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I have the following code

void PacketEncrypt(Packet* packet, int sizeofpacket)
{
    int* pointer;
    pointer = ((int*)packet+sizeofpacket)-2;
    (int)*pointer = packet->PacketSize^0x1A3C;
    packet->Type += 0x0FFF7;
}

Problem is when i debug it compiler set it as:

0041585E   8B45 0C          MOV EAX,DWORD PTR SS:[EBP+C]
00415861   8B4D 08          MOV ECX,DWORD PTR SS:[EBP+8]
00415864   8D5481 F8        LEA EDX,DWORD PTR DS:[ECX+EAX*4-8]

But what i really want is:

0041585E   8B45 0C          MOV EAX,DWORD PTR SS:[EBP+C]
00415861   8B4D 08          MOV ECX,DWORD PTR SS:[EBP+8]
00415864   8D5481 F8        LEA EDX,DWORD PTR DS:[ECX+EAX-2]

I am kind of new into C++, so can you help me on what i am doing wrong, or why the compiler is adding scalar *4? thanks !

share|improve this question
    
Because int has a size of 4 bytes on your system. – Mysticial Jul 24 '12 at 7:04
up vote 1 down vote accepted

int pointer has size of 4 bytes on your machine and can be shifted only by 4*n bytes. If you need to move pointer by 2 bytes cast it to char, since sizeof(char) = 1

char *ptr = (char*)otherPtr;
ptr += 2; //shift by 2 bytes

int *ptr = (int*)otherPtr;
ptr += 2; //shift by 8 bytes. (2 * sizeof(int))

EDIT

(short*)pointer = something. - You can't assign to rvalue. I think you meant:

pointer = (char*) something

Or if you need short pointer:

short *someOtherPointer = something 
share|improve this answer
    
thanks for the examples and the answer ! – ffenix Jul 24 '12 at 7:09
    
Please be sure to checkmark either one of the answers given, as they are both correct. If you need further clarification, leaving a comment is useful for that, too. – defube Jul 24 '12 at 7:18
    
i got the following problem now: char* pointer; pointer = ((char*)packet+sizeofpacket) -2; (short*)pointer = packet->PacketSize^0x1A3C; it says expression must be a modifiable lvalue. i want to do: WORD PTR [pointer] = packet->PacketSize^0x1A3C thanks ! – ffenix Jul 24 '12 at 7:27
    
@user1175832: what is packet->PacketSize ? – Andrew Jul 24 '12 at 7:30
    
its a short type member of a struct i declared – ffenix Jul 24 '12 at 7:31

C++ does pointer arithmetic using the pointer type. ptr+2 is 2 elements, not two bytes past ptr. If sizeof(*ptr)==4, those two elements are 8 bytes, and ptr+2 would therefore point 8 bytes past ptr.

share|improve this answer
    
thanks for the quick answer ! – ffenix Jul 24 '12 at 7:09

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