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You can do something like:

my $hr = {start=>3, end=>20};
for my $i ($hr->{start}..$hr->{end}){
   ... 
}

But what if you don't want $i and instead want to use and increment the $hr->{start} value? The following won't work:

for $hr->{start} ($hr->{start}..$hr->{end}){
   ... 
}

Alternatives:

  1. The following is one way to handle it, but is there a way to include the incrementation with the iteration variables?

    for ($hr->{start}..$hr->{end}){
       ... 
       $hr->{start}++;
    }
    
  2. Another way using a c-for-loop:

    for ( ; $hr->{start} <= $hr->{end} ; $hr->{start}++){
       ... 
    }
    
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3 Answers 3

up vote 3 down vote accepted

A Perl-style for/foreach VAR (LIST) construction won't do what you want. The index variable must be a simple scalar. More importantly, the index variable is always localized and aliased to the items in the LIST, and its meaning is lost outside the foreach loop.

my $foo = 42;
for $foo (1..10) {
   ...
}
print $foo;      # 42

But within a C-style for loop you can do anything you want with the expressions.

$hr = { start => 1 , end => 10 };
for ( ; $hr->{start} <= $hr->{end} ; $hr->{start}++ ) {
    ...
}
print $hr->{start};       # now it is 11
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2  
I see you updated your question to include the C-style loop 28 seconds before I submitted this answer. –  mob Apr 26 '12 at 20:43
    
I see you posted the same basic explanation as I did a few seconds before me, so his update's fair. :) –  dannysauer Apr 26 '12 at 20:50
    
haha yes. all's fair on SO –  vol7ron Apr 26 '12 at 21:32

Increment at end of loop:

for (; $hr->{start} <= $hr->{end}; ++$hr->{start}) {
   ... 
}

Increment at start of loop:

while ($hr->{start}++ <= $hr->{end}) {
   ... 
}
share|improve this answer
1  
ahh a while loop, d'oh. haven't used one of those in perl for simple incrementation iterations in a while (pun). –  vol7ron Apr 26 '12 at 21:25
1  
every while loop can be written as an equivalent C-style for loop, and vice versa –  mob Apr 26 '12 at 21:32
    
@mob, yes, but one form is usually simpler than the other. I picked the simpler form in both cases. The question was about style, after all. –  ikegami Apr 26 '12 at 23:29

Well, you could always:

for ($hr->{start}..$hr->{end}){
  $hr->{start} = $_;
  ...
}

Basically, if you don't stick a "my" in front of the variable, perl sticks an implicit "local" in front of the loop variable. And since you can't localize a reference (that wouldn't make any sense, if you think about it), you can't use a reference as the iterator.

share|improve this answer
    
+1 that would at least keep it at the top –  vol7ron Apr 26 '12 at 21:28

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