2

I'm trying to create a Regex that:

  • must have it's first character in a set of characters (FIRST_SET)
  • can optionally have follow-on characters in a different set of characters (SECOND_SET)
  • but if it has 2 or more characters, the last character must be in the FIRST_SET
  • can be no longer than MAX_CHARS characters in total

Example

  • FIRST_SET = a-c or e-g (so d is excluded)
  • SECOND_SET = a-g
  • MAX_CHARS = 10

Here's what I have so far:

^[a-c|e-g][a-g]{0,8}[a-c|e-g]{0,1}$

This seems to work, EXCEPT if d is the last character and total character count < MAX_CHARS

Is there a way to fix this up?

  • At first, I thought it in but if it has 2 or more characters refers to the SECOND SET, but it seems you meant the whole string, right? – Wiktor Stribiżew Mar 7 at 17:29
  • yes, i meant the whole string. sorry for the confusion! – SFun28 Mar 7 at 18:47
2

You may use

^(?!.{11})(?=.*[a-ce-g]$)[a-ce-g][a-g]{0,9}$

See the regex demo.

Details

  • ^ - start of string
  • (?!.{11}) - up to 10 chars allowed
  • (?=.*[a-ce-g]$) - after 0 or more chars, the last one should be from FIRST SET
  • [a-ce-g] - a letter from the FIRST SET
  • [a-g]{0,9} - zero to nine chars in the SECOND SET
  • $ - end of string.

Note that | inside character classes match literal pipe chars, you need to remove it from your pattern.

The (?!.{11}) negative lookahead is executed once at the start of the string and fails the match if there are any 11 chars (other than newline) in the string. You may also use (?=.{0,10}$), it will require 0 to 10 chars in the string only.

  • This matches when it shouldn't: abcdabcdd It ends in d, the last character must be in FIRST_SET. d is not in the first set – SFun28 Mar 7 at 17:16
  • @SFun28 Ok, fixed. – Wiktor Stribiżew Mar 7 at 17:27
  • this doesn't work for a which should match. The input string can optionally have follow-on characters after the first one, but its optional, per my post. – SFun28 Mar 7 at 19:15
  • I think this works: ^(?!.{11})(?=.*[a-ce-g]$)[a-ce-g][a-g]{0,9}$ (changed + to *) – SFun28 Mar 7 at 20:27
  • @SFun28 Yes, just replace + with * – Wiktor Stribiżew Mar 7 at 20:28

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