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I have a pointer to an array and either need to change the code considerably to make this work, or just figure out what the equivilent of the statement below is...

ptr = array;
*ptr++ = value;

So far I have most of it

$ptr = \@array;
$$ptr = $value;

but this doesn't increment the pointer. What do I do?

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2 Answers 2

up vote 8 down vote accepted

There are no pointers in Perl. What you have is:

my $ary_ref = \@array;

$ary_ref is now a reference to @array. You cannot dereference $ary_ref to get a scalar.

You can, however, iterate through the elements of @array in a variety of ways. For example, if you want, you can do:

#!/usr/bin/env perl

use strict; use warnings;

my @array;

my $ptr = sub {
    my ($i, $ref, $val, $size) = (0, @_);
    sub { $i < $size ? $ref->[$i ++ ] = $val : () }
}->(\@array, deadbeaf => 10);

1 while defined $ptr->();

use YAML;
print Dump \@array;

By the way, there is no reason you can't write

p[i] = value;
i++;

in C. In Perl, it might become:

$array[$_] = $value for 0 .. $#array;

or,

@array = ($value) x @array;

or,

$_ = value for @array;

etc. You should explain what the overall goal is rather than asking about a specific statement in C.

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1  
That's a little on the evil side for a beginner question. –  aschepler May 16 '12 at 23:42
2  
Sure, it is, but it is par for the course. *ptr++ = value; is no less evil. –  Sinan Ünür May 16 '12 at 23:44
    
After reading through the C-code a little more I realized the line-by-line conversion idea was pretty stupid and went with a simpler non-array/pointer/concat method. –  Eric Fossum May 16 '12 at 23:59
1  
I really like @SinanÜnür's code snippet. Would definitly use it to confuse people... heh –  Hameed May 17 '12 at 1:34
1  
@EricFossum The simplest answer, would also be the least helpful. –  Brad Gilbert May 22 '12 at 20:58

The C code modifies the first element of array and will likely change at least some part of the rest of the array.

#include <stdio.h>

int main(void)
{
  int array[] = { 0, 0, 0, 0, 0 };
  int value = 42;
  int *ptr;
  int i;

  ptr = array;
  *ptr++ = value;

  for (i = 0; i < sizeof(array) / sizeof(array[0]); i++)
    printf("%d ", array[i]);
  puts("\n");

  return 0;
}

Output:

42 0 0 0 0

Perl has references rather than pointers. References cannot be null, but there’s no reference arithmetic.

Modifying the first element of an array in Perl looks like

$ perl -wle '@a=(0)x5; $a[0] = 42; print "@a"'
42 0 0 0 0

or to be excessively literal

$ perl -wle '@a=(0)x5; $ptr = \$a[0]; $$ptr = 42; print "@a"'
42 0 0 0 0

Your question gives a single bookkeeping detail of the C code. What’s the broader context? What’s the C code doing?

In general, don’t write C in Perl. Considered broadly, C code tends to process arrays one item at a time, but Perl modifies the entire conceptual chunk, e.g., with a regex for strings or map or grep to transform entire arrays.

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