Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I'm trying to translate a Perl script to PHP and I'm having trouble with some Perl things. For instance, what does @_ -1 mean? And how do I write it in PHP?

The whole function is as follows:

sub variance {
    my $sum = sum_squares (@_);
    my $deg = @_ - 1;
    return $sum/$deg;
}

Ok, all the subroutines are as follows:

sub mean { # mean of values in an array
  my $sum = 0 ;
  foreach my $x (@_) {
    $sum += $x ;
  }
  return $sum/@_ ;
}

sub sum_squares { # sum of square differences from the mean
  my $mean = mean (@_) ;
  my $sum_squares = 0 ;
  foreach my $x (@_) {
    $sum_squares += ($x - $mean) ** 2 ;
  }
  return $sum_squares ;
}

sub variance { # variance of values in an array
  my $sum_squares = sum_squares (@_) ;
  my $deg_freedom = @_ - 1 ;
  return $sum_squares/$deg_freedom ;
}

sub median { # median of values in an array
  my @sorted = sort {$a <=> $b} (@_) ;
  if (1 == @sorted % 2) # Odd number of elements
    {return $sorted[($#sorted)/2]}
  else                   # Even number of elements
    {return ($sorted[($#sorted-1)/2]+$sorted[($#sorted+1)/2]) / 2}
}

sub histogram { # Counts of elements in an array
  my %histogram = () ;
  foreach my $value (@_) {$histogram{$value}++}
  return (%histogram) ;
}

Please bear with me because its my first time with Perl. From what I've seen (tested), the right answer in this case is the one of David Dorward. I do have another question regarding this set of subroutines that is here.

share|improve this question
4  
$#_ == @_ - 1 –  ephemient Feb 28 '10 at 22:14
    
Equal but not equivalent. It's wise to write the one you mean. If you mean "one less than the number of things in @_" write @_ - 1. If you mean "the last index in @_" write $#_. –  hobbs Mar 1 '10 at 1:06
7  
(Technically, if you use the deprecated and thoroughly evil $[, the two might not even be equal. But don't do that.) –  hobbs Mar 1 '10 at 1:07

7 Answers 7

up vote 9 down vote accepted

In this case,@_ is the arguments passed to the subroutine, as a list.

Taken in scalar context, it is the number of elements in that list.

So if you call: variance('a', 'b', 'c', 'd');, $deg will be 3.

share|improve this answer
    
Thanks! That helped a lot! –  Alex Feb 28 '10 at 22:23
5  
@_ is an array, not a list. –  eugene y Feb 28 '10 at 22:27
3  
To be pedantic: @_ is an array containing the arguments that get passed to the subroutine as a list. –  fB. Mar 1 '10 at 9:01

Like already said, it is the array of arguments passed to the function. It's equivalent in PHP would be

  • func_get_args() — Returns an array comprising a function's argument list
  • func_num_args() — Returns the number of arguments passed to the function

The entire function would be

function variance() {
    $sum = sum_squares(func_get_args());
    $deg = func_num_args() - 1;
    return $sum/$deg;
}
// echo variance(1,2,3,4,5); // 13.75 (55/4)

For sum_squares, there is no native function in PHP. Assuming it does what the name implies, e.g. raising each argument to the power of 2 and then summing the result, you could implement it as

function sum_squares(array $args) {
    return array_reduce(
        $args, create_function('$x, $y', 'return $x+$y*$y;'), 0
    );
}
// echo sum_squares( array(1,2,3,4,5) ); // 55

Replace create_function with a proper lambda if you are on PHP5.3

share|improve this answer
    
This function throws back an error. (See the whole code above) –  Alex Mar 1 '10 at 6:08
    
@Alex what error? call to undefined function sum_squares? Of course it does. It's a userland function and you have to define it somewhere. See update above for a possible implementation. –  Gordon Mar 1 '10 at 8:24
    
@Gordon yes, that one. I defined it. Here is the php code: function mean($array) { return array_sum($array) / count($array); } function sum_squares($array) { $sum = 0; $mean = mean($array); foreach ($array as $key => $val) { $sum += pow($val - $mean, 2); } return $sum; } Using these functions, your version of the variance function throws back an error. –  Alex Mar 1 '10 at 8:59
    
@Alex I would highly appreciate if you would add the error message. Just saying it doesn't work or it throws an error tells nothing about what might be wrong. When I use the functions you gave in the comment above, variance(1,2,3,4,5) will return 2.5, without an error. –  Gordon Mar 1 '10 at 9:27
    
True, my bad! Here it is: Fatal error: Unsupported operand types in Document on line 20. Line 20 is this: $sum += pow($val - $mean, 2); –  Alex Mar 1 '10 at 10:52

It's the number of arguments, passed to the variance subroutine minus one (or index of the last element in the @_ array). @_ is used in scalar context here.

share|improve this answer

@_ is the incoming parameter to the sub, but referred in scalar context is the number of parameters.

In php will be something like:

function variance() {
    $arguments = func_get_args();
    $sum = sum_squares($arguments);
    $deg = sizeof($arguments);
    return $sum/$deg;
}
share|improve this answer

@_ is the list of parameters being paassed into the subroutine. When you use it in a non-scalar context such as:

sum_squares (@_)

you get the list, so presumably that would return the sum of the squares of all the numbers in that list (see comment below however).

When used in a scalar context, you get the length so in your case it would be the number of items in the $@ function list.

So your variance function is probably (I say probably since I don't have access to the sum_squares source code) calculating:

variance = arr[0]^2 + arr[1]^2 + ... + arr[N-1]^2
           --------------------------------------
                            N - 1

on the array of values being passed into your function.

I have to say that my understanding of variance is at odds with that (thouugh it's been a while since I did any stats). I'm pretty certain it's supposed to involve the sum of the squares of the differences between the values and the mean, not the values themselves. I suspect there's more happening inside sum_squares than its simple name implies.

share|improve this answer

To supplement the other answers, the @_ Special Variable is described in the free official Perl online documentation (along with other variables):

Within a subroutine the array @_ contains the parameters passed to that subroutine. See perlsub.

share|improve this answer

In function @_ will have list of function argument which is passed to the function . Actually when we are trying to assign the list value to the scalar , it will assign the length of the array. And Here -1 is for accessing the last element of the @_ array

sub test 
{ 
my $count = @_ ; # Now it will assign the number of function arguments 
# Because we are trying to assign as a scalar. 
>print "Output:$count\n" ; # Output : 4 
($count ) = @_   # Now it will assign the first element of the functions 
print "Output:$count\n" ; #  OUtput: 10 
# Because we are trying to assign as list values , So ,list as only one variable  . 
# So , first element gets assigned. 
} 
&test ( 10,20,30,40 ) ; 
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.