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I am taking my first steps in C++ having a good background in Java. I need to clear out some peculiarities of the ++ operator in C++. Consider the following program:

#include <iostream>
using namespace std;
void __print(int x, int *px) {
 cout << "(x, *px) = (" << x << ", " << *px << ")" << endl;
}

int main() {
 int x = 99;
 int *px = &x;
 __print(x, px);
 x++; __print(x, px);
 x = x + 1; __print(x, px);
 *px = *px + 1; __print(x, px);
 *px++; __print(x, px);
 return 0;
}

Surprisingly to me, the program prints:

(x, *px) = (99, 99)
(x, *px) = (100, 100)
(x, *px) = (101, 101)
(x, *px) = (102, 102)
(x, *px) = (102, 134514848)

It seems that *px = *px + 1 does not have the same effect on *px as on x. But aren't these things the same??? Isn't it *px == x?

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1  
"It seems that *px = *px + 1 does not have the same effect on *px as on x." What makes you say that? I think you must have looked at the wrong line of the output. –  sepp2k Mar 21 '12 at 8:13
3  
FYI: Identifiers matching ^__\w* and ^_[A-Z]\w* are reserved to the implementation in any scope and those matching ^_[a-z]\w* are reserved to the implementation in the global scope. TL;DR: don't use __print. –  Matthieu M. Mar 21 '12 at 8:33
1  
@MatthieuM. The first one should be simply __. Identifiers with double underscores anywhere, not just the start, are reserved. –  R. Martinho Fernandes Mar 21 '12 at 8:42
    
@R.MartinhoFernandes: right! Oh well... –  Matthieu M. Mar 21 '12 at 9:44

7 Answers 7

up vote 9 down vote accepted

the * operator works after the ++ so it returns the value of a wrong address. the operator precedence is important to know in c++. take a look at this :

http://en.cppreference.com/w/cpp/language/operator_precedence

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2  
Yes, you're right!!! I tried (*px)++ and the problem was resolved! Thanks a lot! –  Pantelis Sopasakis Mar 21 '12 at 8:12

Wow, so many people don't know how C++ operators work. :)

Everyone is correct in pointing out it's a problem with the order of precedence, exactly what the problem is, however, seems to be eluding everyone.

*p++; as a statement does exactly one thing. It increments the pointer. After evaluating it and dereferencing its original value (which is then ignored in this case).

int  a[ 2 ] = { 10, 20 };
int* b = &a[ 0 ];
int  c = *b++;

In the above example, c will equal 10, and b will point to the second element of a (20). Because the pointer b will be evaluated before the increment.

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Precedence for ++ is more than *. Hence (px++) is calculated. Now *(px++) is a waste statement. You are neither assigning nor reading the value from the location. Moreover (px++) has a address of a location which may not have initialized. So you are getting the garbage value.

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It's a problem of precedence:

*px = *px +1 reads as (*px) = (*px) + 1, and since px = &x, it is like x=x+1.

*px++ reads as *(px++) hence you are actually moving the pointer forward and getting the value of what the memory holds as the next position respect to the x variable (most likely garbage).

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*px + 1 takes the value that px points to and add it by 1

*px++ increments the address first and then takes the value px points to

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When you do *px++ you actually add 1 to the address and then get the value. You most likely meant (*px)++.

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No, the original value of the pointer is dereferenced before the increment occurs. –  user420442 Mar 21 '12 at 10:25

The problem is with operator precedence. Try (*px)++;

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