I want to find indices for more than one letter in a word. I don't want to use Regexes, because they will slow down the program (which is already slower than I wanted).

> "banana".indices(("a", "b").any)
any((1 3 5), (0))

How can I instead get 0, 1, 3, 5?

up vote 9 down vote accepted

I would go for something like this (in the REPL):

> gather "banana".indices("a"|"b").deepmap: *.take
(1 3 5 0)
> "banana".comb.grep: 'a' | 'b',:k
(0 1 3 5)

I don't know if comb use regex in this case:

gather for 'banana'.comb.antipairs  {.value.take if .key ∈ ['a','b'] } 

# or
gather 'banana'.comb.antipairs».&{.value.take if .key ∈ ['a','b'] }  
  • Nice, but the OP said he didn't want to use regex. – Håkon Hægland May 12 at 4:24
  • @Håkon Hægland is "banana".comb equals to "banana".comb(/./) – chenyf May 12 at 5:20
  • Sorry I wasn't thinking. Although the name grep comes from "global regexp" it is not using regex here. 'a' | 'b' is just a junction of two characters. I am not sure about comb, but I see no reason why it should use regex. – Håkon Hægland May 12 at 5:31
  • 1
    Actuallly, .comb does not use any regexes internally. It just creates an iterator on all graphemes in the string. – Elizabeth Mattijsen May 12 at 7:13

My solution would be:

> <a b>.map( { |"banana".indices($_) } ).sort
(0 1 3 5)

Basically, loop over all of the letters you want to look for (<a b>.map) and map those letters to their indices ("banana".indices($_)), then slip the indices found (|) and sort the result (.sort).

  • Which version, do you think, will be the fastest? – Eugene Barsky May 12 at 8:16
  • 3
    @EugeneBarsky What is fastest today may not be the fastest in the future. It may also be dependent on your particular data. If speed is important to you, I recommend trying the different approaches on your machine with your data (or a representative sample of your data). – Christopher Bottoms May 12 at 11:08
  • @ChristopherBottoms Thanks, I'll try it. – Eugene Barsky May 12 at 12:06

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