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I'm working now for some weeks with c99 focusing undefined behaviour. I wanted to test some strange code while trying to respect the rules. The result was this code:

(plz forgive me the variable names, i had eaten a clown)

int main(int arg, char** argv)
{

    unsigned int uiDiffOfVars;
    int LegalPointerCast1, LegalPointerCast2, signedIntToRespectTheRules;
    char StartVar;//Only use to have an adress from where we can move on
    char *TheAccesingPointer;
    int iTargetOfPointeracces;

    iTargetOfPointeracces= 0x55555555;

    TheAccesingPointer = (char *) &StartVar;
    LegalPointerCast2 = (int) &StartVar;
    LegalPointerCast1 = (int) &iTargetOfPointeracces;

    if ((0x80000000 & LegalPointerCast2) != (0x80000000 & LegalPointerCast1))
    {
        //as im not sure in how far 
        //"— Apointer is converted to other than an integer or pointer type (6.5.4)." is treating unsigned integers,
        //im checking this way.
        printf ("try it on next machine!\r\n");
        return 1;
    }


    if ((abs (LegalPointerCast1) > abs (LegalPointerCast2)))
        uiDiffOfVars = abs (LegalPointerCast1) - abs (LegalPointerCast2);
    else
        uiDiffOfVars = abs (LegalPointerCast2) - abs (LegalPointerCast1);

    LegalPointerCast2 = (int) TheAccesingPointer;
    signedIntToRespectTheRules = abs ((int) uiDiffOfVars);

    if ((abs (LegalPointerCast1) > abs (LegalPointerCast2)))
        TheAccesingPointer = (char *)(LegalPointerCast2 + signedIntToRespectTheRules);
    else
        TheAccesingPointer = (char *)(LegalPointerCast2 - signedIntToRespectTheRules);

     printf ("%c\r\n", *TheAccesingPointer);//Will the output be an 'U' ?

    return 0;
}

So this code is undefined behavior at its best. I get different results, whether I'm not accessing any memory-area, that i don't own, nor accessing any uninitialized memory. (afaik)

The first critical rule was, I'm not allowed to add or subtract pointer which lets them leaving their array bounds. But I'm allowed to cast a pointer into integer, there I'm able calculate with, as I want, am I not?

My second assumption was as I'm allowed to assign a pointer an address thats valid, its a valid operation to assign this calculated address to a pointer. Since I'm acting with a char pointer, there is also no break of strict aliasing rules, as a char* is allowed to alias anything.

So which rule is broken, that this causes UB?

are single Variables also to be understood as "Arrays", and I'm breaking this rule?

— Addition or subtraction of a pointer into, or just beyond, an array object and an integer type produces a result that does not point into, or just beyond, the same array object (6.5.6).

If so, I'm also allowed to do this?

int var;
int *ptr;
ptr = &var;
ptr = ptr + 1;

Because the result is almost pretty sure undefined behavior. compiling with MSVC2010 it puts out the expected "U", but on freeBSD using clang and gcc I get depending on optimization level pretty funny and different results each time. (what in my eyes shouldn't be as far the bahavior is defined).

So any ideas what is causing this nasal dragons?

share|improve this question
1  
Remember that even on today's 64-bit platforms int is still 32 bits while addresses are 64 bits. So storing an address in an int will most definitely lead to undefined behavior. If you want an integer to store a pointer, you should use intptr_t. –  Joachim Pileborg Aug 13 '13 at 9:45
    
yeah i know. but as I explicit cast this shouldn't be the problem, and even if, there also where difference between the single 32bit compilations –  Zaibis Aug 13 '13 at 9:46
    
Yes it's most definitely a problem. When you do e.g. LegalPointerCast2AkaBountyPlacer = (int) &TheCharedyBitch on a 64-bit system you silently drop the top 32 bits of the address of TheCharedyBitch, and if you later use LegalPointerCast2AkaBountyPlacer as an address it will now most likely point to somewhere completely different. –  Joachim Pileborg Aug 13 '13 at 9:49
    
@Joachim Pileborg as i already said, I'm agreeing you, but thats not the point of my question (I eddited the Info out now) –  Zaibis Aug 13 '13 at 9:51
    
Could you go through your example code, and replace the variable names with short, meaningful ones, so that it's easier to grok? –  Oliver Charlesworth Aug 13 '13 at 9:59

1 Answer 1

You are basically running into paragraph 6.3.2.3 Pointer ad 5 in conversion from int to char* in the assignment to TheAccesingPointer.

An integer may be converted to any pointer type. Except as previously specified, the result is implementation-defined, might not be correctly aligned, might not point to an entity of the referenced type, and might be a trap representation.

The use of all abs functions makes it very dependent on the actual implementation what happens. Basically it will only work if iTargetOfPointeracces has a higher address than StartVar. If you lose all occurrences of abs I think you will get 'U' on most if not all architectures and with most if not all compilers.

Ironically this is not undefined behavior but implementation defined behavior. But when you don't get 'U' the TheAccesingPointer is not pointing to an entity of the referenced type, most likely it is not pointing to an entity at all.

If it is not pointing to an entity then (of course) you will run into undefined behavior when dereferencing it in the printf following paragraph 6.5.3.2 ad 4

The unary * operator denotes indirection. If the operand points to a function, the result is a function designator; if it points to an object, the result is an lvalue designating the object. If the operand has type ‘‘pointer to type’’, the result has type ‘‘type’’. If an invalid value has been assigned to the pointer, the behavior of the unary * operator is undefined.

Let's elaborate two scenarios where all addresses on the stack have bit 31 set, which is quite common under Linux.

Scenario A: Suppose &StartVar < &iTargetOfPointeracces then

  abs(LegalPointerCast1) - abs(LegalPointerCast2)
= LegalPointerCast2 - LegalPointerCast1 (by both < 0)
= (char*)(&StartVar) - (char*)(&iTargetOfPointeracces)
< 0 (by &StartVar < &iTargetOfPointeracces)
So uiDiffOfVars = (char*)(&StartVar) - (char*)(&iTargetOfPointeracces)
and signedIntToRespectTheRules = -uiDiffOfVars (by (int)uiDiffOfVars < 0)
thus  TheAccesingPointer
= (char *)(&StartVar + (char*)(&iTargetOfPointeracces) - (char*)(&StartVar))
= (char*)(&iTargetOfPointeracces)

So in this scenario you will get 'U'.

Scenario B: Suppose &StartVar > &iTargetOfPointeracces then

  abs(LegalPointerCast1) - abs(LegalPointerCast2)
= LegalPointerCast2 - LegalPointerCast1 (by both < 0)
= (char*)(&StartVar) - (char*)(&iTargetOfPointeracces)
> 0 (by &StartVar > &iTargetOfPointeracces)
So uiDiffOfVars = (char*)(&StartVar) - (char*)(&iTargetOfPointeracces)
and signedIntToRespectTheRules = uiDiffOfVars (by (int)uiDiffOfVars > 0)
thus TheAccesingPointer
= (char *)(&StartVar + (char*)(&StartVar) - (char*)(&iTargetOfPointeracces))
= (char *)(2*(char*)&StartVar - (char*)(&iTargetOfPointeracces))

In this scenario it is very unlikely that TheAccesingPointer is pointing to some entity, so undefined behavior is triggered in dereferencing this pointer. So my point is that the calculation of TheAccesingPointer is implementation defined, where the above calculations are very common. If the computed pointer is not pointing to iTargetOfPointeracces, as in scenario B, undefined behavior is triggered.

Different optimization levels may result in a different order of StartVar' andiTargetOfPointeracces' on the stack and that may explain the different result for different optimization levels.

I don't think single variables count as an array.

share|improve this answer
    
Well, I would suggest, you'r wrong. I'm masking out and comparing the first bit, so I'm checking for they both have the same sign. And I would also say, it's not just implementation defined behavior, because I'm getting in gcc different results in -O1 and -O3 so this cant be the result of implementation defined behavior, can it? –  Zaibis Aug 18 '13 at 22:06
    
@Zaibis I've worked out two different scenarios, one triggering undefined behavior and the other doesn't. I hope that clarifies the point I'm trying to make. –  Bryan Olivier Aug 20 '13 at 20:28
    
I eddited the code. As I was trying out your Suggestion may be the reason. So I'm respecting now its a neg address or a positive address. And the result was pretty funny. Even under windows now the result wasn't "U" so i backuped to previous version and the result still wasn't "U" anymore. So this code has undefined behavior. and your suggestion sadly was wrong. Maybe another idea, in review of the new facts? E: -> the last time I runned same code on Windows it was the "U" but now in both cases the result changed doesn't matter about both address have neg or pos value. –  Zaibis Aug 23 '13 at 11:21

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