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I'm using Ruby 2.4. Let's say I have a string that has a number of spaces in it

str = "abc def 123ffg"

How do I capture all the consecutive words at the beginning of the string that begin with a letter? So for example, in the above, I would want to capture

"abc def"

And if I had a string like

"aa22 b    cc 33d  ff"

I would want to capture

"aa22 b    cc"

but if my string were

"66dd eee ff"

I would want to return nothing because the first word of that string does not begin with a letter.

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  • Could your string be "ab12 $ab"? If not you should say that the string contains only letters, digits and spaces. – Cary Swoveland Aug 17 '17 at 4:26
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If you can spare the extra spaces between words, you could then split the string and iterate the resulting array with take_while, using a regex to get the desired output; something like this:

str = "abc def 123ffg"
str.split.take_while { |word| word[0] =~ /[[:alpha:]]/ }
#=> ["abc", "def"]

The output is an array, but if a string is needed, you could use join at the end:

str.split.take_while { |word| word[0] =~ /[[:alpha:]]/ }.join(" ")
#=> "abc def"

More examples:

"aa22 b    cc 33d  ff".split.take_while { |word| word[0] =~ /[[:alpha:]]/ }
#=> ["aa22", "b", "cc"]

"66dd eee ff".split.take_while { |word| word[0] =~ /[[:alpha:]]/ }
#=> []
0

The Regular Expression

There's usually more than one way to match a pattern, although some are simpler than others. A relatively simple regular express that works with your inputs and expected outputs is as follows:

/(?:(?:\A|\s*)\p{L}\S*)+/

This matches one or more strings when all of the following conditions are met:

  1. start-of-string, or zero or more whitespace characters
  2. followed by a Unicode category of "letter"
  3. followed by zero or more non-whitespace characters

The first item in the list, which is the second non-capturing group, is what allows the match to be repeated until a word starts with a non-letter.

The Proofs

regex = /(?:(?:\A|\s*)\p{L}\S*)+/

regex.match 'aa22 b    cc 33d  ff' #=> #<MatchData "aa22 b    cc">
regex.match 'abc def 123ffg'       #=> #<MatchData "abc def">
regex.match '66dd eee ff'          #=> #<MatchData "">
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The sub method can be used to replace with an empty string '' everything that needs to be removed from the expression.

In this case, a first sub method is needed to remove the whole text if it starts with a digit. Then another sub will remove everything starting from any word that starts with a digit.

Answer:

str.sub(/^\d+.*/, '').sub(/\s+\d+.*/, '')

Outputs:

str = "abc def 123ffg"
# => "abc def"

str = "aa22 b    cc 33d  ff"
# => "aa22 b    cc"

str = "66dd eee ff"
# => ""

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