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Let us say that we have following array:

my @arr=('Jan','Feb','Mar','Apr');
my @arr2=@arr[0..2];

How can we do the same thing if we have array reference like below:

my $arr_ref=['Jan','Feb','Mar','Apr'];
my $arr_ref2; # How can we do something similar to @arr[0..2]; using $arr_ref ?
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3 Answers 3

Just slice the reference (the syntax is similar to dereferencing it, see the comments), and then turn the resulting list back into a ref:

my $arr_ref2=[@$arr_ref[0..2]];
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1  
that's not what that does. @$ref[...] is an array slice using a reference; there is no intermediate array generated. See perlmonks.org?node=References+quick+reference –  ysth Apr 23 '10 at 17:02
1  
oh, maybe by "resulting array" you mean what's generated by the array slice? That's not an array, it's a list. –  ysth Apr 23 '10 at 17:03
    
@ysth: My bad, updated. –  Jefromi Apr 23 '10 at 17:10
1  
@ysth: Surely it's not misleading to think of an array slice using reference as slicing the array which is the result of dereferencing the reference? –  Jefromi Apr 23 '10 at 17:12
1  
It's bad to make people think @$ref[...] is as inefficient as (@$ref)[...] –  ysth Apr 23 '10 at 17:37
my $arr_ref2 = [ @$arr_ref[0..2] ];
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To get a slice starting with an array reference, replace the array name with a block containing the array reference. I've used whitespace to spread out the parts, but it's still the same thing:

 my @slice =   @   array   [1,3,2];
 my @slice =   @ { $aref } [1,3,2];

If the reference inside the block is a simple scalar (so, not an array or hash element or a lot of code), you can leave off the braces:

 my @slice =   @$aref[1,3,2];

Then, if you want a reference from that, you can use the anonymous array constructor:

 my $slice_ref = [ @$aref[1,3,2] ];
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