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What is the logic behind this behaviour?

 int i=0;
    for(int k=0;k<10;k++){
    i++;
    }
    System.out.println("i="+i);

Output=10; //Exepcted



 int i=0;
    for(int k=0;k<10;k++){
    i=i++;
    }
    System.out.println("i="+i);

Output=0; //Surprised :) 

Can anybody throw some light on above functionality?

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marked as duplicate by Mat, Rup, jlordo, NINCOMPOOP, Lion May 2 '13 at 10:24

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
what? it's the same code –  Axarydax May 2 '13 at 10:21
    
@Axarydax second version has i=i++ rather than just i++ –  Rup May 2 '13 at 10:21
    
    
@Rup thanks, I see now –  Axarydax May 2 '13 at 10:22

8 Answers 8

up vote 4 down vote accepted

See this brilliant answer:

x = x++;

is equivalent to

int tmp = x;
x++;
x = tmp;

From this question.

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i = i++ is a postfix increment operator - it increments i, then returns it to its original value (because the i++ essentially "returns" the value of i before it was incremented.)

i = ++i would work since it's a prefix increment operator, and would return the value of I after the increment. However, you probably just want to do i++ there without any extra assignment as you do in the first run - it's (essentially) shorthand as it is for i = i+1.

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What is happening happens because java is pass-by-value.

In the first loop, i is getting incremented in the i++ statement, however, in the second loop what is happening is that i gets pointed to a new memory location that stores the value of i (in this case 0) and then increments the old location.

To visualise:

i => 0x00000001 // 0

for() {
    i => 0x00000002 <- 0  // store old i value (0) in new location
    0x00000001++          // Increment the value stored at the old location

    // Cause there is no longer a reference to 0x00000001, 
    // it will get garbage collected and you will be left with
    // i => 0x00000002

And it will keep doing that, assigning the old value to a new location and incrementing the old value for each pass of the loop

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i=i++; will never increment i because the ++ is processed after the i=i.

you could see it like this:

int i=0;
for(int k=0;k<10;k++){
    int j = 0;
    i = j;
    j = j + 1;
}
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i = i++;

is equivalent to,

int temp = i; // temp = 0
i++; // i=1
i = temp; // i = 0
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The ++ operator is processed after the assigment,

if you changed it i=++i; you'd probably get the behaviour you expected

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Well yes. But you shouldn't recommend a bad solution. Better solutions are i++; or i +=1; or i = i + 1;. –  Stephen C May 2 '13 at 11:15
    
yes agreed, i=++i; would never be used in practice –  paul May 2 '13 at 11:18

In the first option , you are incrementing the i by using i++ , which is equivalent to i=i+1, so it increases the value of i to 10.
but in the second option , you are assining i a new value , hence getting the same value everytime.

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i=i++;

returns i and increments. so the increment is lost... look at this pseudo code

x = i++ will break the operation in following steps

x = i;
i++;

in your case , it returns 0 increments to 1 (but the increment is lost)

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