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Ok so I have alot of variables in numeric order. Unfortunately they are not in an array. Now I need to do some work on each variable and was wondering what would be the smartest way to do so. I've read that using a variable in a variable name is dangerous, since it can cause complications. I was thinking of something like this below but would appreciate guidance :)

my $var10
my $var20
my $var30
...
my $var300

For (my $t = 10; $t < 301; $t++){$var$t ...}

EDIT: let's say I wanted to push these variable's into an array. How would I best proceed?

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Any particular reason you haven't put them in an array? –  StephenTG Jul 19 '13 at 13:55
    
Are these global variables or lexical variables? (our or my?) –  Borodin Jul 19 '13 at 13:56
5  
Using 300 scalar variables instead of 1 array is somewhat like keeping all your money in pennies, except worse. There is no benefit whatsoever by doing it your way, only downsides. –  TLP Jul 19 '13 at 14:02
    
This is the opposite end to "How do I store my data in variables whose names are constructed at run time". And the reason why that is a bad idea is exactly this - you can't tell what variables to use later on. –  Borodin Jul 19 '13 at 14:14
4  
@user2001504 You are completely misunderstanding Perl data structures. What you call a "variable" is a scalar. An array is a list of scalars. There are no "types", any data point can be stored in any scalar. In short: If you can store it in a scalar, you can store it in an array. –  TLP Jul 19 '13 at 15:15
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3 Answers 3

up vote 0 down vote accepted

Pull all your variables' values into a hash using

my %var;
{
  for (1 .. 30) {
    my $n = $_ * 10;
    $var{$n} = eval "\$var$n";
  }
}

then you can

for (1 .. 30) {
  my $t = $_ * 10;
  $var{$t}...
}

or just

for my $t (sort { $a <=> $b } keys %var) {
  $var{$t}...
}

but don't do it again!

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One "no eval" solution would be to disable strict refs and do something like for (0 .. 300) { no strict 'refs'; our $name = "var$_"; $var{$name} = $$name; } –  TLP Jul 19 '13 at 14:35
    
@TLP: Except that won't work if $var10 etc. are lexicals. That's why I asked in my comment, but the OP doesn't want to tell! –  Borodin Jul 19 '13 at 14:47
    
There is no reason to be wary of eval here. Its use with tainted data (derived from an external source) is the only situation where it can be risky. –  Borodin Jul 19 '13 at 14:50
    
Thanks for this answer. Sry Borodin, I edited my OP to clarify –  Gsuz Jul 19 '13 at 15:03
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Refactor so that they are in an array.

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1  
Unfortunately, that is the only reasonable answer possible. –  innaM Jul 19 '13 at 13:53
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You could also use a hash:

%h = ('var10' => 42, 'var20' => ...)
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