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A list assignment in scalar context returns the number of elements on the right hand side:

scalar(my ($hello, $there, $world) = (7,8)); #evaluates to 2

Why does it evaluate the right hand side and produce 2, instead of the newly defined list being evaluated and returning 3?

To me, it seems like $hello gets 7, $there gets 8, and $world gets undef, then that list is evaluated in scalar context, which would result in 3, as that is the number of elements in the list ($hello $there $world). It seems weird to me that context affects which part of the evaluated expression is returned:

my $greeting = (($hello, $there, $world) = (7,8)); #2

my @greeting = (($hello, $there, $world) = (7,8));
my $greeting_length = @greeting; #3
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Indeed, no: If the left-hand list was the thing evaluated in scalar context, the value would be undef. A list is not an array. –  darch Feb 17 '12 at 0:32
    
@darch, That make no sense. ($hello, $there, $world) (and (7,8)) cannot be executed in scalar context in ($hello, $there, $world) = (7,8). The list assignment could return 3 if it wanted to, but there's no reason to. –  ikegami Feb 17 '12 at 5:11
    
I was responding precisely to the phrase "then [the list ($hello, $there, $world)] is evaluated in scalar context". Evaluate my ($h, $t, $w) = (7, 8, undef); scalar ($h, $t, $w) and see that lists are not arrays. –  darch Feb 17 '12 at 20:06

2 Answers 2

up vote 13 down vote accepted

It's documented to count the elements on the right in perlop (the last sentence in the Assignment Operators section):

Similarly, a list assignment in list context produces the list of lvalues assigned to, and a list assignment in scalar context returns the number of elements produced by the expression on the right hand side of the assignment.

The reason it works like that is so that you can write things like this:

while (my ($key, $value) = each %hash) { ... }

If it counted the number of elements on the left hand side of the assignment, that would be an infinite loop.

If you think about it, the number of elements on the left hand side is either the same as on the right hand side or it's a constant (when you're assigning to a list of scalars). In the first case, it makes no difference which side you count, and in the second case, counting the right hand side is more useful.

On the other hand, in list context the assignment operator returns the left hand list, because that's more useful. If you use it in a context that modifies the list elements, you want to modify the variables that were just assigned to.

Re: your comment In your example, (7,8) is a two-element list, which is why the assignment operator returns 2. When you assign a shorter list to a longer list of scalars, the right hand side is not "padded out" with undef before the assignment happens. Instead, any variables that did not have a value associated with them from the right hand list are reset to their default value. For a scalar variable, that's undef. For arrays, that's an empty array. For hashes, that's an empty hash.

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Your response make sense, I understand why it works this way, but I'm more interested in how it works. See my comment on ikegamis post. –  Brian Feb 16 '12 at 20:27
    
@Brian, in list context, you get the left hand list, but in scalar context you get the count of the right hand list. In both cases, it's because that's the most useful thing to return. See my updated answer for details. –  cjm Feb 16 '12 at 21:20
    
@Brian, there are many functions and operators in Perl that in scalar context return something other than the number of elements they would return in list context. You have to read the docs to find out what a function or operator will return. –  cjm Feb 16 '12 at 21:23
It seems weird to me that context effects which side is evaluated:

It doesn't. Both sides (operands) of the list assignment operator evaluated, and whether the list assignment is evaluated in scalar context or list context does not affect the evaluation of the operands whatsoever.

Whether a list assignment is evaluated in scalar context or list context only affects the value it returns.

I have previously created Mini-Tutorial: Scalar vs List Assignment Operator, which attempts to make clear the differences between the two assignment operators and how they behave in scalar and list context.

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I edited that sentence to clarify a bit: It seems weird to me that context affects which part of the evaluated expression is returned: I know that context doesn't affect the evaluation and only the return result, but I want to know how it works. If the right hand side of an assignment is evaluated and then assigned to the left hand side, then why would the scalar get a 2? The right hand side evaluates to a 3 element list, which should then be assigned to the scalar. It's like perl just decides to ignore precedence rules and choose which part of the expression should be returned. –  Brian Feb 16 '12 at 20:21
    
Unless, of course, my @greeting = (($hello, $there, $world) = (7,8)) would give @greeting (7,8) instead of ($hello, $there, $world), now that would make much more sense to me. But if @greeting gets ($hello, $there, $world) and $greeting gets the result of (7,8) then that doesn't make sense. –  Brian Feb 16 '12 at 20:42
    
$greeting does not get the result of (7,8). In fact, it's impossible for $greeting to get the result of this (7,8), since this (7,8) evaluates to a list value, and a list value cannot be assigned to a scalar.Both @greeting and $greeting get the result of the list assignment, which is either "list of values to which its LHS evaluated" or "numbers of elements to which its RHS evaluated" depending on context. You seem to be implying that it would be better to return something different without giving any reason whatsoever as to how to other results would be useful. –  ikegami Feb 16 '12 at 21:32
    
@ikegami, I think he's saying it would be more consistent if expressions in scalar context returned the number of elements they would return in list context. And he's right that it would be more consistent. It would just be less useful, and Perl aims for utility more than consistency. –  cjm Feb 16 '12 at 21:48
    
@cjm, The choice of returned values is based on usefulness. There is no consistency. Each operator returns something different. And that's GOOD. Operators are suppose to do different things. Having each operator behave as if surrounded by (...)[0] or (...)[-1] when called in scalar context would be downright stupid, yet those are the only choices that would make any sense at all for all operators. –  ikegami Feb 16 '12 at 21:53

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