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The following code prints a value of 9. Why? Here return(i++) will return a value of 11 and due to --i the value should be 10 itself, can anyone explain how this works?

#include<stdio.h>
main()
{
    int i= fun(10);
    printf("%d\n",--i);
}

int fun (int i)
{
    return(i++);
}
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4  
return i++ will return 10. return ++i would return 11. –  Nemo Aug 11 '11 at 19:00
    
Because what is really happening are two things, first i is being returned and then i is being incremented. If you write ++i then those two things happen in the opposite order. –  GoodbyeStackOverflow Jul 3 '14 at 13:21

9 Answers 9

The function returns before i is incremented because you are using a post-fix operator (++). At any rate, the increment of i is not global - only to respective function. If you had used a pre-fix operator, it would be 11 and then decremented to 10.

So you then return i as 10 and decrement it in the printf function, which shows 9 not 10 as you think.

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The postfix increment ++ does not increase the value of its operand until after it has been evaluated. The value of i++ is i.

The prefix decrement increases the value of its operand before it has been evaluated. The value of --i is i - 1.

Prefix increment/decrement change the value before the expression is evaluated. Postfix increment/decrement change the value after.

So, in your case, fun(10) returns 10, and printing --i prints i - 1, which is 9.

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i++ is post increment. The increment takes place after the value is returned.

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It has to do with the way the post-increment operator works. It returns the value of i and then increments the value.

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First, note that the function parameter named i and the variable named i in main() are two different variables. I think that doesn't matter that much to the present discussion, but it's important to know.

Second, you use the postincrement operator in fun(). That means the result of the expression is the value before i is incremented; the final value 11 of i is simply discarded, and the function returns 10. The variable i back in main, being a different variable, is assigned the value 10, which you then decrement to get 9.

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In fact return (i++) will only return 10.

The ++ and -- operators can be placed before or after the variable, with different effects. If they are before, then they will be processed and returned and essentially treated just like (i-1) or (i+1), but if you place the ++ or -- after the i, then the return is essentailly

return i;
i + 1;

So it will return 10 and never increment it.

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There is a big difference between postfix and prefix versions of ++.

In the prefix version (i.e. the expression ++i), the value of i is incremented, and the value of the expression is the new value of i.

In the postfix version (i++), the expression takes on the original value of i, and then i is incremented.

So, if we have this code

int i = 10;
int j = ++i;
int k = i++;

j will be 11, k will be 11, but i will be 12.

The same stuff holds for postfix and prefix versions of --.

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fun(10) returns 10. If you want it to return 11 then you need to use ++i as opposed to i++.

int fun(int i)
{
    return ++i;
}
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Perfix:

int a=0;

int b=++a; // b=1,a=1

before assignment the value of will be incremented.**

Postfix:

int a=0; int b=a++; // a=1,b=0

first assign the value of 'a' to 'b' then increment the value of 'a'

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