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I am trying to remove all lines from the array that contains a ':' character. This is a part of a bigger system so I can't change much of the interface nor am I an expert in perl.

I Started With This:

sub read_file {
    my $file = shift;
    my $aoh  = csv(in => $file, headers => {'a' => 'aa'});

    foreach my $row (@$aoh) {
        # trim any spurious leading/trailing space (in-place edit)
        do { s/^\s+//; s/\s+$// } for values %$row;

        # convert start/end bit values to be zero-based
        for my $foo ('c', 'd') {
            if ($row->{$foo} =~ /^\d+$/) {
                $row->{$bit} -= 100;
            }
        }
    }

    return $aoh;
}

I tried this

sub read_file {
    my $file = shift;
    my $aoh  = csv(in => $file, headers => {'a' => 'aa'});
    my $aohf = grep { substr($_->{'a'}, 0, 1) eq ":" } @$aoh;

    foreach my $row (@$aohf) {
        # trim any spurious leading/trailing space (in-place edit)
        do { s/^\s+//; s/\s+$// } for values %$row;

        # convert start/end bit values to be zero-based
        for my $foo ('c', 'd') {
            if ($row->{$foo} =~ /^\d+$/) {
                $row->{$bit} -= 100;
            }
        }
    }

    return $aohf;
}

After trying a few different things I keep getting an error similar to this: Can't use string ("5") as an ARRAY ref while "strict refs" in use at

1 Answer 1

4

In your line:

my $aohf = grep { substr($_->{'a'}, 0, 1) eq ":" } @$aoh;

you are assigning the result of grep to a scalar ($aohf).

And according to perldoc -f grep:

In scalar context, [it] returns the number of times the
expression was true.

Therefore, you are assigning a number (probably "5", by the looks of your error) to $aohf. And in the very next line of code, you are trying to de-reference this "5" as an array with @$aohf. That's not going to work.

You probably intended to write the grep line to assign to an array, like this:

my @aohf = grep { substr($_->{'a'}, 0, 1) eq ":" } @$aoh;

Then, you can write the first line of your foreach loop like this, without the need to de-reference anything:

foreach my $row (@aohf) {

So basically, you assign to an array, and use an array. No de-referencing needed! (This is simpler than assigning to a scalar, and then attempting to de-reference the scalar into an array.)

Try out my changes, and see if they work for you.


EDIT:

The original code returned $aoh, which is a reference to an array. If you still want to return a reference to an array in the new code, you can change the return statement to:

return \@aohf;

The \ before the @aohf gets the reference to the @aohf array, which is then returned to the calling code.

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  • This worked, however, the function using the return is not happy because it is a different data type how do I convert the array back into a scaler? May 7, 2019 at 15:57
  • You'll want to return \@aohf, which returns a reference to an array, just like the old code did. (I added this to the EDIT section of my reply, which covers it in a little more detail.)
    – J-L
    May 7, 2019 at 17:09

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