15

FAQ: In Raku, how do you remove some characters from a string, based on their index?

Say I want to remove indices 1 to 3 and 8

xxx("0123456789", (1..3, 8).flat);  # 045679
0
14

Variant of Shnipersons answer:

my $a='0123456789';
with $a {$_=.comb[(^* ∖ (1..3, 8).flat).keys.sort].join};
say $a;

In one line:

say '0123456789'.comb[(^* ∖ (1..3, 8).flat).keys.sort].join;

or called by a function:

sub remove($str, $a) {
    $str.comb[(^* ∖ $a.flat).keys.sort].join;
}

say '0123456789'.&remove: (1..3, 8);

or with augmentation of Str:

use MONKEY-TYPING;
augment class Str {
    method remove($a) {
        $.comb[(^* ∖ $a.flat).keys.sort].join;
    }
};

say '0123456789'.remove: (1..3, 8);
8
  • That solves the problem completely in my opinion. Thanks for reminding that \ and (-) are equivalent. I don't see other ways to slice with the index I don't want and not the indices I want. – Tinmarino Mar 26 '20 at 18:16
  • 1
    You don't have to use MONKET-TYPING if you just make it free floating method and call it as 'foobar'.&remove: (1..2, 4); (augment can have problems with composition if used several times) – user0721090601 Mar 26 '20 at 19:07
  • (which isn't to say augment is bad, just that the .&remove is a way to remove that. – user0721090601 Mar 26 '20 at 19:12
  • I added the non-augmentation variant as to your suggestion. Thank you. – Sebastian Mar 26 '20 at 19:42
  • 1
    ∖ confusing and seems like a backslash character. – Shniperson Mar 28 '20 at 7:13
12
.value.print if .key  !(elem) (1,2,3,8) for '0123456789'.comb.pairs
9

My latest idea for a not-at operation (I'll cover the implementation below):

Usage:

say '0123456789'[- 1..3, 8 ]; # 045679

Implementation, wrapping (a variant of) Brad's solution:

multi postcircumfix:<[- ]> (|args) { remove |args }

sub remove( Str:D $str is copy, +@exdices){
    for @exdices.reverse {
        when Int   { $str.substr-rw($_,1) = '' }
        when Range { $str.substr-rw($_  ) = '' }
    }
    $str
}

say '0123456789'[- 1..3, 8 ]; # 045679

The syntax to use the operator I've declared is string[- list-of-indices-to-be-subtracted ], i.e. using familiar [...] notation, but with a string on the left and an additional minus after the opening [ to indicate that the subscript contents are a list of exdices rather than indices.

[Edit: I've replaced my original implementation with Brad's. That's probably wrong-headed because, as Brad notes, his solution "assumes that the [exdices] are in order from lowest to highest, and there is no overlap.", and while his doesn't promise otherwise, using [- ... ] is awfully close to doing so. So if this syntax sugar were to be used by someone, they should probably not use Brad's solution. Perhaps there is a way to eliminate the assumption Brad's makes.]

I like this syntax but am aware that Larry deliberately did not build in use of [...] to index strings so perhaps my syntax here is inappropriate for widespread adoption. Perhaps it would be better if some different bracketing characters were used. But I think use of a simple postcircumfix syntax is nice.

(I've also tried to implement a straight [ ... ] variant for indexing strings in exactly the same way as for Positionals but have failed to get it to work for reasons beyond me tonight. Weirdly [+ ... ] will work to do exdices but not to do indices; that makes no sense to me at all! Anyhow, I'll post what I have and consider this answer complete.)


[Edit: The above solution has two aspects that should be seen as distinct. First, a user-defined operator, the syntactic sugar provided by the postcircumfix:<[- ]> (Str ..., declaration. Second, the body of that declaration. In the above I've used (a variant of) Brad's solution. My original answer is below.]


Because your question boils down to removing some indices of a .comb, and rejoining the result, your question is essentially a duplicate of ... [Edit: Wrong, per Brad's answer.]

What is a quick way to de-select array or list elements? adds yet more solutions for the [.comb ... .join] answers here.


Implemented as two multis so the same syntax can be used with Positionals:

multi postcircumfix:<[- ]> (Str $_, *@exdex) { .comb[- @exdex ].join }

multi postcircumfix:<[- ]> (@pos,   *@exdex) { sort keys ^@pos (-) @exdex } 

say '0123456789'[- 1..3, 8 ]; # 045679

say (0..9)[- 1..3, 8 ];       # (0 4 5 6 7 9)

The sort keys ^@pos (-) @exdices implementation is just a slightly simplified version of @Sebastian's answer. I haven't benchmarked it against jnthn's solution from the earlier answer I linked above but if that's faster then it can be swapped in instead. *[Edit: Obviously it should instead be Brad's solution for the string variant.]*

1
  • "I think use of a simple postcircumfix syntax is nice". Definitely ! I love this solution: super clear to read. – Tinmarino Mar 27 '20 at 3:33
8

yet another variants:

print $_[1] if $_[0] !(elem) (1,2,3,8) for ^Inf Z 0..9;

.print for ((0..9) (-) (1,2,3,8)).keys;
8

This is the closest I got in terms of simplicity and shortness.

say '0123456789'.comb[ |(3..6), |(8..*) ].join
8

Everyone is either turning the string into a list using comb or using a flat list of indices.

There is no reason to do either of those things

sub remove( Str:D $str is copy, +@indices ){
    for @indices.reverse {
        when Int   { $str.substr-rw($_,1) = '' }
        when Range { $str.substr-rw($_  ) = '' }
    }
}

remove("0123456789",  1..3, 8 );  # 045679
remove("0123456789", [1..3, 8]);  # 045679

The above assumes that the indices are in order from lowest to highest, and there is no overlap.

3
  • 1
    This is the fastest answer by a factor of 150 on my machine (with my $s = "0123456789" x 1000; my $l = (1..3, 8, 40, 100, 1001, 4000..4100).flat). Comb is long for long strings Thanks @BradGilbert, this will definitely help some people, at least me :-) – Tinmarino Mar 28 '20 at 0:47
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    @Tinmarino That is because MoarVM doesn't usually copy strings, instead it creates substring objects that point into the original string. When you use .comb it has to create many of those objects, and combine them back together. With substr it creates as few of those objects as possible. – Brad Gilbert Mar 28 '20 at 2:10
  • "substring objects that point into the original string" : is that why it was decided to implement Str as immutable ? Impressive optimization anyway. – Tinmarino Mar 28 '20 at 2:19
5
my $string='0123456789';
for (1..3, 8).flat.reverse { $string.substr-rw($_, 1) = '' }

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