6

Why does this code print 97? I have not previously assigned 97 to 'a' anywhere else in my code.

public static void permutations(int n) {
    System.out.print('a' + 0);
}
3
  • 1
    Character literals in Java are 16-bit integer constants representing Unicode UCS-16 encoding values (not quite the same as Unicode code points, which are 21 bits). Dec 30 '14 at 1:07
  • Read the Java tutorial on Unicode Dec 30 '14 at 1:07
  • char is an unsigned short value as all data is ultimately a binary number. The encoding is standard utf-16. This letter is one of the ASCII standard characters. It's encoding predates java by a few decades. Dec 30 '14 at 9:19
5

a is of type char and chars can be implicitly converted to int. a is represented by 97 as this is the codepoint of small latin letter a.

System.out.println('a'); // this will print out "a"

// If we cast it explicitly:
System.out.println((int)'a'); // this will print out "97"

// Here the cast is implicit:
System.out.println('a' + 0); // this will print out "97"

The first call calls println(char), and the other calls are to println(int).

Related: In what encoding is a Java char stored in?

2
  • I'm extremely hesitant to say that it can be implicitly converted to int; in most implementations it is an int with a much more restricted bound.
    – Makoto
    Dec 30 '14 at 2:21
  • In java terms, it is different datatype. While it is right to say that both are integer data types (like byte or long are), they have different sizes and are distinct data types. While saying it is being cast would be right, sign-extending conversion also takes place.
    – Sebi
    Dec 30 '14 at 14:00
4

Yes. char(s) have intrinsic int value in Java. The JLS-4.2.1. Integral Types and Values says (in part),

The values of the integral types are integers in the following ranges:

...

For char, from '\u0000' to '\uffff' inclusive, that is, from 0 to 65535

And of course, when you perform integer arithmetic ('a' + 0) the result is an int.

JLS-4.2.2. Integer Operations says in part,

The numerical operators, which result in a value of type int or long:

...

The additive operators + and - (§15.18)

2
System.out.println('a' + 0); // prints out '97'

'a' is implicitly converted to its unicode value (that's 97) and 0 is an integer. So: int + int --> int

System.out.println('a' + "0"); // prints out 'a0'

So: char + string --> string

1

Because 'a' has been implicitly converted to its unicode value summing it with 0.

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