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what could this line possibly mean?

my $x = shift ;
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Perl has built-in docs for every standard function. They're also online. In this case, "perldoc -f shift." – Sherm Pendley Nov 17 '08 at 21:27
30  
It doesn't matter if he Googled it or not. It's a great question and should definitely be a part of the Stack Overflow database. – cowgod Nov 17 '08 at 21:29
6  
@friedo - Agreed 100%! This should not become a "read the docs to me" site. – Sherm Pendley Nov 18 '08 at 18:34
    
perldoc -f shift contains useful information from "perlfunc". See perfun, or even perlfun: shift(). None of the answers do a real good job of linking/pulling from documentation. So, "RTFM" or not, a reference should be included. – user166390 Jan 17 '12 at 4:36

shift() is a built in Perl subroutine that takes an array as an argument, then returns and deletes the first item in that array. It is common practice to obtain all parameters passed into a subroutine with shift calls. For example, say you have a subroutine foo that takes three arguments. One way to get these parameters assigned to local variables is with shift like so:

sub foo() {
  my $x = shift;
  my $y = shift;
  my $z = shift;
  # do something
}

The confusion here is that it appears shift is not being passed an array as an argument. In fact, it is being passed the "default" array implicitly, which is @_ inside a subroutine or @ARGV outside a subroutine.

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or @ARGV, if you're not in a function (see my answer) – Alnitak Nov 17 '08 at 21:31
1  
you don't want the '()' after the name of the sub - it should be 'sub foo {...'. With the '()' you are saying that foo accepts no arguments, which is not what you want in this case – EvdB Nov 20 '08 at 15:09
3  
I prefer to use sub foo{ my($x,$y,$z) = @_ } myself, it is less repetitive. – Brad Gilbert Mar 22 '11 at 17:43

The shift function removes the first element from an array, and returns it. The array is shortened by one element.

The default array (if one isn't given as a parameter) is @_ if you're in a function, or @ARGV if you're at file scope.

So in this case $x is either being set to the first function parameter, or to the first command line parameter.

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7  
It should be added that @_ is the array containing the parameters given to a function, and @ARGV is the array containing the parameters given to a program. – Svante Nov 17 '08 at 22:49

In Perl, many methods use the default variables ($_ and @_) if you don't explicitly specify arguments. Your code is identical to:

my $x = shift @_;

As pointed out by PullMonkey earlier, within a subroutine, @_ contains the arguments passed to that subroutine (as described in perlsub). shift will remove the first argument value from @_ and store it in $x, so $_[0] will now give you the second argument passed to your subroutine.

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This is usually an idiom for: $x is a local variable assigned to the first parameter passed to the subroutine, although.

my ($x) = @_;

is probably clearer (and it doesn't modify the argument list).

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in a layman's language,from a very highlevel view, shift is taking the first element of an array (the leftmost part), while the opposite is pop which is taking the last element of array (the rightmost part).

my @array1=(5,6,7,8,9);
my $x = shift @array1;
print "$x\n"; # 5
print "@array1\n"; # 6 7 8 9
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If you are in a subroutine this line will shift on @_ (the params that are passed in).
So $x would be the first item popped from the @_ array.

So usually you would see $x = shift if @_;

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2  
No real need for the if. "my $x = shift;" and "my $x; $x = shift if @_;" are equivalent and will both result in $x being undef if @_ is empty, nor will either violate strict or emit a warning. The only difference is the amount of typing you have to do. – Dave Sherohman Nov 18 '08 at 2:02

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