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While practicing Java randomly I came up with this:

class test
{
    public static void main(String arg[])
    {
        char x='A';
        x=x+1;
        System.out.println(x);
    }
}

I thought it will throw an error because we can't add numeric value 1 to alphabet 'A' in mathematics but the following program runs correctly and prints

B 

how?

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1  
x is a char and Unicode value of 'B' = Unicode value of 'A' + 1 –  Grijesh Chauhan Jun 15 '13 at 15:09
1  
You are adding the int to the ASCII code of the char, not to the char itself. –  Maroun Maroun Jun 15 '13 at 15:09
7  
I wish we can get rid of the term ASCII in the context of Java. Java has been around since 1995 and has been using Unicode the whole time. #Grumpymorning. –  Ray Toal Jun 15 '13 at 15:13
1  
Try this one x *= 1.1; which compiles too. ;) –  Peter Lawrey Jun 15 '13 at 15:43
    
The quoted program does not compile. It has two errors, a missing ";", and the need to cast the result of the increment back to char. –  Patricia Shanahan Jun 16 '13 at 7:58
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8 Answers 8

up vote 8 down vote accepted

In Java, char is a numeric type. When you add 1 to a char, you get to the next unicode code point. In case of 'A', the next code point is 'B'.

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thanks for your answer –  Mahesh Nadar Jun 15 '13 at 15:44
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char is a numeric type (2 bytes long), and is also the only unsigned numeric primitive type in Java.

You can also do:

int foo = 'A';

What is special here is that you initialize the char with a character constant instead of a number. What is also special about it is its string representation, as you could witness. You can use Character.digit(c, 10) to get its numeric value (as an int, since 2 ^ 16 - 1 is not representable by a short!).

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there are still more to learn thanks for this information –  Mahesh Nadar Jun 15 '13 at 15:50
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A char is in fact mapped to an int, look at the Ascii Table.

For example: a capital A corresponds to the decimal number 65. When you are adding 1 to that char, you basicly increment the decimal number by 1. So the number becomes 66, which corresponds to the capital B.

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thanks for the link now i understood that java sees char as a number –  Mahesh Nadar Jun 15 '13 at 15:46
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This is the equivalent program of your program:

public class Tester {
    public static void main(String args[]){
             char start='\u0041';
             char next='\u0041'+1;
             System.out.println(next);
    }
}

But as you see, next=start+1, will not work. That's the way java handles.

The reason could be that we may accidentally use start, with integer 1 thinking that start is an int variables and use that expression. Since, java is so strict about minimizing logical errors. They designed it that way I think.

But, when you do, char next='\u0041'+1; it's clear that '\u0041' is a character and 1 will be implicitly converted into a 2 byte. This no mistake could be done by a programmer. May be that's the reason they have allowed it.

char is 2 bytes in java. char supports unicode characters. When you add or subtract a char var with an offset integer, the equivalent unicode character in the unicode table will result. Since, B is next to A, you got B.

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thanks for this information –  Mahesh Nadar Jun 15 '13 at 15:52
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char are stored as 2 byte unicode values in Java. So if char x = 'A', it means that A is stored in the unicode format. And in unicode format, every character is represented as an integer. So when you say x= x+1, it actually increments the unicode value of the A, which prints B.

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thanks for the answer –  Mahesh Nadar Jun 15 '13 at 15:52
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A char in Java is just an integer number, so it's ok to increment/decrement it. Each char number has a corresponding value, an interpretation of it as a character, by virtue of a conversion table: be it the ASCII encoding, or the UTF-8 encoding, etc.

Come to think of it, every data in a computer - images, music, programs, etc. are just numbers. A simple character is no exception, it's encoded or codified as a number, too.

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Each character has a character code. The computer sees a character as an unsigned number, so You can increment it.

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Because type char effectively works like a 16-bit unsigned int.

So setting char x='A' is almost equivalent to int x=65 When you add one; you get 66; or ASCII 'B'.

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3  
What?!? Not one byte. Please check the Java definition. –  Ray Toal Jun 15 '13 at 15:11
    
Well, two then. –  tbsalling Jun 15 '13 at 15:14
2  
It does not work like a 16bit int. char is unsigned, short is not. –  fge Jun 15 '13 at 15:16
    
Thank you for your input to improving the answer. –  tbsalling Jun 15 '13 at 15:19
    
@fge +1. To anyone interested: docs.oracle.com/javase/specs/jls/se7/html/jls-4.html#jls-4.2.1 –  Ray Toal Jun 15 '13 at 15:21
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