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Undefined Behavior and Sequence Points

I am using microsoft visual c++. Look at the following example:

int n = 5;
char *str = new char[32];
strcpy(str, "hello world");
memcpy(&str[n], &str[n+1], 6+n--);
printf(str);
// output is "hell world"

So unexpectadly my compiler produces code that first decrements n and then executes memcpy. The following source will do what i expected to happen:

int n = 5;
char *str = new char[32];
strcpy(str, "hello world");
memcpy(&str[n], &str[n+1], 6+n);
n--;
printf(str);
// output is "helloworld"

First I tried to explain it to myself. The last parameter gets pushed on the stack first, so it may be evaluated first. But I really believe that post increment/decrement guarantee to be evaluated after the next semicolon.

So I ran the following test:

void foo(int first, int second) {
    printf("first: %i / second: %i", first, second);
}
int n = 10;
foo(n, n--);

This will output "first: 10 / second: 10".

So my question is: Is there any defined behaviour to this situation? Can somebody point me to a document where this is described? Have I found a compiler bug ~~O.O~~?

The example is simplyfied to not make sence anymore, it just demonstrates my problem and works by itself.

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marked as duplicate by Anton Kovalenko, 0x499602D2, ybungalobill, user763305, Kate Gregory Feb 5 '13 at 0:30

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Is there any defined behaviour => no –  ipc Feb 4 '13 at 21:10
    
@ipc: This is puzzling me every time: why is the behavior "undefined" rather than just "unspecified"? Isn't just the order of evaluation of the arguments which is unspecified? –  Andy Prowl Feb 4 '13 at 21:12
    
    
@AndyProwl the order of evaluation is unspecified, accessing the same variable and modifying it in an unsequenced fashion is undefined. Oh wait, I think I misread your question... –  Seth Carnegie Feb 4 '13 at 21:13
1  
@AndyProwl I think it's still undefined behaviour, but I don't have a standard reference, let me find it. –  Seth Carnegie Feb 4 '13 at 21:17

1 Answer 1

up vote 6 down vote accepted

There are two related issues at play. First, the order of execution of function arguments is unspecified. What is guaranteed is that all are executed before entering the body of the function. Second, it is undefined behaviour because you are changing and reading n without any sequence points between those expressions.

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Thank you. I knew about the unspecified order of execution on arguments, but didn't know this affected the post operators. I thought they would always be executed after the next semicolon. –  typ1232 Feb 4 '13 at 21:27

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