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Possible Duplicate:
String length without using length() method in java

I need to get the length of a string (no of characters present) in Java using a for loop and without using any methods like length().

import java.io.*;
import java.util.*;

public class reversestring

{
    public static void main(String arg[])throws IOException

    {
     String s;
     int i=0,j=0,k=0;
     DataInputStream in=new DataInputStream(System.in);
     System.out.println("Enter ur string : ");
     s=in.readLine();
     char ar[]=s.toCharArray();
     System.out.println("Length of the string is : ");

     for(j=ar[i];j!='\0';i++)
     {

         k++;

     }
     System.out.println(+k);
    }
}

I wrote this program, but I am not getting the answer. What is wrong with it?

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1  
Java String objects are not 0-terminated! –  Joachim Sauer Feb 10 '11 at 14:42
1  
As you "cannot" use length().. should this be tagged "homework" ? –  Nanne Feb 10 '11 at 14:44
1  
@Nanne: according to this the homework-tag (together with other meta-tags) is discouraged. –  Joachim Sauer Feb 10 '11 at 14:47
1  
Possible duplicate: stackoverflow.com/questions/2910336/… –  aioobe Feb 10 '11 at 14:49
3  
@joachim-sauer : That's not what I read in that link; it's about how to respond to those questions. I was suggesting it, because it would help understanding the question: otherwise I'd ask to specify why length() couldn't be used. If there is some strange reason for that, we might need to take that into account too. But as it is probably homework, we can just take it as a given. So it's not "becasue I don't want to answer that!" but more "what is going on?". See other comments :D –  Nanne Feb 10 '11 at 14:51
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marked as duplicate by aioobe, Stephen C, Bart Kiers, Richard, Graviton Feb 12 '11 at 1:18

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

7 Answers

The following .length is not a method.

int length = s.toCharArray().length
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nor is it a property of the String API. Great workaround. –  Andy Feb 10 '11 at 14:56
2  
What's the "String API"? Why wouldn't toCharArray be included in that definition? –  aioobe Feb 10 '11 at 15:10
    
You can't access the String without using the API, unless you use reflection to get the length field. –  Peter Lawrey Feb 10 '11 at 19:13
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This has been asked before. Here's my favorite answer:

str.lastIndexOf("")

(which probably even runs in constant time, as opposed to the other answers.)

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Java isn't C, thus you can't treat Java strings as C strings and you can't expect C methods to work in Java. In particular, Java strings aren't null-terminated.

The 'correct' way would be to use length (either a string method, or an array property), but, since you don't want, you could employ 'for each' loop.

for (char c in charArray) {
    ++count;
}

It feels not good, though.

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The task itself is completely meaningless in the first place, which makes it pretty impossible to give a "good" answer. Having said that: this only hides the .length behind some syntactic sugar ;-) –  Joachim Sauer Feb 10 '11 at 14:44
    
@Joachim I completely agree, I would never let this code pass review, let alone use it myself :) –  Nikita Rybak Feb 10 '11 at 14:45
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a functional guy would answer

len(str)
   return str.isEmpty() ? 0 : 1+len(str.substring(1));
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1  
why +1? I was being sarcastic... –  irreputable Feb 10 '11 at 15:32
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int counter;
String s = "something";

try{
    for(counter=0; s.charAt(counter); counter++);       

}catch(Exception e){
   //ArrayIndexOutOfBoundsException
   System.out.println("Length: " + counter);
}
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I believe Java's String.toCharArray() returns an array that is not null-terminated, so looking for a null character would not work.

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I can't believe all the other answers are using the String API, although the title of this question indicates that's not allowed :-P

I came up with this:

System.out.println(new StringReader("stackoverflow").skip(Long.MAX_VALUE));
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I strongly suspect that StringReader is using the String API behind the scenes. You are simply delegating the use of the API to it. –  ILMTitan Feb 10 '11 at 16:50
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