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Please explain this apparently inconsistent behaviour:

$a = b, c;
print $a; # this prints: b

$a = (b, c);
print $a; # this prints: c
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5  
The real WTF is using Perl w/o "use strict" –  Arkadiy Feb 18 '11 at 14:32
3  
It is "WTF"-worthy to not use strict in Perl if you know better, but he might not know better and this could be his first lesson in the school of Perl hard knocks. The language does support it, after all. Don't think he should be down voted for asking the question. –  Kyle Walsh Feb 18 '11 at 14:37
2  
Why does different code producing different output count as 'inconsistent'? –  AakashM Feb 18 '11 at 14:37
2  
'apparently inconsistent' does not equal 'inconsistent' –  Literat Feb 18 '11 at 14:50
2  
use strict isn't really the issue here - ok i used barewords that strict doesn't like but i could have just of easily framed the question like this:use strict; $a="b", "c"; print $a; # this prints: b # and then said: $a=("b","c"); print $a; # this prints: c –  Literat Feb 18 '11 at 15:44

4 Answers 4

up vote 8 down vote accepted

As eugene's answer seems to leave some questions by OP i try to explain based on that:

$a = "b", "c";
print $a;

Here the left argument is $a = "b" because = has a higher precedence than , it will be evaluated first. After that $a contains "b".

The right argument is "c" and will be returned as i show soon.

At that point when you print $a it is obviously printing b to your screen.

$a = ("b", "c");
print $a;

Here the term ("b","c") will be evaluated first because of the higher precedence of parentheses. It returns "c" and this will be assigned to $a.

So here you print "c".

$var = ($a = "b","c");
print $var;
print $a;

Here $a contains "b" and $var contains "c".

Once you get the precedence rules this is perfectly consistent

share|improve this answer
    
Nice explanation. i'm trying to break your logic, but it is quite robust as far as i can tell according to my limited experience. maybe if i keep thinking deeply about it and rearranging things, come back and say "no that doesn't work either because what about: (@var = scalar $a, @c) = or something. But it looks good. I definitely deepened my understanding by asking this question so thank you everyone for trying to answer. I have other things that I don't get about Perl but I now really feel this is the place to get to the bottom of them. –  Literat Feb 18 '11 at 17:04
    
This is actually just a longer version of eugene y's first sentence. –  matthias krull Feb 18 '11 at 17:09
    
Yes and if you had posted yours first then i would have objected to yours in the same way. both explanations say "And the comma operator throws away its left argument and returns the right one." This isn't true in all cases. It is false in some cases. E.g. @a = ("b", "c") –  Literat Feb 20 '11 at 5:02
1  
@DanD man: The comma operator evaluates (as in, there can be side effects) and throws away its left argument, then evaluates and returns the right one-- only in scalar context. In list context, like assigning to an array, the comma works as a list join operator. –  Platinum Azure Feb 20 '11 at 15:16

The = operator has higher precedence than ,. And the comma operator throws away its left argument and returns the right one.

Note that the comma operator behaves differently depending on context. From perldoc perlop:

Binary "," is the comma operator. In scalar context it evaluates its left argument, throws that value away, then evaluates its right argument and returns that value. This is just like C's comma operator.

In list context, it's just the list argument separator, and inserts both its arguments into the list. These arguments are also evaluated from left to right.

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"the comma operator throws away it's left argument and returns the right one" no it doesn't: @a = (2,3); print @a; # this prints: 23 –  Literat Feb 18 '11 at 14:55
2  
In a scalar context it does. –  Colin Fine Feb 18 '11 at 15:01
    
no it doesn't: $a = "b", "c"; print $a; # this prints: b –  Literat Feb 18 '11 at 15:06
    
On which perldoc could I look for the explanation of the behavior of this construct: "( $a ) = ( 'b', 'c' );"? –  sid_com Feb 18 '11 at 15:07
5  
left argument: $a = "b", right argument: "c". left gets evaluated so $a contains "b", right returned. As you dont take up the returned value, nothing happens with it. –  matthias krull Feb 18 '11 at 15:19

Since eugene and mugen have answered this question nicely with good examples already, I am going to setup some concepts then ask some conceptual questions of the OP to see if it helps to illuminate some Perl concepts.

The first concept is what the sigils $ and @ mean (we wont descuss % here). @ means multiple items (said "these things"). $ means one item (said "this thing"). To get first element of an array @a you can do $first = $a[0], get the last element: $last = $a[-1]. N.B. not @a[0] or @a[-1]. You can slice by doing @shorter = @longer[1,2].

The second concept is the difference between void, scalar and list context. Perl has the concept of the context in which your containers (scalars, arrays etc.) are used. An easy way to see this is that if you store a list (we will get to this) as an array @array = ("cow", "sheep", "llama") then we store the array as a scalar $size = @array we get the length of the array. We can also force this behavior by using the scalar operator such as print scalar @array. I will say it one more time for clarity: An array (not a list) in scalar context will return, not an element (as a list does) but rather the length of the array.

Remember from before you use the $ sigil when you only expect one item, i.e. $first = $a[0]. In this way you know you are in scalar context. Now when you call $length = @array you can see clearly that you are calling the array in scalar context, and thus you trigger the special property of an array in list context, you get its length.

This has another nice feature for testing if there are element in the array. print '@array contains items' if @array; print '@array is empty' unless @array. The if/unless tests force scalar context on the array, thus the if sees the length of the array not elements of it. Since all numerical values are 'truthy' except zero, if the array has non-zero length, the statement if @array evaluates to true and you get the print statement.

Void context means that the return value of some operation is ignored. A useful operation in void context could be something like incrementing. $n = 1; $n++; print $n; In this example $n++ (increment after returning) was in void context in that its return value "1" wasn't used (stored, printed etc).

The third concept is the difference between a list and an array. A list is an ordered set of values, an array is a container that holds an ordered set of values. You can see the difference for example in the gymnastics one must do to get particular element after using sort without storing the result first (try pop sort { $a cmp $b } @array for example, which doesn't work because pop does not act on a list, only an array).

Now we can ask, when you attempt your examples, what would you want Perl to do in these cases? As others have said, this depends on precedence.

In your first example, since the = operator has higher precedence than the ,, you haven't actually assigned a list to the variable, you have done something more like ($a = "b"), ("c") which effectively does nothing with the string "c". In fact it was called in void context. With warnings enabled, since this operation does not accomplish anything, Perl attempts to warn you that you probably didn't mean to do that with the message: Useless use of a constant in void context.

Now, what would you want Perl to do when you attempt to store a list to a scalar (or use a list in a scalar context)? It will not store the length of the list, this is only a behavior of an array. Therefore it must store one of the values in the list. While I know it is not canonically true, this example is very close to what happens.

my @animals = ("cow", "sheep", "llama");
my $return;
foreach my $animal (@animals) {
  $return = $animal;
}
print $return;

And therefore you get the last element of the list (the canonical difference is that the preceding values were never stored then overwritten, however the logic is similar).

There are ways to store a something that looks like a list in a scalar, but this involves references. Read more about that in perldoc perlreftut.

Hopefully this makes things a little more clear. Finally I will say, until you get the hang of Perl's precedence rules, it never hurts to put in explicit parentheses for lists and function's arguments.

share|improve this answer
    
Thanks, i didn't know what void context meant but you explained it clearly. $a=("a", "b"); print $a # this prints b but: @a = ("a", "b"); $a = @a; print $a; # this prints: 2. Wouldn't it be more consistent for both print 2 or both print b? –  Literat Feb 20 '11 at 5:19
    
rereading my text again, I didn't clearly state what happens when an array is called in a scalar context. Will edit. –  Joel Berger Feb 20 '11 at 15:09
    
Thanks for taking the time to explain things further. @a[0] does work. I like @longer[1,2]. So I know now that: a list in scalar context returns the last part of the list (unless precedence gets in the way). An array in scalar context returns a number, unless you say: $a = "@b" in which case an array in scalar context returns the entire array joined together. That made me try $a = "(a, b)"; It behaved as expected. –  Literat Feb 23 '11 at 8:01
    
@a[0] works, but as an array slice of only one element. With warnings enabled (you are always using strict and warnings right?) this would give you a warning. Perl6 is going to change the way sigils are used, to allow the more logical (in some ways) constant sigil (@a = ....; $b = @a[0]; etc) –  Joel Berger Feb 23 '11 at 13:00

There is an easy way to see how Perl handles both of the examples, just run them through with:

perl -MO=Deparse,-p -e'...'

As you can see, the difference is because the order of operations is slightly different than you might suspect.

perl -MO=Deparse,-p -e'$a = a, b;print $a'
(($a = 'a'), '???');
print($a);
perl -MO=Deparse,-p -e'$a = (a, b);print $a'
($a = ('???', 'b'));
print($a);

Note: you see '???', because the original value got optimized away.

share|improve this answer
    
Ty, I like this, and i am going to make an effort to memorize it. i suppose you can't cluster together the -p -e to make -pe -it would make a cluster -f :p –  Literat Feb 23 '11 at 8:05
    
In another question i have mistaken the -p for a parameter to perl but in fact it is a parameter to Deparse as you can see at the linked documentation. So -p and -e can not be clustered. –  matthias krull Feb 23 '11 at 9:39
1  
See perldoc perlrun to see how -MO=Deparse,-p is parsed. –  Brad Gilbert Feb 23 '11 at 14:51

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