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I have a hash(%hash) with the following values

test0  something1
test1  something
test2  something

I need to build an array from the keys with the following elements

@test_array = part0_0 part1_0 part2_0

Basically, I have to take testx (key) and replace it as partx_0

Of course, I can easily create the array like the following

my @test_array;

foreach my $keys (keys %hash) {
    push(@test_array,$keys);
}

and I will get

@test_array = test0 test1 test2

but what I would like is to get part0_0 instead of test0, part1_0 instead of test1 and part2_0 instead of test2

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possible duplicate of Perl, convert hash to array –  Igor Oks Dec 17 '11 at 7:48
    
This is not even close to an exact duplicate of the linked post, and the answers there wouldn't answer this question. –  ikegami Dec 17 '11 at 8:51

3 Answers 3

up vote 4 down vote accepted

Looks like a good time to use the non-destructive /r option for substitutions.

my @array = map s/^test(\d+)/part${1}_0/r, keys %a;

For perl versions that do not support /r:

my @array = map { s/^test(\d+)/part${1}_0/; $_ } keys %a:
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1  
Note: Only available in 5.14+ –  ikegami Dec 17 '11 at 9:27
    
@ikegami Where do you look that up? –  TLP Dec 17 '11 at 9:31
1  
@TLP : perldoc perl5140delta –  Zaid Dec 17 '11 at 9:57
    
@Zaid That's only good if you already know which version it came with, though... Like a phonebook that's sorted in numerical order. =P –  TLP Dec 17 '11 at 10:13
    
@TLP : I sense a question coming along ;) ... go ahead and ask it before I do :) –  Zaid Dec 17 '11 at 10:14
my @a;
for (keys %hash) {
   push @a, 'part' . ( /^test([0-9]+)/ )[0] . '_0';
}

But that just begs for map to be used.

my @a =
   map { 'part' . ( /^test([0-9]+)/ )[0] . '_0' }
    keys %hash;
share|improve this answer
my @array = map { s/^.+([0-9]).*/part$1_0/g;split }  keys %hash;
share|improve this answer
    
split? What's that about? –  TLP Dec 17 '11 at 10:45

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