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Consider a set of strings line the following:

Memory size = 4,194,304 KB
Cache size=   32,768 K
Number of cores = 8
Note   =4,000,000 KB is less than 4 GB

Is there a generic and not too complex Java regular expression that matches each string entirely and produces the following groups?

"Memory size", "4,194,304", "KB"
"Cache size", "32,768", "K"
"Number of cores", "8"
"Note", "4,000,000 KB is less than 4 GB"

These groups are key, value and (optional) suffix.

Additional requirements:

  • The value (i.e., the part after '=') is not necessarily a number
  • Any spaces on either side of ':' should be removed in one pass, without backtracking
  • The "KB" and "K" string matching is not case sensitive
  • The captured groups should always have the same index (ideally, 3 groups for key/value/suffix, with the same group index for all matches)

Clearly, a simple expression like

  • ([^=]+) *: *([^=]+)

does not fully cover the specification above.

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3 Answers 3

up vote 1 down vote accepted

A regex that fully covers the spec above is:

^([^=]+?) *= *(.+?) *$

EDIT

Turns out I missed the K/KB part. Here is the amended version:

^([^=]+?) *= *(.+?) *(KB?)? *$
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This matches all strings but does not produce a separate group for "KB" or "K". +1 for the help. –  PNS Jan 28 '13 at 11:42
    
@PNS Oops... I've amended the response. Now it should work as requested –  Carlo Pellegrini Jan 28 '13 at 11:48
    
It does work and actually it captures the answers in just 3 groups, always with the same index. Nice! :-) –  PNS Jan 28 '13 at 11:50
    
As for case insensitiveness, you could also write: ^([^=]+?) *= *(.+?) *([Kk][Bb]?)? *$ –  Carlo Pellegrini Jan 28 '13 at 11:54
1  
To make pattern case insensitive you can use compile method with Pattern.CASE_INSENSITIVE flag like Pattern.compile("regex",Pattern.CASE_INSENSITIVE); or just start regex with (?i) like (?i)^([^=]+?) *= *(.+?) *(KB?)? *$. –  Pshemo Jan 28 '13 at 12:00
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Something like this should work:

^(.*?)\s*=\s*(?:([\d,]+)\s*(K|KB)$|(.*))

^ - match beginning of line

(.*?) capture the left term by matching anything (? makes it non-greedy; otherwise it would eat up all the whitespace).

\s*=\s* match and discard the equals sign and any space around it.

(?:([\d,]+)\s*(K|KB)$|(.*)) This long group matches either one thing or the other. (?: makes it a non-capturing group, because you don't want to capture the entire thing.

([\d,]+)\s*(K|KB)$ if there is a number followed by just K or KB and the end of the string, match that in two groups.

(.*) otherwise, match everything that remains in one group.

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This works, but it does not capture the "value" in the same group index all the time. It produces 4 groups instead of 3 and the answer for strings 3 and 4 is in group 4 instead of group 2. –  PNS Jan 28 '13 at 11:49
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try it and tell me if it worked:

(.*) *= *(.*) (.*)
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It doesn't, but +1 for the help. –  PNS Jan 28 '13 at 11:40
1  
This does not come close. (.*) will always eat up all the whitespace, so your ` *` will never match anything. After the equals sign you are matching a single character with one group, then everything else with the second group. –  dan1111 Jan 28 '13 at 11:42
    
The edited version is better, but it still doesn't work (e.g., it captures the "GB" in the 4th string as a separate answer. You can test it at regexplanet.com/advanced/java/index.html and verify that. –  PNS Jan 28 '13 at 11:52
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