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 working with an API in Windows that essentially callbacks with UINT_PTR (address of an object) and provides methods to get more information about these objects.

I have a collection where MyObject is my class that holds info I care about (not important to this question):

std::unordered_map<UINT_PTR,MyObject*> objectMap;

And I have a function that will be called multiple times. In some cases the address provided by the API needs to be modified. I'm unable to find any modified UINT_PTR in my collection. For example:

void CallbackHandler::APICallback( UINT_PTR address )
{
    UINT_PTR collectionKey = address;

    if( SomeCondition() )
    {
        collectionKey -= 0x10;
    }

    if( objectMap.count( collectionKey ) == 1 )
    {
      // Write message to log, condition we care about occurred
    }
    else
    {
      // Do some info gathering and evaluation, possibly adding collectionKey to objectMap
    }
}

So for example, the first time the above function is called "0xFF4116A8" is added to the collection. The second time the function is called, address="0xFF4116B8" and SomeCondition() happens to be true so we subtract 0x10 to get "0xFF4116A8" again. However, objectMap.count("0xFF4116A8")==1 isn't true... but when I log the contents of the collection "0xFF4116A8" is indeed in there.

I suspect I'm making some sort of fundamental mistake trying to do arithmetic on a UINT_PTR or making some bad assumption about the behavior of unordered_map. What mistake am I making here and what's the proper way to modify a UINT_PTR and then look it up in a collection?

share|improve this question
    
if you substract 0x10 from an uint-ptr your adress will be decremented by 0x40 and not by 0x10 –  vlad_tepesch May 7 '13 at 13:26
    
I have a question: why not just arrange things so the uintptr_t points to the instance of MyObject, rather than having the extra layer of indirection provided by the map? –  John Zwinck May 7 '13 at 13:45
    
@vlad_tepesch Note that despite the name, UINT_PTR is a Windows type defined as unsigned __int64, and not a UINT *. So the arithmetic is correct –  Scott Jones May 7 '13 at 14:40

2 Answers 2

I cannot repro your example with this:

#include <unordered_map>

struct MyObject{};

int main(int argc, _TCHAR* argv[])
{
    std::unordered_map<UINT_PTR,MyObject*> objectMap;
    UINT_PTR x = 0xFF4116A8;
    objectMap[x] = nullptr;
    UINT_PTR y = 0xFF4116B8;
    y -= 0x10;
    auto c = objectMap.count(y);    // c == 1
    return 0;
}

Are you on a 64-bit machine? Is it possible that you're doing sign-extended pointer arithmetic in code you haven't provided?

share|improve this answer
    
I am on a 64 bit machine but I'm not doing any arithmetic besides the -= 0x10. –  Dan Fiedler May 7 '13 at 15:49
up vote 0 down vote accepted

Apologies all!

It turns out the problem was elsewhere in the code. The code was more like:

void CallbackHandler::APICallback( UINT_PTR address, SOME_TYPE_INFO typeInfo )
{
    UINT_PTR collectionKey = GetAddressForType( address, typeInfo );

    // Rest of the code the same...

Where GetAddressForType did:

UINT_PTR CallbackHandler::GetAddressForType( UINT_PTR address, SOME_TYPE_INFO typeInfo )
{
  UINT_PTR objectId = 0;

  switch( typeInfo )
  {
  case ELEMENT_TYPE_STRING:
    objectId = *(PUINT_PTR) address;
    break;
  case ELEMENT_TYPE_CLASS:
    objectId = address;
    break;
  case ELEMENT_TYPE_I:    // fall through - intptr
  case ELEMENT_TYPE_U:    // fall through - uintptr
  case ELEMENT_TYPE_PTR:  // pointer
    objectId = *(UINT *) address; // This was the problem right here. Should be *(PUINT_PTR) cast.
    break;
  }

  return objectId;
}

Instead, I needed to use the same *(PUINT_PTR) cast as the string type.

Thanks for the help all.

share|improve this answer
    
Yes - one of the comments hints at the confusion around UINT_PTR (!= UINT *). A lot of devs have tripped up over it, myself included. –  Scott Jones May 7 '13 at 17:06

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.