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I am new to perl and am facing some problem in skipping to next element of an array inside a foreach loop without reiterating the loop. Suppose I have the following case where I am going through a array using a foreach loop.

 foreach (@lines){  
     ...  
     print "$_";     #print current line  
     if (cond){      #this condition is met by one "line" in @lines  
        #goto next line;  
        $_=~s/expr/substitute_expr/g;     #substitute in the next line  
      }  
     ...
 }

Is it possible to do this in perl. With a file handler it is possible using the <> operator, as follows

foreach $line (<FILE>){  
    print "$line\n";        #print this line  
    $line = <FILE>;  
    print "$line";        #print next line  
} 

Is there any way this can be replicated with an array.
Is there any way to do this without using next or a duplicate array

share|improve this question
2  
What's wrong with next? –  Сухой27 May 22 '13 at 12:13

2 Answers 2

You can use array indexes:

for my $i (0 .. $#lines) {
    # ...
    print $lines[$i];
    if (cond()) {
        $lines[ $i + 1 ] =~ s/pattern/replace/g;
    }
}

This will, however, process the "next" line again in the next iteration of the loop. If you do not want that, you can use the C-style for:

for (my $i = 0; $i < $#list ; $i++) {
    # ...
}

A more advanced technique would be to define an iterator:

#!/usr/bin/perl
use warnings;
use strict;


sub iterator {
    my $list = shift;
    my $i = 0;
    return sub {
        return if $i > $#$list;
        return $list->[$i++];
    }
}


my @list = qw/a b c d e f g h/;
my $get_next = iterator(\@list);

while (my $member = $get_next->()) {
    print "$member\n";
    if ('d' eq $member) {
        my $next = $get_next->();
        print uc $next, "\n";
    }
}
share|improve this answer

Use a count loop as in:

use strict;
use warnings;

my @list = (1, 2, 3);
# as the item after the last can't be changed,
# the loop stops before the end
for (my $i = 0; $i < (scalar @list - 1); ++$i) {
    if (2 == $list[$i]) {
        $list[$i + 1] = 4;
    }
}

print join ',', @list;

output:

perl countloop.pl
1,2,4
share|improve this answer
    
scalar @list - 1 is same as @list - 1 and as $#list (and it wasn't my downvote) –  Сухой27 May 22 '13 at 12:18
    
@mpapec - as they are the same - why comment on my using the one I like best? –  Ekkehard.Horner May 22 '13 at 12:37
    
@TheDownVoters - how can I mend my evil ways if you don't give me a hint at what's wrong? –  Ekkehard.Horner May 22 '13 at 12:49
    
Your for loop never iterates over the last element. If that is intended you should put a comment next to that line. –  Brad Gilbert May 23 '13 at 4:29
    
@BradGilbert - Thanks, done. –  Ekkehard.Horner May 23 '13 at 6:17

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