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I am looking for removing space between two characters at any part of the sentence. For instance, the following phrases:

R Z EXCAVATING AND LOGGING
EXCAVATING R Z AND LOGGING

should become

RZ EXCAVATING AND LOGGING
EXCAVATING RZ AND LOGGING

I have tried the following regex ([A-Z](.*?)[A-Z]), but I have not been able to get rid of the space between the two characters.

Any idea?

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  • re.sub(r'([A-Z])\s+(?=[A-Z])', r'\1', text)? – Wiktor Stribiżew Oct 3 '19 at 7:02
  • Thanks Wiktor, getting RZEXCAVATINGANDLOGGING – Juan Perez Oct 3 '19 at 7:05
  • R Z EXCAVATING AND LOGGING should be transformed to RZ EXCAVATING AND LOGGING. The space between R and Z is gone. – Juan Perez Oct 3 '19 at 7:09
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You may use

text = re.sub(r'\b([A-Z])\s+(?=[A-Z]\b)', r'\1', text)

See the regex demo

Details

  • \b - word boundary
  • ([A-Z]) - Capturing group 1: an uppercase letter
  • \s+ - 1+ whitespaces...
  • (?=[A-Z]\b) - immediately followed with an uppercase letter not followed with a word char (letter, digit, _).
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  • Awesome, thanks for the explanation, it worked perfectly. – Juan Perez Oct 3 '19 at 7:14
  • OP needs to understand the implication of "word boundary". This solution may give you unexpected result: AB-C D EF will become AB-CD EF (as right after - is considered to be word boundary too. Similar for other non word char). Another possible issue is AB C D E FG will become AB CDE FG (which means, not necessary to be 2 chars). – Adrian Shum Oct 3 '19 at 7:36
  • @AdrianShum Word boundaries are context dependant, true. If whitespace boundaries are required, re.sub(r'(?<!\S)([A-Z])\s+(?=[A-Z](?!\S))', r'\1', text) can be used. Anyway, OP confirmed the current expression works. If it does not, let OP come back for any further assistance – Wiktor Stribiżew Oct 3 '19 at 7:38
  • Not to criticize your answer but just raising some edge cases that OP may not be aware of. :) btw, second alternative works great too, and with a slight twist it could avoid combining more-than-2-single-char, in case OP wants: re.sub(r'(?<!\S)([A-Z])\s+([A-Z])(?!\S)', r'\1\2', 'H E L LO YES A B C D E') => HE L LO YES AB CD E – Adrian Shum Oct 3 '19 at 7:47
  • @AdrianShum This is not a tweak, you erroneously removed the lookahead and the overlapping (consecutive) matches won't be found. – Wiktor Stribiżew Oct 3 '19 at 7:57

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