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What is the proper way to write something equivalent to the follow:

while ( my $first = $iterator->next && my $second = $iterator->next ) {
  # do work
}

This does not run - I wanted $first and $second in proper scope inside the while loop.

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5  
You didn't say what you're trying to do. If your goal is to pull two items from an iterator at once, exiting the loop if there are not at least two items remaining in it or if one of the items has a false value, this will work fine and your variables $first and $second will have the proper scope. –  Dan Nov 10 '09 at 21:58
    
Are you doing it with && to catch the end of the iterator? –  brian d foy Nov 10 '09 at 22:35
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4 Answers

up vote 17 down vote accepted

You want parentheses around the assignment expressions.

while ((my $first = $iterator->next) && (my $second = $iterator->next)) {
   # ...
}

&& has higher precedence than =, so your original code looked like it was trying to do an assignment like x && y = z.

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+1 Even shorter :) –  Andomar Nov 10 '09 at 22:08
    
Ah, I thought I was doing it plain wrong, but just a silly mistake. Thanks! –  Timmy Nov 10 '09 at 22:12
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This is where and would be more appropriate than &&:

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

my $it = make_iterator();

while ( my $first = $it->() and my $second = $it->() ) {
    print "$first\t$second\n";
}

sub make_iterator {
    my @x = qw(a b c);
    return sub {
        return shift(@x) if @x;
        return;
    };
}

Output:

C:\Temp> it
a       b

I would be tempted to take the assignment to $second out of the while (depends on the meaning of the iterator not returning an even number of elements):

while ( my $first = $it->() ) {
    defined(my $second = $it->())
        or warn "Iterator returned odd number of elements\n"
        and last;
    print "$first\t$second\n";
}

Output:

C:\Temp> it
a       b
Iterator returned odd number of elements
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I tend to write something like that as:

 while( my( $first, $second ) = map { ... } 1..2 ) {
      ...
      }

You may not like that syntax because you aren't used to doing things that way, but it follows a couple rules that I think make code easier:

  • I don't type the same thing twice
  • I assign to all the variables at once
  • I use the map to generate the list when I need to run something more than once.
  • I don't use logical operators gratuitously.

However, there's another problem. You have to figure out what you are really testing in the while condition, and make that apparent to the next programmer. I'm not sure why you have two things in that condition. Is it okay to read the iterator if there is only one thing (i.e. what happens to the unprocessed odd man out)?

A much better solution would be some way that you show what you are trying to do without showing the mechanics. Not knowing anything about your iterator, I might suggest that you decorate it with another method that returns two items (or maybe the empty list if it is at the end):

 while( my( $first, $second ) = $iterator->read_two ) {
      ...;
      }

If that doesn't make the situation clear, decorate it with a method to ask a particular question:

 while( $iterator->two_things_left ) {
      my( $first, $second ) = $iterator->read_two;
      ...;
      }
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Try:

my $first;
my $second;
while (($first = $iterator->next) && ($second = $iterator->next)) {
  # do work
}
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2  
Why? That is, if $first and $second are simply loop variables, why give them broader scope? –  Telemachus Nov 10 '09 at 22:07
    
@Telemachus: Tried while(my ($a,$b) = (1,1)) then this, but yeah mobrule's answer is better (I voted for it) :) –  Andomar Nov 10 '09 at 22:09
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