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I've been trying to solve this problem, i did a research a little about the replaceAll method and it seems that it uses a regular expression. But i never heard of any regular expression that contains '.' character. This is the code i've been using:

System.out.println(parsed[1]);
myStatus = parsed[1].replaceAll("...", " ");
System.out.println("new: " + myStatus);
status.setText(myStatus);

Output result is:

old...string new:

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2  
Yes, because it replaces any 3 characters with a space character –  Yanick Rochon Dec 17 '12 at 1:00
    
Oh.. So '.' character does have a special meaning then. Thanks for the quick reply. –  Barışcan Kayaoğlu Dec 17 '12 at 1:01
    
BTW: Welcome to SO! if you have found a working solution, you may close this question by click on the check mark on the left side of the chosen answer. –  Yanick Rochon Dec 18 '12 at 22:51

2 Answers 2

If you want to replace the literal String "..." (three dots), either:

  • use replace("...", " "), which does not use regular expressions
  • use replaceAll("\\.{3}", " "), which is how you specify a literal dot in regex

Unless you need to use replaceAll() (because some implementation you are calling uses it), use replace()

Edited:

Thanks Louis \\.{3} is simpler than \\.\\.\\. (doh!)

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2  
I suspect \\.{3} might be simpler. –  Louis Wasserman Dec 17 '12 at 1:15
    
@Lou Thx. Answer edited with a mention of you :) –  Bohemian Dec 17 '12 at 4:39

What your call is actually doing is replacing any group of 3 characters to a space. Thus, the string "old...string" would become 4 spaces. You would require to escape the dots or define a character class quantifier, as they are predefined characters.

Something like

myStatus = parsed[1].replaceAll("[.]{3}", " ");

Note : You can test your regular expressions for Java here.

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You should probably try compiling and running that code –  Bohemian Dec 17 '12 at 1:07
    
@Bohemian, I had \\. first, then I saw your answer :P anyway, edited for a "better" pattern, IMO –  Yanick Rochon Dec 17 '12 at 1:08

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