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Here's a Devel::REPL session (my Perl version is v5.10.1). Could you explain the results, please?

0:main$ my $x = 1,2,4
[
  1,
  2,
  4
]

0:main$ my $y = (1,2,4)
Useless use of a constant in void context at (eval 296) line 8.
4

I'm just beginning learning Perl and still have troubles grokking the contexts. Anyways, I think that I understand why the second assignment does what it does. That's because we've got a scalar context, that's why no list get constructed at all, and we just end up executing the comma operator repeatedly, whilst that opetator simply returns its right operand. Right?

However, what's wrong with the first assignment? Shouldn't it be equivalent to the second one? At some point, I thought that parentheses don't provide any magic semantics to build lists - they just group the elements together, and if the elements end up being used in a list context, they just get transformed to a list. Apparently, that's not true.

Well, ok. What is the special role of the parentheses then?

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2 Answers 2

up vote 6 down vote accepted

Devel::REPL is evaluating each input line in list context, and then printing the resultant list. So effectively the first line is something like:

 say join ', ' => do {my $x = 1, 2, 4}

Which is parsed as:

 say join ', ' => do {(my $x = 1), (2), (4)}

And so the REPL prints "1, 2, 4" since it received 3 values from the do block.

The second line is:

 say join ', ' => do {my $x = (1, 2, 4)}

Which is parsed as:

 say join ', ' => do {(my $x = scalar(1, 2, 4))}

The list in scalar context returns its last element, which is assigned to $x and then returned by the do block, subsequently printing "4".

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I think I get it now. –  mob Jul 14 '11 at 19:30
    
thanks a lot, that's it! subsequent say $x indeed prints 1. –  Eugene Burmako Jul 14 '11 at 20:03
2  
There is no such thing as a list in scalar context. I agree it is a useful fiction, but it is nice to follow it up with the truth: What looks like a list in scalar context is really the comma operator in scalar context. The comma operator in scalar context evaluates the thing on its left in void context, then it evaluates the thing(s) on its right in scalar context. So in scalar(1, 2, 4), the 1 gets evaluated in void context and then 2, 4 gets evaluated in scalar context. This means 2 gets evaluated in void context and 4 gets evaluated in scalar context (yielding the value 4). –  Chas. Owens Jul 14 '11 at 20:34

I think the behavior of the first statement is a result of Devel::REPL, but I don't have it available to me at the moment to test that assumption.

Parentheses in Perl primarily adjust precedence. They can also adjust how the parser sees some statements, but that's not the case here. The = has a higher precedence than ,, so in the first statement, if Devel::REPL evaluates statements in list context, is parsed as a list where the first element is the result of the assignment of 1 to $x and the second and third values are 2 and 4. In the second precedence has been changed and as a result context has changed so that the , is in scalar context and 4 is assigned to $x.

$ perl -MO=Deparse,-p -e 'my $x = 1,2,4'
((my $x = 1), '???', '???');
-e syntax OK

$ perl -MO=Deparse,-p -e 'my $x = (1,2,4)'
(my $x = ('???', '???', 4));
-e syntax OK

I would bet if you ran scalar(my $x = 1,2,4) in Devel::REPL the result would be 4 and $x would equal 1.

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thanks! i wish i could mark both Eric's and yours replies as aceepted. extra thanks for Deparse! –  Eugene Burmako Jul 14 '11 at 20:08

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