Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.
char char1 = 'a';   
System.out.println(char1);      //prints char 1
System.out.println(char1+1);    //prints char 1
System.out.println(char1++);     //prints char 1
System.out.println(char1+=1);    //prints incremented char1
char1 += 1;                     
System.out.println(char1);      //prints incremented char1

In the above, why doesn't (char1+1) or (char++) print the incremented character but theother two do?

share|improve this question
3  
This isn't even valid Java. -1 –  Doorknob Sep 6 '13 at 1:05
    
Once the code is correctly formatted (made compilable), it works fine for me.. –  MadProgrammer Sep 6 '13 at 1:07
    
That was a typo, it's right in my code. –  Daniel Ball Sep 6 '13 at 1:10
1  
@DanielBall Then why did you retype the code here? Instead of copying and pasting? –  Doorknob Sep 6 '13 at 1:12
1  
The infix + operator, as in x + y, results in an expression which evaluates to a new value but does not change the value assigned to either x or y. This is different than the ++ or -- (prefix or postfix) operators. –  user2246674 Sep 6 '13 at 1:12

4 Answers 4

up vote 7 down vote accepted

First, I'm assuming that because you say the increment in System.out.println works, that you have really specified:

char char1 = 'a';

EDIT

In response to the change of the question (char1+1; => char1 += 1;) I see the issue. The output is

a
98
b

The 98 shows up because the char a was promoted to an int (binary numeric promotion) to add 1. So a becomes 97 (the ASCII value for 'a') and 98 results.

However, char1 += 1; or char1++ doesn't perform binary numeric promotion, so it works as expected.

Quoting the JLS, Section 5.6.2, "Binary Numeric Promotion":

Widening primitive conversion (§5.1.2) is applied to convert either or both operands as specified by the following rules:

If either operand is of type double, the other is converted to double.

Otherwise, if either operand is of type float, the other is converted to float.

Otherwise, if either operand is of type long, the other is converted to long.

Otherwise, both operands are converted to type int.

(emphasis mine)

share|improve this answer
    
Well that explains the numbers from char +1, but not my other issue ... char++ just doesn't seem to do anything, if I input char++ when char is a, it just prints a, but if I do char++; before I do the println, it works. –  Daniel Ball Sep 6 '13 at 1:24
    
That is what the post-increment operator does. It increments it, but the value of the expression is the old value, 'a'. –  rgettman Sep 6 '13 at 1:25
    
OH! I see, I need to use a pre increment. Right. Thanks :) I completely forgot about that little nuance. –  Daniel Ball Sep 6 '13 at 1:27

You didn't assign the result of addition char1+1 to char1. So

char1 = char1 + 1;

or

char1 += 1; char1++; are correct.

share|improve this answer
    
Perhaps you should provide an explanation to as why they're correct :) (And why his code is incorrect) –  Josh M Sep 6 '13 at 1:08
    
Unless of course you are unable to explain why yours is correct and his is incorrect... –  Josh M Sep 6 '13 at 1:17
    
Sorry, I replyed to a questioner's stupid comment but it has been deleted. –  qsona Sep 6 '13 at 2:28

Okay, first of all, fixing the format of your code:

char char1;
char1 = 'a';
System.out.println(char1);          // print 1
System.out.println(char1 + 1);      // print 2
char1 += 1;
System.out.println(char1);          // print 3

which yields the output:

a
98
b

Now, let's look at each call to println() in detail:

1: This is simply taking the character handle named char1 and printing it. It's been assigned the letter a (note the single quotes around the a in the assignment, indicating character). Not surprisingly, this prints the character a.

2: For this line, you're performing an integer addition. A char in java is held as a unicode character. The unicode value for the letter a maps to the number 97. (Note that this also corresponds to that ASCII value for a). When performing arithmetic operations in Java between mismatched types, the smaller/less precise value type's value will be 'upgraded' to the larger type (this is very imprecisely stated). Because of this, the char is 'upgraded' to an int before the addition is performed, and the result is also an int. With this in mind, it's not surprising that the 97 from a +1 results in a 98 being printed.

3: In this instance we are once again printing the value of a char, so a character is printed. This time the 98 we saw generated before is implicitly cast back into a character. Again, unsurprisingly the next highest number mapping from a is b, so we see a b printed.

share|improve this answer

try this.

System.out.println(char1);
System.out.println(++char1);
char1 += 1;
System.out.println(char1);

instead

char1 = a;   
System.out.println(char1);
system.out.println(char1+1);
char1 += 1;
System.out.println(char1);
share|improve this answer

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.