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Consider the following regex:

(([^\|])*\|)*([^\|]*)

This matches repetitive string patterns of the type

("whatever except |" |) {0 to any times} ("whatever except |" |) {1 time}

So it should match the following String, which has 17 substrings (16 repeated, plus " z" as the last one).

"abcd  | e | fg | hijk | lmnop | |   | qrs |   t| uv| w |||||x   y|  z"

Indeed, RegexPal verifies that the given regex does match the above string.

Now, I want to get each of the substrings (i.e., "abcd |", "e |", "fg |", etc.), for which there is no prior knowledge about their number, length etc.

According to a similarly-titled previous StackOverflow post and the documentation of the Matcher class find() method, I just need to do something like

Pattern pattern = Pattern.compile(regex); // regex is the above regex
Matcher matcher = pattern.matcher(input); // input is the above string

while (matcher.find())
{
   System.out.println(matcher.group(1));
}

However, when I do this I just get 2 strings printed out: the last repeated substring ("x y|") and a null value; definitely not the 16 substrings I expect.

A nice thing would also be to check that a match has actually happened, before running the find() loop, but I am not sure whether matches(), groupCount() > 0, or some other condition should be used, without doing twice the matching work, given that find() also does matching.

So, questions:

  1. How can I get all the 16 repeated substrings?
  2. How can I get the last substring?
  3. How do I check that the string matched?
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2 Answers 2

up vote 1 down vote accepted

If you must use the regular expression...

1) How can I get all the 16 repeated substrings?

See below. When cycling over for matches, you don't need everything to match, just the section you want. (I get 17 matches--is this correct?)

2) How can I get the last substring?

Switching the delim to the start of the regex and also allowing '^'.

3) How do I check that the string matched?

What qualifies for a non-match? Any string will match.


Here is a solution using regular expressions:

String input = "abcd  | e | fg | hijk | lmnop | |   | qrs |   t| uv| w |||||x   y|  z";
int expectedSize = 17;
List<String> expected = new ArrayList<String>(Arrays.asList("abcd  ", " e ", " fg ", " hijk ", " lmnop ", " ", "   ", " qrs ", "   t", " uv", " w ", "",
    "", "", "", "x   y", "  z"));

List<String> matches = new ArrayList<String>();

// Pattern pattern = Pattern.compile("(?:\\||^)([^\\|]*)");
Pattern pattern = Pattern.compile("(?:_?\\||^)([^\\|]*?)(?=_?\\||$)"); // Edit: allows _| or | as delim

for (Matcher matcher = pattern.matcher(input); matcher.find();)
{
  matches.add(matcher.group(1));
}

for (int idx = 0, len = matches.size(); idx < len; idx++)
{
  System.out.format("[%-2d] \"%s\"%n", idx + 1, matches.get(idx));
}

assertSame(expectedSize, matches.size());
assertEquals(expected, matches);

Output

[1 ] "abcd  "
[2 ] " e "
[3 ] " fg "
[4 ] " hijk "
[5 ] " lmnop "
[6 ] " "
[7 ] "   "
[8 ] " qrs "
[9 ] "   t"
[10] " uv"
[11] " w "
[12] ""
[13] ""
[14] ""
[15] ""
[16] "x   y"
[17] "  z"
share|improve this answer
    
Many thanks for an excellent solution! May I ask for a slight expansion of that? The delimiter is sometimes prefixed by an underscore (_), giving _| between substrings, except for when the substring is empty, in which case it does not appear. So the situation could be something like "abcd _| e || fg _|||| hij". In other words, we have an "optional" underscore before | and I would like to leave that off when it appears (it does not appear within the substrings). I tried modifying your regular expression but what I came up with didn't work. –  PNS Oct 8 '11 at 20:04
    
@PNS: So use \G([^\|]+?)_?\||\G()\||\G([^\|]*)$ and get the group which is not null as your text. The first part accounts for non-empty data followed by a delimiter, the second part account for empty data followed by a delimiter, and the third part accounts for the data at the end. –  maaartinus Oct 8 '11 at 20:41
    
@PNS, updated pattern above –  TJR Oct 8 '11 at 21:24

I'm afraid you're confusing things. Whenever you use repetitions ('*', '+', etc.), you can't get all the instances matched. Using something like ((xxx)*) you can get the whole string matched as group(1) and the last part matched as group(2), nothing else.

Consider using String.split or better Guava's Splitter.


Ad 1. You can't. Use a simple pattern like

\G([^\|])*(\||$)

together with find() to get all the matches in sequence. Note the \G anchoring to a previous match.


Ad 2. How can I get the last substring?

As the last result find returns.


Ad 3. How do I check that the string matched?

After your last find check if matcher.end() == input.length. But with this pattern you don't need to check anything, as it always matches.

share|improve this answer
    
I am not sure how this works, but thanks. So, find() does go over all the matches! –  PNS Oct 8 '11 at 19:57
    
My pattern is simpler than yours, so what part are you missing? \G makes sure your next match starts just when your previous ended. The first group means any number on non-pipes, the second group means either a pipe or the end. You may want to use \Z' or '\z instead of $. –  maaartinus Oct 8 '11 at 20:33

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