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I'm not used to them and having trouble with the java syntax "matches".

I have two files one is 111.123.399.555.xml the other one is Conf.xml.

Now I only want to get the first file with regular expressions.

string.matches("[1-9[xml[.]]]");

doesnt work.

How to do this?

  • Do you want /([1-9]{3}\.){4}xml/ ? – Bergi May 8 '12 at 11:29
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    I wrote a blog post to give a real brief overview on regular expressions, the absolutely basics, everybody should know. Maybe it helps you to understand some more details. – stema May 9 '12 at 7:51
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The use of string.matches("[1-9[xml[.]]]"); will not work because [] will create a character class group, not a capturing group.

What this means is that, to java, your expression is saying "match any of: [1-to-9 [or x, or m, or l [or *any*]]]" (*any* here is because you did not escape the ., and as it, it will create a match any character command)


Important:

"\" is recognized by java as a literal escape character, and for it to be sent to the matcher as an actual matcher's escape character (also "\", but in string form), it itself needs to be escaped, thus, when you mean to use "\" on the matcher, you must actually use "\\".

This is a bit confusing when you are not used to it, but to sum it up, to send an actual "\" to be matched to the matcher, you might have to use "\\\\"! The first "\\" will become "\" to the matcher, thus a scape character, and the second "\\", escaped by the first, will become the actual "\" string!


The correct pattern-string to match for a ###.###.###.###.xml pattern where the "#" are always numbers, is string.matches("(\\d{3}\\.){4}xml"), and how it works is as follows:

  • The \\d = will match a single digit character. It is the same as using [0-9], just simpler.
  • The {3} specifies matching for "exactly 3 times" for the previous \\d. Thus matching ###.
  • The \\. matches a single dot character.
  • The () enclosing the previous code says "this is a capturing group" to the matcher. It is used by the next {4}, thus creating a "match this whole ###. group exactly 4 times", thus creating "match ###.###.###.###.".
  • And finally, the xml before the pattern-string ends will match exactly "xml", which, along the previous items, makes the exact match for that pattern: "###.###.###.###.xml".

For further learning, read Java's Pattern docs.

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  • how to make the syntax also recognize patterns like this #.#.#.#.xml ??? (also ##.#.###.#.xml should work etc.) – ctekk May 9 '12 at 10:46
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string.matches("[1-9.]+\\.xml")

should do it.

  • [1-9.]+ matches one or more digits between 1 and 9 and/or periods. (+ means "one or more", * means "zero or more", ? means "zero or one").
  • \.xml matches .xml. Since . means "any character" in a regex, you need to escape it if you want it to mean a literal period: \. (and since this is in a Java string, the backslash itself needs to be escaped by doubling).
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  • could you explain this a bit to me? whats the "+" for and the "\\"? Also why is there a "." inside the "[1-9]" – ctekk May 8 '12 at 11:30
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  • this worked: [1.-9.]+\\.xml thank you for your help and explanation I will accept it – ctekk May 8 '12 at 11:37
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    Note that that code will not match your exact pattern, and will give positives for, for example, "11.2222222.xml" and even "..xml" alone. Broad matches are usually (but not always) unrecommended. – XenoRo May 8 '12 at 12:29

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