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Is there a difference between ++x and x++ in java?

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33  
Cue a torrent of identical answers... –  skaffman Jul 7 '09 at 21:10
3  
... and upvoting of the first of the identical answers to get in... –  skaffman Jul 7 '09 at 21:12
3  
to the quickest go the spoils, sort by oldest, click upvote. ohowoho. –  dotjoe Jul 7 '09 at 21:16
5  
Have to say though, that it feels a bit silly to get 20 upvotes for that. Guess I just got lucky today... –  Emil H Jul 7 '09 at 21:43
2  
Everyone should be down voted for even clicking on this question. Damn..that includes me. –  Gandalf Jul 7 '09 at 22:46

11 Answers 11

up vote 102 down vote accepted

++x is called preincrement while x++ is called postincrement.

int x = 5, y = 5;

System.out.println(++x); // outputs 6
System.out.println(x); // outputs 6

System.out.println(y++); // outputs 5
System.out.println(y); // outputs 6
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7  
Good explanation –  Rahul Garg Jul 8 '09 at 6:11
    
Good explanation, 1++. Oops, ++1 :) –  nawfal Jul 20 at 8:59

yes

++x increments the value of x and then returns x
x++ returns the value of x and then increments

example:

x=0;
a=++x;
b=x++;

after the code is run both a and b will be 1 but x will be 2.

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3  
+1 Lots of examples, this is an explanation with examples :) –  Jeremy Smyth Jul 7 '09 at 21:36
    
Yeah, I also ended up upvoting this one because of the clear prose explanation at the start. (Hmm, didn't know you can do cursive in comments nowadays... cool) –  Jonik Jul 7 '09 at 21:45

These are known as postfix and prefix operators. Both will add 1 to the variable but there is a difference in the result of the statement.

int x = 0;
int y = 0;
y = ++x;            // result: y=1, x=1

int x = 0;
int y = 0;
y = x++;            // result: y=0, x=1

See here http://www.janeg.ca/scjp/oper/prefix.html

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Yes,

int x=5;
System.out.println(++x);

will print 6 and

int x=5;
System.out.println(x++);

will print 5.

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Why is this only +1 and the same answer , posted at the same instant is +5? –  Tom Jul 7 '09 at 21:12
3  
Because we're turning into slashdot... slowly... surely... –  skaffman Jul 7 '09 at 21:13
1  
@Tom, I was just considering how to cast my votes, so here's my interpretation: one small reason to prefer Emil H's answer is that his example code is /slightly/ more informative. –  Jonik Jul 7 '09 at 21:20
    
Jonik. True, also includes keywords 'preincrement' and 'postincrement'. –  Tom Jul 7 '09 at 21:27
    
This "answer" just tells you a test case output, and I consider that outputs are not answers. On the contrary, normally the (unexpected) result of some code execution leads as to the question. Hence my down vote. –  Alberto de Paola Feb 18 '12 at 2:19

Yes.

public class IncrementTest extends TestCase {

    public void testPreIncrement() throws Exception {
    	int i = 0;
    	int j = i++;
    	assertEquals(0, j);
    	assertEquals(1, i);
    }

    public void testPostIncrement() throws Exception {
    	int i = 0;
    	int j = ++i;
    	assertEquals(1, j);
    	assertEquals(1, i);
    }
}
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I landed here from one of its recent dup's, and though this question is more than answered, I couldn't help decompiling the code and adding "yet another answer" :-)

To be accurate (and probably, a bit pedantic),

int y = 2;
y = y++;

is compiled into:

int y = 2;
int tmp = y;
y = y+1;
y = tmp;

If you javac this Y.java class:

public class Y {
    public static void main(String []args) {
        int y = 2;
        y = y++;
    }
}

and javap -c Y, you get the following jvm code (I have allowed me to comment the main method with the help of the Java Virtual Machine Specification):

public class Y extends java.lang.Object{
public Y();
  Code:
   0:   aload_0
   1:   invokespecial  #1; //Method java/lang/Object."<init>":()V
   4:   return

public static void main(java.lang.String[]);
  Code:
   0:   iconst_2 // Push int constant `2` onto the operand stack. 

   1:   istore_1 // Pop the value on top of the operand stack (`2`) and set the
                 // value of the local variable at index `1` (`y`) to this value.

   2:   iload_1  // Push the value (`2`) of the local variable at index `1` (`y`)
                 // onto the operand stack

   3:   iinc  1, 1 // Sign-extend the constant value `1` to an int, and increment
                   // by this amount the local variable at index `1` (`y`)

   6:   istore_1 // Pop the value on top of the operand stack (`2`) and set the
                 // value of the local variable at index `1` (`y`) to this value.
   7:   return

}

Thus, we finally have:

0,1: y=2
2: tmp=y
3: y=y+1
6: y=tmp
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Yes, using ++X, X+1 will be used in the expression. Using X++, X will be used in the expression and X will only be increased after the expression has been evaluated.

So if X = 9, using ++X, the value 10 will be used, else, the value 9.

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If it's like many other languages you may want to have a simple try:

i = 0;
if (0 == i++) // if true, increment happened after equality check
if (2 == ++i) // if true, increment happened before equality check

If the above doesn't happen like that, they may be equivalent

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Yes, the value returned is the value after and before the incrementation, respectively.

class Foo {
    public static void main(String args[]) {
        int x = 1;
        int a = x++;
        System.out.println("a is now " + a);
        x = 1;
        a = ++x;
        System.out.println("a is now " + a);
    }
}

$ java Foo
a is now 1
a is now 2
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OK, I landed here because I recently came across the same issue when checking the classic stack implementation. Just a reminder that this is used in the array based implementation of Stack, which is a bit faster than the linked-list one.

Code below, check the push and pop func.

public class FixedCapacityStackOfStrings
{
  private String[] s;
  private int N=0;

  public FixedCapacityStackOfStrings(int capacity)
  { s = new String[capacity];}

  public boolean isEmpty()
  { return N == 0;}

  public void push(String item)
  { s[N++] = item; }

  public String pop()
  { 
    String item = s[--N];
    s[N] = null;
    return item;
  }
}
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Yes, there is a difference, incase of x++(postincrement), value of x will be used in the expression and x will be incremented by 1 after the expression has been evaluated, on the other hand ++x(preincrement), x+1 will be used in the expression. Take an example:

public static void main(String args[])
{
    int i , j , k = 0;
    j = k++; // Value of j is 0
    i = ++j; // Value of i becomes 1
    k = i++; // Value of k is 1
    System.out.println(k);  
}
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