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From what I understand, the backslash dot ("\.") means one character of any character right? So because backslash is an escape it should be backslash backslash dot ("\\.")

What does this do to a string. I just saw this in an existing code I am working on. From what I understand it will split the string into individual characters. Why do this instead of String.toCharArray (I just guessed this name I know there is a Java string function to split string to char array). So this splits the String to an array of string which contains only one char for each string in the array?

Any Java Gurus out there that used this before?

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7  
Those are backslashes, not forward slashes –  Ned Batchelder Sep 26 '09 at 2:50
    
I acknowledge I got confused there with back and forward. –  Nap Sep 26 '09 at 4:02
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@b1naryatr0phy: the term "forward slash" was in the original post, but has since been edited out. Besides, "forward slash" is a clear term, anyone understands what it means. It's a fine example of a retronym. –  Ned Batchelder Sep 17 '12 at 19:44
    
@Ned What you call retronymic, I call slang. Either way it's inaccurate. (And thanks for the link, but I neither need nor take grammar lessons from UrbanDictionary ;) –  b1nary.atr0phy Sep 19 '12 at 3:15
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@b1naryatr0phy: "inaccurate?" I can't see what part of it is inaccurate. What you mean is that it isn't what it's usually called. True. The slash is certainly the opposite in some sense of the backslash, no? "Backslash" is named as it is because it is a slash but it goes back, yes? Back instead of ... ? Forward. Would you prefer "regular?" "Normal?" If someone says to you, "What kind of slash do I need? A backslash?" How do you answer them? Surely there's no better answer than "forward slash." –  Ned Batchelder Sep 19 '12 at 18:35

2 Answers 2

up vote 48 down vote accepted

My guess is that you are missing that backslash ('\') characters are escape characters in Java String literals. So when you want to use a '\' escape in a regex written as a Java String you need to escape it; e.g.

Pattern.compile("\.");   // Java syntax error

// A regex that matches a (any) character
Pattern.compile(".");  

// A regex that matches a literal '.' character
Pattern.compile("\\.");  

// A regex that matches a literal '\' followed by one character
Pattern.compile("\\\\.");

The String.split(String separatorRegex) method splits a String into substrings separated by substrings matching the regex. So str.split("\\.") will split str into substrings separated by a single literal '.' character.

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:: It works alright.! But Could you ellaborate more on this, like why four backslashes ? Shouldn't there be three ? –  Oliver Dec 9 at 8:59
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A literal backslash has to be escaped once in a regex. That gives 2. Those 2 backslashes both need to be escaped in a String literal. That makes 4. Three backslashes will give you a Java compilation error. Try it and see for yourself. –  Stephen C Dec 9 at 10:33
    
Why does Pattern.compile("\."); produce a syntax error? –  user2581779 Dec 24 at 10:25
    
Because "\." is a Java string literal, and \. is not a legal escape sequence in a Java string literal. –  Stephen C Dec 24 at 11:40

The regex "." would match any character as you state. However an escaped dot "\." would match literal dot characters. Thus 192.168.1.1 split on "\." would result in {"192", "168", "1", "1"}.

Your wording isn't completely clear, but I think this is what you're asking.

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