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I seem to have come across several different ways to find the size of an array. What is the difference between these three methods?

my @arr = (2);
print scalar @arr; # First way to print array size

print $#arr; # Second way to print array size

my $arrSize = @arr;
print $arrSize; # Third way to print array size
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other ways: print 0+@arr, print "".@arr, print ~~@arr – mob Sep 13 '11 at 18:55
I’m not sure I would define the “size” of the array to be the number of elements it contains, but ok. – tchrist Sep 13 '11 at 19:06
@mob, hum, one might want to avoid "".@arr as "@arr" does something quite different. – ikegami Sep 13 '11 at 19:15
The "second way" is NOT a way to print the array size... – tadmc Sep 13 '11 at 19:26
s/\$#arr/$&+1/ – mykhal Dec 9 '12 at 18:15

7 Answers 7

up vote 129 down vote accepted

The first and third ways are the same: they evaluate an array in scalar context. I would consider this to be the standard way to get an array's size.

The second way actually returns the last index of the array, which is not (usually) the same as the array size.

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The size of (1,2,3) is 3, and the indexes are (by default) 0, 1 and 2. So, $#arr will be 2 in this case, not 3. – Nate C-K Sep 13 '11 at 18:47
The predefined variable $[ specifies "The index of the first element in an array, and of the first character in a substring" (perldoc perlvar). It's set to 0 by default, and setting it to anything other than 0 is highly discouraged. – Keith Thompson Sep 13 '11 at 18:52
@Keith Thompson, $[ is discouraged (and has been for a decade). $[ is deprecated. Using $[ issues a deprecation warning even when one doesn't turn on warnings. Assigning anything but zero to $[ will be an error in 5.16. Can we stop mentioning $[ already? – ikegami Sep 13 '11 at 19:05
@Keith Thompson, Older than 5.14, actually. But like I said, it's been discouraged and deprecated for far longer than that, and someone using $[ would know of its effects. – ikegami Sep 13 '11 at 19:10
@ikegami: Yes, but someone trying to understand the difference between scalar @arr and $#arr should still understand the possible effects of $[, rare though they are. – Keith Thompson Sep 13 '11 at 19:28

First, the second is not equivalent to the other two. $#array returns the last index of the array, which is one less than the size of the array.

The other two are virtually the same. You are simply using two different means to create scalar context. It comes down to a question of readability.

I personally prefer the following:

say 0+@array;          (Represent @array as a number)

I find it clearer than

say scalar(@array);    (Represent @array as a scalar)


my $size = @array;
say $size;

The latter looks quite clear alone like this, but I find that the extra line takes away from clarity when part of other code. It's useful for teaching what @array does in scalar context, and maybe if you want to use $size more than once.

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Personally I prefer the version that uses the "scalar" keyword, because it's quite explicit that it's forcing a scalar context. my $size=@array looks like it might be a mistake where the wrong sigil was used. – Nate C-K Sep 13 '11 at 22:21
That's a really bad idea. People who use scalar for no reason learn the wrong lesson. They start getting into their heads that operators return lists that can be coerced into scalars. Seen it dozens of times. – ikegami Aug 12 '14 at 14:42
Why is this "no reason"? You are using scalar because you are coercing the list to a scalar context. That is the right reason to use it. Your example does exactly the same thing, but relies on what Perl does when you evaluate a list variable in an implicitly scalar context. Thus, your example requires the reader to know about Perl's implicit behavior in that context. You're just adding one more layer of implicit behavior to the expression, and Perl already has too much implicit behavior that you have to reason through to decipher a program. – Nate C-K Aug 29 '14 at 14:16
@Nate C-K, Re "Why is this "no reason"? You are using scalar because you are coercing the list to a scalar context", You've proving my point about learning the wrong lesson. This is completely false. No list is ever coerced by scalar. (If it did, scalar(@array) and scalar(@array[0..$#array]) would return the same thing.) scalar(@array) tells @array to return a scalar, which you already told it to do with my $size=. – ikegami Aug 29 '14 at 15:19
The original example wasn't my $size = scalar(@array);, it was say scalar(@array);. I see what you mean about the assignment, that in that context it is redundant, although as I pointed out before it clarifies your intent (since mixing up sigils is an extremely common mistake in Perl). – Nate C-K Aug 29 '14 at 17:31

This gets the size by forcing the array into a scalar context, in which it is evaluated as its size:

print scalar @arr;

This is another way of forcing the array into a scalar context, since it's being assigned to a scalar variable:

my $arrSize = @arr;

This gets the index of the last element in the array, so it's actually the size minus 1 (assuming indexes start at 0, which is adjustable in Perl although doing so is usually a bad idea):

print $#arr;

This last one isn't really good to use for getting the array size. It would be useful if you just want to get the last element of the array:

my $lastElement = $arr[$#arr];

Also, as you can see here on Stack Overflow, this construct isn't handled correctly by most syntax highlighters...

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A sidenote: just use $arr[-1] to get the last element. And $arr[-2] to get the penultimate one, and so on. – tuomassalo Feb 25 at 10:03
@tuomassalo: I agree that your suggestion is a better approach. In retrospect, $#arr isn't a very useful feature, and it's no accident that other languages don't have it. – Nate C-K Mar 9 at 16:41


my @a = (undef, undef);
my $size = @a;

warn "Size: " . $#a;   # Size: 1. It's not the size
warn "Size: " . $size; # Size: 2
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To use the second way, add 1:

print $#arr + 1; # Second way to print array size
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All three give the same result if we modify the second one a bit:

my @arr = (2, 4, 8, 10);

print "First result:\n";
print scalar @arr; 

print "\n\nSecond result:\n";
print $#arr + 1; # Shift numeration with +1 as it shows last index that starts with 0.

print "\n\nThird result:\n";
my $arrSize = @arr;
print $arrSize;
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Is this anything different from what has already been mentioned in this answer and this one? – devnull Oct 23 '13 at 4:35

The “Perl variable types” section of the perlintro documentation contains

The special variable $#array tells you the index of the last element of an array:

print $mixed[$#mixed];       # last element, prints 1.23

You might be tempted to use $#array + 1 to tell you how many items there are in an array. Don’t bother. As it happens, using @array where Perl expects to find a scalar value (“in scalar context”) will give you the number of elements in the array:

if (@animals < 5) { ... }

The perldata documentation also covers this in the “Scalar values” section.

If you evaluate an array in scalar context, it returns the length of the array. (Note that this is not true of lists, which return the last value, like the C comma operator, nor of built-in functions, which return whatever they feel like returning.) The following is always true:

scalar(@whatever) == $#whatever + 1;

Some programmers choose to use an explicit conversion so as to leave nothing to doubt:

$element_count = scalar(@whatever);

Earlier in the same section documents how to obtain the index of the last element of an array.

The length of an array is a scalar value. You may find the length of array @days by evaluating $#days, as in csh. However, this isn’t the length of the array; it’s the subscript of the last element, which is a different value since there is ordinarily a 0th element.

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