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Take for instance, I have a string like this:

options = "Cake or pie, ice cream, or pudding"

I want to be able to split the string via or, ,, and , or.

The thing is, is that I have been able to do it, but only by parsing , and , or first, and then splitting each array item at or, flattening the resultant array afterwards as such:

options = options.split(/(?:\s?or\s)*([^,]+)(?:,\s*)*/).reject(&:empty?);
options.each_index {|index| options[index] = options[index].sub("?","").split(" or "); }

The resultant array is as such: ["Cake", "pie", "ice cream", "pudding"]

Is there a more efficient (or easier) way to split my string on those three delimiters?

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up vote 13 down vote accepted

What about the following:

options.gsub(/ or /i, ",").split(",").map(&:strip).reject(&:empty?)
  • replaces all delimiters but the ,
  • splits it at ,
  • trims each characters, since stuff like ice cream with a leading space might be left
  • removes all blank strings
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2  
Looks much easier to read, although there are two things: one, &:empty should be changed to &:empty?, and two, " or " could be changed to / or /i to accommodate uppercase 'OR' as well. – Mark Jun 1 '11 at 21:16
    
Thanks about that - &:empty doesn't even work and I did indeed test it with &:empty?; and the regex is a handy addition as well. – mabako Jun 1 '11 at 21:30

First of all, your method could be simplified a bit with Array#flatten:

>> options.split(',').map{|x|x.split 'or'}.flatten.map(&:strip).reject(&:empty?)
=> ["Cake", "pie", "ice cream", "pudding"]

I would prefer using a single regex:

>> options.split /\s*, or\s+|\s*,\s*|\s+or\s+/
=> ["Cake", "pie", "ice cream", "pudding"]

You can use | in a regex to give alternatives, and putting , or first guarantees that it won’t produce an empty item. Capturing the whitespace with the regex is probably best for efficiency, since you don’t have to scan the array again.

As Zabba points out, you may still want to reject empty items, prompting this solution:

>> options.split(/,|\sor\s/).map(&:strip).reject(&:empty?)
=> ["Cake", "pie", "ice cream", "pudding"]
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1  
What if the string started with an ,or for whatever reason? Your regex will then produce blank/empty strings. – Zabba Jun 1 '11 at 20:43
2  
Well, we do want to treat it as a delimiter. A delimiter at the beginning indicates an empty item. But I’ll address it. – Josh Lee Jun 1 '11 at 20:48
    
There is one problem with the second solution, is that a word that is something like "smore's" produces ["sm","e's"]. it would probably be better to have the regexp be /,|\sor\s/. (And optionally use the 'i' mode to accept uppercase ` OR ` as well.) – Mark Jun 1 '11 at 20:58
2  
Better be careful "oranges" isn't in your list. You might want to switch from \s*or\s* to \s*\bor\b\s* like: /\s*,\s*\bor\b\s*|\s*,\s*|\s*\bor\b\s*/ – tadman Jun 1 '11 at 21:00

As "or" and "," does the same thing, the best approach is to tell the regex that multiple cases should be treated the same as a single case:

options = "Cake or pie, ice cream, or pudding"
regex = /(?:\s*(?:,|or)\s*)+/
options.split(regex)
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