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Is it possible to create java regex that could define if one word (base) contains all letters from another word (sample frow which regex is created) exactly?

For example

Input: base = 'Subexpressions', sample1 = 'Nubs' Output: True

Input: base = 'Subexpressions', sample2 = 'Expert' Output: False

Explanation: base contains all letters from sample1 but doesn't contain 't' from sample2.

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Why is a regular expression a requirement? –  Duncan Jun 13 at 9:51
    
@Duncan It necessary for making code concise and clear like base.matches(createRegex(sample)). without iterations over base and sample words indices. –  Yehor Nemov Jun 13 at 9:55
1  
Well... if you're going to hide complexity within method names, then you can do all the iteration you like and call it containsAll(base, sample). I suspect the resulting regular expression will be challenging to read and thus harder to maintain. –  Duncan Jun 13 at 9:57

2 Answers 2

up vote 2 down vote accepted

For a regex approach, here's how you could do it programmatically.

  1. Make a list of letters: Subexpressions => subexprion
  2. Build a series of lookaheads with the letters, and anchor it: ^(?=.*s)(?=.*u)etc(?=.*n)$
  3. Run that regex against the string. It will act as an AND, because the lookaheads check one by one if a letter is present in the target string. If you have a match, bingo.

Of course, running strstr 10 times (once for each character) also works.

Note: Some engines may report strangely for a zero-width match, so for safety you can add a single dot after the lookaheads, ensuring that you have at least one char in the match:

^(?=.*s)(?=.*u)etc(?=.*n)$

You don't care about the char, just about whether there is a match at all.

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Thanks. Slightly modified the solution works fine for me: (.*)(?=.*s)(?=.*u)etc(?=.*n)(.*) –  Yehor Nemov Jun 13 at 10:29

This problem doesn't really need regex. Just use this simple approach:

  1. Set a boolean variable found to true
  2. Iterate sample variable character by character
  3. Check presence of each character in your base string variable
  4. Set found to false if a character is not found and bail out of loop
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One word : O(n2) –  Nilay Vishwakarma Jun 13 at 11:14
    
What other options do you have to make it fast? –  anubhava Jun 13 at 11:17

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