5

I'm trying to use a variable and assign an expression to it in one step:

The given (sample) code

my @l=<a b c d e f g h i j k>;
my $i=0;
while $i < 7 {
    say @l[$i];
    $i= ($i+1) * 2;
}

# Output:
# a
# c
# g

The desired functionality:

my @l=<a b c d e f g h i j k>;
my $i=0;
say @l[$i =~ ($i+1) * 2] while $i < 7;
# Here, first the @l[$i] must be evaluated 
# then $i must be assigned to the expression
# ($i+1) * 2 
# (The =~ operator is selected just as an example)

# Output:
# The same output as above should come, that is:
# a
# c
# g

After the variable $i is used, the (sample) expression ($i+1) * 2 should be assigned to it in one step and that should take place solely inside the array index @l[$i =~ ($i+1) * 2] i.e. the argument of while should not be changed.

Here I took the Regex equation operator =~ (check and assign operator, AFAIK) just as an example. In this context of course, it did not work. I need to Are there any operators or some workaround to achieve that functionality? Thank you.

  • 1
    The question is really vague: 1. you don't specify the required output. 2. You seem to be mixing integers ($i) with string operations (lt). 3. you seem to misunderstand what the postfix ++ does ($i =~ $i++). Could you at least provide the required output? Thank you! – Elizabeth Mattijsen Nov 24 at 13:06
  • 1
    Thank you for the comment. I've edited the original post to address the issues you've pointed out. Yes, lt is not suitable fro integers (I've noticed it after taking a look at the Perl 6 docs) As for the =~ operator, it's there jsut as an example operator. I've chosen it because it does the closest thing I want to achieve: It checks a Regex and then assigns a alue to it in one step. For instance in say $same if ($same =~ m/^$re$/g) (Perl 5) $same is both checked and if check returns True, it's assiged a value. – Lars Malmsteen Nov 24 at 15:51
  • @LarsMalmsteen I remain confused. I would not expect $same to be assigned a value in any circumstances via the code say $same if ($same =~ m/^$re$/g). And sure enough, running that code in tio leaves it unchanged despite the check being true. Please consider explaining specific circumstances in which $same can ever be assigned a value with the line of code you've quoted. TIA. – raiph Nov 24 at 19:06
  • @raiph You're correct, that piece of code doesn't assign a value to $same I have put it in a hurry to depict the kind of functionality I was trying to explain. There I was actually trying to tell the so-called 'Capture Group' method in which the substrings fulfilling the regex being assigned to variables $1 , $2 (using that same operator =~) but I erroneously talked about the $same instead of those $1 variable. When you think about this Capture Groups method, it sort of depicts the 'use & assign' mechanism (albeit very roughly) – Lars Malmsteen Nov 24 at 21:33
6

You mean, something like this?

my @l = <a b c d e f g h i j k>; 
say @l[ 0, (* + 1) * 2 ...^ * > 7 ]; # says a c g;

A little bit more verbose:

my @l = <a b c d e f g h i j k>; 
say @l[ 0, -> $i { ($i + 1) * 2 } ...^ -> $i { $i > 7 } ];

Or even

my sub next-i( $i ) { ($i + 1) * 2 };
my sub last-i( $i ) { $i > 7 };

my @l = <a b c d e f g h i j k>; 
say @l[ 0, &next-i ...^ &last-i ];

Edit: Or, if as in the comment below you know the number of elements beforehand, you can get rid of the end block and (simplify?) to

say @l[ (0, (* + 1) * 2 ... *)[^3] ];

Edit:

using a variable and assigning an expression to it in one step

Well, the result of an assignment is the assigned value, if that is what you mean/want, so if you insist on using a while loop, this might work for you.

my @l = <a b c d e f g h i j k>; 
my $i = -1; say @l[ $i = ($i + 1) * 2 ] while $i < 3;
  • Thank you for the answer. While it presents good use of sequences, it doesn't solve the basic problem, which is using a variable and assigning an expression to it in one step. – Lars Malmsteen Nov 24 at 18:27
  • The 'edit' answers the question because when I tried it, it worked. Now it looks using a variable and assigning an expression to it in one step is quite simple and intuitive in Raku. Thank you. – Lars Malmsteen Nov 24 at 21:39
2
my @l=<a b c d e f g h i j k>;
my $i=0;
say @l[($=$i,$i=($i+1)*2)[0]] while $i < 7'

a
c
g

A bit of cheating using $. Otherwise, it didn't work...

I would have thought ($i,$i=($i+1)*2)[0] would have done the trick.

  • Thank you for the answer. Could you explain the structure of the part inside the array index of @l i.e. what does the $ represent and usage of komma inside the array index. – Lars Malmsteen Nov 27 at 17:37

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