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I am looking for a way to simplify a regular expression which consists of values (e.g. 12345), relation signs (<,>,<=,>=) and junctors (&,!). E.g. the expression:

>= 12345 & <=99999 & !55555 

should be matched. I have this regular expression:

(^<=|^<= | ^>= | ^>= |^<|^>|^< |^> |^)((!|)([0-9]{1,5}))( & > | & < |& >=|&>=|&<=||&<=|&>=|&<|&>|&| &| & |$))*

I am especially unhappy with the repetition of <=, >=, <, > at the beginning and end of the expression. I would be glad to get a hint how to make it simpler e.g. look ahead, look back.

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what would you want the result to be? –  Basilio German May 23 '12 at 20:26
    
Please show some matches and results, and maybe some example non-matches. This will help us understand what you are looking to do. –  kevlar1818 May 23 '12 at 20:28
    
If an expression can be of arbitrary length, then you might want to do something a little more hands-on than regular expressions, otherwise it will get quite ugly and difficult to read. –  kevin628 May 23 '12 at 20:30
2  
this looks like something that could be much easier to express using a context free grammar (en.wikipedia.org/wiki/Context-free_grammar) –  jeff May 23 '12 at 20:31
    
@jeff If it's really only a sequence of alternating numbers and ops, then CFG might still be an overkill. –  Marko Topolnik May 23 '12 at 20:32

6 Answers 6

Starting from your regex, you can do this simplification steps:

 (^<=|^<= | ^>= | ^>= |^<|^>|^< |^> |^)((!|)([0-9]{1,5}))( & > | & < |& >=|&>=|&<=||&<=|&>=|&<|&>|&| &| & |$))*
  1. Move the anchor out of the alternation

    ^(<=|<= |>= |>= |<|>|< |> |)((!|)([0-9]{1,5}))( & > | & < |& >=|&>=|&<=||&<=|&>=|&<|&>|&| &| & |$))*
    

    Why has there been whitespace before the anchor? (removed that)

  2. Move the following whitespace outside and make it optional

    ^(<=|<=|>=|>=|<|>|<|>|) ?((!|)([0-9]{1,5}))( & > | & < |& >=|&>=|&<=||&<=|&>=|&<|&>|&| &| & |$))*
    
  3. Remove the duplicates in the alternations

    ^(<=|>=|<|>|) ?((!|)([0-9]{1,5}))( & > | & < |& >=|&>=|&<=||&<=|&>=|&<|&>|&| &| & |$))*
    
  4. The empty alternative at the end would match the empty string ==> this alternation is optional

    ^((<=|>=|<|>)? ?)?((!|)([0-9]{1,5}))( & > | & < |& >=|&>=|&<=||&<=|&>=|&<|&>|&| &| & |$))*
    
  5. Make the equal sign optional and remove the duplicates

    ^((<|>)=? ?)?((!|)([0-9]{1,5}))( & > | & < |& >=|&>=|&<=||&<=|&>=|&<|&>|&| &| & |$))*
    
  6. The alternation with single characters can be replaced with a character class

    ^([<>]=? ?)?((!|)([0-9]{1,5}))( & > | & < |& >=|&>=|&<=||&<=|&>=|&<|&>|&| &| & |$))*
    
  7. Do similar things with the alternation at the end and you end up with something like this:

    ^([<>]=? ?)?((!|)([0-9]{1,5}))( ?(& ?([<>]=?)?)?|$)
    

This is untested, I did not change the semantic (I think so), but I did this just here in the editor.

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I have a two-step procedure in mind. First break by junctor, then check individual parts.

final String expr = ">= 12345 & <=99999 & !55555".replaceAll("\\s+", "");
for (String s : expr.split("[|&]"))
  if (!s.matches("([<>]=?|=|!)?\\d+")) { System.out.println("Invalid"); return; }
System.out.println("Valid");

But we're still left guessing whether you are talking about validation or something else.

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How about

[<>]=?|\d{1,5}|[&!\|]

That takes care of your > / >= / < / <= repetition. Seems to work for me.

Let me know if this answers your question, or needs work.

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Nice one @kevlar1818. But won't it catch also ">= <= 12345 & <=99999 & !55555". Do we want it to catch those kind of examples? –  Zecas May 25 '12 at 13:03
    
I propose to enhance your answer with (([<>]=?|!)\s*\d{1,5}\s*)(&\s+([<>]=?|!)\s*\d{1,5}\s*)*. What do you think @kevlar1818? –  Zecas May 25 '12 at 13:40

This is what you want:

^(\s*([<>]=?)?\s*!?\d{1,5}\s*(&|$))*

These explanations of sum sub expressions should help you understand the whole thing:

\s*: 0 or more spaces
([<>]=?)?: A < or > sign optionally followed by an =, all optional
!?: And optional !
\d{1,5}: 1-5 digits
(&|$): Either an & or the end of the string

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you seem to be spending a lot of effort matching optional spaces. something like \s? (0 - 1) or \s* (0 - many) would be better.

also, repeated items separated by something are always difficult. it's best to make a regexp for the "thing" to simplify the repetition.

limit = '\s*([<>]=?|!)\s*\d{1,5}\s*'
one_or_more = '^' + limit + '(&' + limit + ')*$'

or, expanded out:

^\s*([<>]=?|!)\s*\d{1,5}\s*(&\s*([<>]=?|!)\s*\d{1,5}\s*)*$

also, ! is a "relation sign" and not a "junctor" if i am understanding correctly.

(for the people advocating using a "real" parser, the above - the structure of one_or_more - is probably how you would end up implementing the &-separated list; there's no need for a parser if you can just use string concatenation in the language).

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You can make all the spaces optional (with question marks) so you don't have to explicitly list all the possibilities. Also you can group the equality/inequality symbols in a character set ([ ]).

Like this, I think

(^[<>]=?\s?)((!|)([0-9]{1,5}))(\s?&\s?[<>]=?\s|$)*
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This will match '=', not to mention '>=<', '>>', '==>', etc. –  kevlar1818 May 23 '12 at 20:36
    
@kevlar1818: Right, but are those likely to occur? [<>]=? is indeed better though, edited. –  Junuxx May 23 '12 at 20:39
    
Denying the occurrence of patterns (however improbable the pattern) isn't good regex etiquette. –  kevlar1818 May 23 '12 at 20:42
1  
Yeah, fair enough. –  Junuxx May 23 '12 at 20:48

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