2

I have a String s = 'muniganesh' and if I print the value of s.subString(1, 2), the output is 'u', because in Java strings, the index starts at 0. But I need to change my string to start with index position 1. How is it possible?

3
  • Assuming int startIndex will be inside [1..s.length()], you could do s.substring(startIndex-1, finish). Also, this int finish in the end of String#subString will be 1-index. Aug 1, 2012 at 6:26
  • I have done that your suggestion already. But I need to know any solution for my scenario.
    – MGPJ
    Aug 1, 2012 at 6:32
  • Edit your question showing the input and expected output to have a better understand of your needs. It would be better if you post more than 1 input/output sample. Aug 1, 2012 at 6:34

5 Answers 5

6

If you really really want to, you can write a method:

public static String substring(String str, int beginIndex, int endIndex) {
    return str.substring(beginIndex - 1, endIndex - 1);
}

But I highly suggest you don't, since you might mix up s.substring() and your own substring() and get off by 1 errors. Just get accustomed to the way Java handles Strings, and use s.substring(). Many other popular languages start string indexes at 0 like Java.

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  • 1
    the wrong part is the endIndex - 1. This value is 1-based index, while beginIndex is 0-based index. Aug 1, 2012 at 6:37
  • 2
    The last two sentences are important here (the example could probably be scrapped). Just get accustomed to the way Java handles Strings, and use s.substring(). Many other popular languages start string indexes at 0 like Java. Aug 1, 2012 at 6:41
  • @LuiggiMendoza It's not wrong. Both indexes are 0-based, which is why 0 is a legal value for the end index. However, the end index is exclusive, whereas the begin index is inclusive.
    – Boann
    Jan 17, 2015 at 16:29
  • @Boann read the docs first. First index is 0 based, second index is 1 based. Jan 17, 2015 at 16:30
  • @LuiggiMendoza You're wrong and that's not what the docs say.
    – Boann
    Jan 17, 2015 at 16:32
4

You could write your own utility method to process both #substring(start, end) arguments as zero-based indexes (or one-based indexes if you wish so), but as @irrelephant said it is not suggested, you should get accustomed to how Java handles these special cases: the first argument is zero-based, while the second one is one-based. String#substring is not the only example, there's also StringBuilder#delete, and there should be more.

The possible motivation could be calculating end position by simply adding length to the start position without additional increment. E.g.:

    String source = "In Java world, end position index may be one-based";
    int indexOfP = source.indexOf('p');
    String result = source.substring(indexOfP, indexOfP + 8);
    System.out.println(result); // prints 'position'

It's not the best example, and the true motivation may differ, but it's how I remember about this peculiarity.

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    The end index is not one-based. For example, 0 is a legal end index, which it wouldn't be if it was one-based. Both indexes are zero-based, but the end index is exclusive, whereas the begin index is inclusive.
    – Boann
    Jan 17, 2015 at 16:25
1

Java string index starts from o an d ends up to string length -1.

so if you use

String s = "muniganesh";

s = s.substring(1,2);// output u


System.out.println(""+ s.substring(1)); //output String s = "muniganesh";
1

try

myString = myString.substring(1); // will give "uniganesh"
0

Java arrays or strings (and the arrays of most other languages) index starting with 0. Make the string one longer and simply don't use the first index, or use indexes from 1 to string.length and simply subtract one when you actually index into the string.

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