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In awk I can write: awk -F: 'BEGIN {OFS = FS} ...'

In Perl, what's the equivalent of FS? I'd like to write

perl -F: -lane 'BEGIN {$, = [what?]} ...'

update with an example:

echo a:b:c:d | awk -F: 'BEGIN {OFS = FS} {$2 = 42; print}'
echo a:b:c:d | perl -F: -ane 'BEGIN {$, = ":"} $F[1] = 42; print @F'

Both output a:42:c:d

I would prefer not to hard-code the : in the Perl BEGIN block, but refer to wherever the -F option saves its argument.

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I'm not very familiar with awk... can you provide an example of what you're trying to accomplish with perl? I can probably answer that better than an awk->perl question. I gather that OFS is theoutput field separator (which you correctly identified as $, in perl), and FS is the input? field separator? I don't think perl has such a concept... although maybe split()'s functionality is similar, however it doesn't have a default "separator"--it must be provided directly. –  Flimzy Jun 23 '11 at 22:42
    
@Flimzy, question updated –  glenn jackman Jun 23 '11 at 22:50
    
The parameter to -F is actually a regex, not a literal string, so I don't think it's directly accessible by any special variable. –  friedo Jun 23 '11 at 22:58
    
I think you would get better answers if you actually said what you wanted to accomplish, instead of alluding to various other commands/programs and how they work. –  TLP Jun 23 '11 at 23:59
1  
@TLP, I want to know if there is an "input field separator" variable in Perl -- I didn't find it in the docs. –  glenn jackman Jun 24 '11 at 1:25

5 Answers 5

If you know the exact length of input, you could do this:

echo a:b:c:d | perl -F'(:)' -ane '$, = $F[1]; @F = @F[0,2,4,6]; $F[1] = 42; print @F'

If the input is of variable lengths, you'll need something more sophisticated than @f[0,2,4,6].

EDIT: -F seems to simply provide input to an automatic split() call, which takes a complete RE as an expression. You may be able to find something more suitable by reading the perldoc entries for split, perlre, and perlvar.

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There is no input record separator in Perl. You're basically emulating awk by using the -a and -F flags. If you really don't want to hard code the value, then why not just use an environmental variable?

$ export SPLIT=":"
$ perl -F$SPLIT -lane 'BEGIN { $, = $ENV{SPLIT}; } ...'
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up vote 5 down vote accepted

To sum up, what I'm looking for does not exist:

  1. there's no variable that holds the argument for -F, and more importantly
  2. Perl's "FS" is fundamentally a different data type (regular expression) than the "OFS" (string) -- it does not make sense to join a list of strings using a regex.

Note that the same holds true in awk: FS is a string but acts as regex:

echo a:b,c:d | awk -F'[:,]' 'BEGIN {OFS=FS} {$2=42; print}'

outputs "a[:,]42[:,]c[:,]d"

Thanks for the insight and workarounds though.

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Darnit...

The best I can do is:

echo a:b:c:d | perl -ne '$v=":";@F = split("$v"); $F[1] = 42; print join("$v", @F) . "\n";'

You don't need the -F: this way, and you're only stating the colon once. I was hoping there was someway of setting variables on the command line like you can with Awk's -v switch.

For one liners, Perl is usually not as clean as Awk, but I remember using Awk before I knew of Perl and writing 1000+ line Awk scripts.

Trying things like this made people think Awk was either named after the sound someone made when they tried to decipher such a script, or stood for AWKward.

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You can sort of cheat it, because perl is actually using the split function with your -F argument, and you can tell split to preserve what it splits on by including capturing parens in the regex:

$ echo a:b:c:d | perl -F'(:)' -ane 'print join("/", @F);'
a/:/b/:/c/:/d

You can see what perl's doing with some of these "magic" command-line arguments by using -MO=Deparse, like this:

$ perl -MO=Deparse -F'(:)' -ane 'print join("/", @F);'
LINE: while (defined($_ = <ARGV>)) {
    our(@F) = split(/(:)/, $_, 0);
    print join('/', @F);
}
-e syntax OK

You'd have to change your @F subscripts to double what they'd normally be ($F[2] = 42).

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