4

my question is rather simple,. but can't resolve "Inappropriate I/O control operation" error which I'm receiving after execution of my Perl script.

#!C:/Perl/bin/perl.exe -w
use strict;

my $file = "D:/file.csv";
open(my $data, '<', $file) or die "Could not open '$file' $!\n";
while (my $line = <$data>) {
    chomp $line; 
    my @fields = split "," , $line;
    print $fields[1]."\n";
}

any idea, what I'm doing wrong? I'm running this script on ActiveState perl on windows7

  • 5
    I see nothing obviously wrong with your code. Can you show us the full error message, and tell us which line it says the error is on? – Ilmari Karonen Feb 23 '14 at 13:47
  • What is D:? Is it a network share? – Borodin Feb 23 '14 at 13:56
  • "after execution"? what is executing this script? – ysth Feb 23 '14 at 15:02
  • 1
    Are you sure the script says open or die $!; and not open && die $!? – Zaid Feb 23 '14 at 15:49
  • 1
    @taiko : Your comment to ysth conforms with my answer. The only time $! means something is immediately after failure, so the value seen through the debugger should not be considered in the event of a successful open. – Zaid Feb 23 '14 at 17:01
5

My suspicion is that your script is printing the value of $! through an open && die $! or open or die $!; print $!;.

Here is a minimal script that reproduces the same issue on Windows:

C:\> perl -e "open my $fh, '<', 'file_that_opens' && die $!"
Inappropriate I/O control operation

And here is what happens on *nix:

$ perl -e 'open my $fh, "<", "file_that_opens" && die $!'
Inappropriate ioctl for device

This behavior is documented

According to perldoc perlvar, $! is only meaningful in the event of a failure. When open is called, it sets a value for $!, but the value is only useful if the open did not succeed:

... $! is meaningful only immediately after a failure:

if (open my $fh, "<", $filename) {
              # Here $! is meaningless.
    ...
}
else {        # ONLY here is $! meaningful.
    ...       # Already here $! might be meaningless.
}
# Since here we might have either success or failure,
# $! is meaningless.

Here, meaningless means that $! may be unrelated to the outcome of the open() operator.

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