){ ... } loop has completed) is executed, because all the arguments have been shifted out of @ARGV by that time. –  Jonathan Leffler Jan 2 '12 at 17:38
    
I assume there is some implicit shifting going on, but it is strange that it is not mentioned anywhere. $ARGV is probably assigned shift @ARGV during the implicit open, e.g. $ARGV = shift @ARGV; open ARGV or warn ... –  TLP Jan 2 '12 at 21:30

2 Answers 2

up vote 5 down vote accepted

First, arrays cannot be undefined. You are checking if the array is empty. To understand why it's being emptied, you need to understand -n. -n surrounds your code with

LINE: while (<>) {
   ...
}

which is short for

LINE: while (defined($_ = <ARGV>)) {
   ...
}

ARGV is a magical handle that reads through the files listed in @ARGV, shifting out the file names as it opens them.

$ echo foo1 > foo
$ echo foo2 >>foo

$ echo bar1 > bar
$ echo bar2 >>bar

$ echo baz1 > baz
$ echo baz2 >>baz

$ perl -nlE'
    BEGIN { say "Files to read: @ARGV" }
    say "Read $_ from $ARGV. Files left to read: @ARGV";
' foo bar baz
Files to read: foo bar baz
Read foo1 from foo. Files left to read: bar baz
Read foo2 from foo. Files left to read: bar baz
Read bar1 from bar. Files left to read: baz
Read bar2 from bar. Files left to read: baz
Read baz1 from baz. Files left to read:
Read baz2 from baz. Files left to read:

Keep in mind that BEGIN blocks are executed as soon as they are compiled, so the <ARGV> hasn't yet been executed when the BEGIN block is being executed (even though it appears earlier in the program), so @ARGV hasn't been modified yet.

-n is documented in perlrun. ARGV, @ARGV and $ARGV are documented in perlvar.

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Nice clear example here. Unfortunately perlrun doesn't mention anything about the implicit shifting. Nor does perlvar. –  Zaid Jan 3 '12 at 7:11
1  
@Zaid, oh indeed. I'll submit a patch tomorrow if I remember. –  ikegami Jan 3 '12 at 9:09

A BEGIN block runs before anything else. At that point, @ARGV has everything being passed and a test for non-emptiness returns true. When the END block runs, the elements of the original @ARGV have been shifted away by the implicit while(<>) {...} loop generated by the '-n' switch. Since there is nothing left, the empty @ARGV tests false. Change the END block to:

{print "END" if defined @ARGV}

As each element of @ARGV is shifted, it is stored in $ARGV. Hence, the block could be also rewritten:

{print "END" if $ARGV}
share|improve this answer
    
I don't think that's the case since perlrun says the -n switch isn't much more than an implicit while(<>){...} loop. Doesn't say anything about @ARGV being consumed. –  Zaid Jan 2 '12 at 17:08
    
Of course, I could be misreading the perldocs or be misled by it. Both have happened in the past :( –  Zaid Jan 2 '12 at 17:10
1  
It appears that a while (<>) { .. } loop (independent of the use of -p or -n) does shift elements off @ARGV as it processes them. Try: perl -e 'while(<>){print "CHECK: @ARGV\n";}' x y z | uniq (where x, y and z should be files with at least one line in them). You could add a BEGIN too, if you want. You'll see that @ARGV is shifted as the files are processed. –  Jonathan Leffler Jan 2 '12 at 17:32
2  
@TLP Yes, I know this from my own heuristics as well as Jonathan's. As for independent documentation, the Perl Cookbook notes, "...the file-processing loop removes one argument at a time from '@ARGV' and copies the filename into the global variable $ARGV. If the file cannot be opened, Perl goes on to the next one. Otherwise, it processes a line at a time. When the file runs out, the loop goes back and opens the next one, repeating the process until '@ARGV' is exhausted." –  JRFerguson Jan 2 '12 at 22:02
1  
The second code replacement is even. 1) It also doesn't compile. 2) $ARGV will only be false if the line you are reading comes from a file 0. Why would you check that? –  ikegami Jan 3 '12 at 1:40

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