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I have

1. This is a  test message

I want to print

This is a  test message

I am trying

String delimiter=".";
String[] parts = line.split(delimiter);
int gg=parts.length;

Than want to print array

 for (int k ;k <gg;K++)
    parts[k];

But my gg is always 0. am I missing anything. All I need is to remove the number and . and white spaces

The number can be 1 (or) 5 digit number

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3  
Split expects a regex and . has a special meaning. –  assylias Sep 27 '12 at 7:15
    
For statement looks weird. Do you mean for (int k=0; k < gg; k++)? –  Javier Sep 27 '12 at 7:20

4 Answers 4

up vote 11 down vote accepted

You are using "." as a delimiter, you should break the special meaning of the . char.

The . char in regex is "any character" so your split is just splitting according to "any character", which is obviously not what you are after.

Use "\\." as a delimiter

For more information on pre-defined character classes you can have a look at the tutorial.
For more information on regex on general (includes the above) you can try this tutorial


EDIT:
P.S. What you are up to (removing the number) can be achieved with a one-liner, using the String.replaceAll() method.

System.out.println(line.replaceAll("[0-9]+\\.\\s+", ""));

will provide output

This is a  test message

For your input example.

The idea is: [0-9] is any digit. - the + indicate there can be any number of them, which is greater then 0. The \\. is a dot (with breaking as mentioned above) and the \\s+ is at least one space.
It is all replaced with an empty string.

Note however, for strings like: "1. this is a 2. test" - it will provide "this is a test", and remove the "2. " as well, so think carefully if that is indeed what you are after.

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Use following code..

String delimtor="\\."; // use this because . required to be skipped
String[] parts = line.split(delimtor);

For your for loop.

 for (int k=0 ;k <gg.length;K++)
    parts[k];
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Won't compile.. (The editted version will) –  amit Sep 27 '12 at 7:14
    
I am getting this Exception in thread "main" java.lang.ArrayIndexOutOfBoundsException..should I take anything into consideration? –  The Learner Sep 27 '12 at 7:18
    
I did the the looplik ethat –  The Learner Sep 27 '12 at 7:24
    
I updated the answer check it –  Sumit Singh Sep 27 '12 at 8:04

try this

String delimtor = "\\.";

"." has a special meaning for a regular expression.

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If you are just trying to remove the prefix numbers then you can do it in one line. Not sure if you actually want to split on multiple dots. If it is just the prefix then you can do it in one line

String s = "1. with single digit";
String s2 = "999. with multiple digits";
String s3 = "999. with multiple digits . and . dots";

assertEquals("with single digit", (s.substring(s.indexOf(".") + 1).trim()));
assertEquals("with multiple digits", (s2.substring(s2.indexOf(".") + 1).trim()));
assertEquals("with multiple digits . and . dots", (s3.substring(s3.indexOf(".") + 1).trim()));
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