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.

I'm having trouble understanding how Post Increment (++), Pre Increment (--) and addition/subtraction work together in an example.

x++ means add 1 to the variable.

x-- means subtract 1 from the variable.

But I am confused with this example:

int x = 2, y = 3, z = 1;`

y++ + z-- + x++;

I assume this means 3(+1) + 1(-1) + 2(+1) Which means the result should be 7.

But when I compile it, I get 6. I don't understand.

int main() {
  int x=2, y=3, z=1;
  int result;

  result = y++ + z-- + x++;    //this returns 6

  cout << result << endl;
  return 0;
}
share|improve this question
1  
Search for prefix and postfix increment/decrement operators. –  Kiril Kirov Sep 23 '12 at 10:32

8 Answers 8

up vote 3 down vote accepted
 result = y++ + z-- + x++;
           3     1      2  = 6

if you perform this again

 result1 = y++ + z-- + x++;
          4     0      3  = 7

reason

operator++ returns the original value, before incrementing the variable.

and

++operator returns the incremented value

-- is same as above just its decrement

share|improve this answer

Because the postfix operator++ returns the original value, before incrementing the variable. The prefix operator++ increments the varialbe and returns a reference to it. The behaviour can be easily illustrated with an example:

#include <iostream>

int main()
{
  int n = 1;
  std::cout << n++ << "\n"; // prints 1
  std::cout << n << "\n";   // prints 2

  int m = 10;
  std::cout << "\n";
  std::cout << ++m << "\n"; // prints 11 
  std::cout << m << "\n";   // prints 11
}
share|improve this answer

when you write x++ it uses the current value of x and then increases it by one.

you want to write ++x instead if you want to increase first.

share|improve this answer

Pre-increment operator(++p) first increase the value and assign it and post increment operator(p++) first assign the value and then perform increment operation.Here all variable are post increment i.e it initially assign its value (on buffer) then increase (for y and x by 1) and decrease z by 1. i.e initially assign 3 + 1 + 2 in buffer(addition is performed on buffer value) and then perform increment/decrements as x= 3,y=4 and z=0

for more information you can read answer on What is the correct answer for cout << c++ << c;? and Could anyone explain these undefined behaviors (i = i++ + ++i , i = i++, etc...) questions

share|improve this answer
2  
The code in OP is well defined and can be explained. The links don't answer the question. –  jrok Sep 23 '12 at 10:38
    
@jrok Thanks for your suggestion...I had added description ... –  Pattinson Sep 23 '12 at 10:55

The position of ++ matter.

If ++ precedes the variable, e.g. ++counter, the value returned is the value in counter after it has been incremented. If ++ follows the variable, e.g. counter++, the value returned is the value in counter before it has been incremented.

(source)

share|improve this answer

The reason is simple. The association principle is being used here, which calculates the values according to the precedence of operators.

ALSO X++ or X-- means... USE THEN CHANGE... It will first use the value and the increment or decrement it. If you want to get an output of 7... try this.. it might work...

result = ++y + z-- + x++;

share|improve this answer
    
It will first use the value and then* increment –  user1683989 Sep 23 '12 at 10:36

Postincrement/postdecrement will increment/decrement the variable, but evaluates to the variables 'previous' value.

So the expression result = y++ + z-- + x++ will act something like:

result = y + z + x;  // result == 6

// perform the 'post' operations
y += 1;
z -= 1;
x += 1;

However, keep in mind that this is necessarily strictly how the compiler will perform the evaluation. For this expression, the results are well defined and you will end up as in the example. When using multiple increment/decrement operations in the same expression, it's easy to incorporate undefined behavior where you won't be able to expect anything in particular from the expression. See Could anyone explain these undefined behaviors (i = i++ + ++i , i = i++, etc...) for details.

share|improve this answer

i++/i-- are post increment and decrement of variable...

so in our expression it will take initial value for solving then inc/dec by 1.

int x = 2, y = 3, z = 1;
y++ + z-- + x++;
2   + 3   + 1    = 6
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.