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I have a string that contains 2 integer numbers separated by whitespace followed by any character string which includes whitespace.

Example:

23 14 this is a random string

How do I extract this is a random string?

The integers aren't guaranteed to be double digits therefore I can't figure out how to use indexOf and substring to extract this data.

Thanks in advance.

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exampleString.substring(exampleString.indexOf(" ", exampleString.indexOf(" ")+1) + 1); –  khachik Jul 13 '12 at 3:55
    
you can take a look at java.util.Scanner class –  dungeon Hunter Jul 18 '12 at 3:37

7 Answers 7

up vote 0 down vote accepted

Wow. I can't believe how much code some people write to do the simplest of things...

Here's an elegant, one-line solution:

String remains = input.replaceAll("^(\\d+\\s*){2}","");

Here's a test:

public static void main( String[] args ) {
    // rest of String contains more numbers as an edge case
    String input = "23 14 this is a random 45 67 string";
    String remains = input.replaceAll("^(\\d+\\s*){2}","");
    System.out.println( remains );
}

Output:

this is a random 45 67 string
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clever solution. –  TheWino Jul 14 '12 at 2:46

Use split(String regex, int limit):

String s = "23 14 this is a random string";
String[] arr = s.split(" ", 3);
System.out.println(arr[2]);

OUTPUT:

this is a random string

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1  
This is the simplest solution, I think you should mark this as the answer. :) –  Brad Jul 13 '12 at 4:02
    
@Geoff btw, this isn't the simplest solution (see mine for that), and will explode with ArrayIndexOutOfBounds if the remaining text is blank (ie input is "12 34", which is not excluded in the question), because there will be no 3rd element from the split –  Bohemian Jul 13 '12 at 4:54
String str = "23 14 this is a random string";
str = str.replaceAll("[0-9]", "");
str = str.trim();
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.. and what if 'random string' also contains numbers? –  Arturs Licis Jul 13 '12 at 4:32
    
Then you use Eng Fouad's solution. :) –  Brad Jul 13 '12 at 5:10

I would use a combination of the above answers, regex + replaceFirst.

String s = "23 14 this is a random string";
String formattedS = s.replaceFirst("\\d+ \\d+ ", "");

This removes the first two numbers separated by a whitespace, regardless of how big the numbers are.

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You can use StringTokenizer and if you know you'll have 2 numbers, just ignore the first two elements in the array.

StringBuffer sb = new StringBuffer();
StringTokenizer st = new StringTokenizer("23 14 this is a random string");

int i = 1; // counter: we will ignore 1 and 2 and only append

while (st.hasMoreTokens()) {
   // ignore first two tokens
   if (i > 2) {
             sb.append(st.nextToken()); // adds remaining strings to Buffer
   }

   i++;  // increment counter
} // end while

// output content
sb.toString();  
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just use

StringTokenizer st=new StringTokenizer(youString, " "); //whitespaces as delimeter

int firstInteger=Integer.parseInt(st.nextToken());
int secondInteger=Integer.parseInt(st.nextToken());

similarly rest of the tokens..

you can make a definite array..

and store rest of the tokens in a string array like this..

while(st.hasMoreTokens())
{
 ar[i]=st.nextToken();
}
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Honestly... If your String follows a pattern and you need to extract something from it, try to use Regex. It's made for this.

Pattern regex = Pattern.compile("^\\d+ \\d+ (.*)$");
Matcher matcher = regex.matcher("23 14 this is a random string");

if (matcher.find())
    System.out.println(matcher.group(1));

That outputs:

this is a random string
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