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In gcc this works fine. The code goes something like:

unsigned char b[50] = "\xda\xd1 ... \x0"; //some shellcode with terminating \x0
( (void(*)())b )(); //cast b to function pointer from void to void, then run it

But when this is put in Visual C++, it spits out this error message:

1>..\test.cpp(132): error C2440: 'type cast' : cannot convert from 'unsigned char [50]' to 'void (__cdecl *)(void)'
1>          There is no context in which this conversion is possible

Anyone know why this is so?

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try (*(void(*)())&b[0])(). –  Niklas B. Mar 6 '12 at 22:59
    
Even if you get this to work somehow, it's a very bad idea. –  Mark Ransom Mar 6 '12 at 23:04
    
Or: reinterpret_cast<void(*)()>(static_cast<char*>(b))(). –  Kerrek SB Mar 6 '12 at 23:04
    
@NiklasB. (*(void(*)())&b[0])() crashes at runtime. First, &b[0] is the same as b. Second, the extra * at the beginning dereferences the function pointer; I assume that it then tries to interpret the shellcode as an address. –  user49164 Mar 6 '12 at 23:24
    
The wonder isn't that it crashes in Visual C++, the wonder is that it works in gcc. And what exactly do you mean by "shellcode"? –  Mark Ransom Mar 6 '12 at 23:35
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2 Answers

up vote 4 down vote accepted

A proper debugger will tell you what's going wrong. I can only guess that your code is causing an access violation because the buffer you want to jump to is not executable.

Probably you're on a default-DEP-enabled system like Vista or 7, so you have to make sure that your shellcode is executable. To do that, first use VirtualAlloc to allocate a new, executable buffer and copy your shellcode into it, then execute it:

void *exec = VirtualAlloc(0, sizeof b, MEM_COMMIT, PAGE_EXECUTE_READWRITE);
memcpy(exec, b, sizeof b);
((void(*)())exec)();

By the way, you don't need to null-terminate the shellcode (C++ will terminate the string literal automatically for you, but this is not necessary). You also don't need to specify a size:

unsigned char b[] = "\xcc";
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Thank you - this works properly. Didn't know that there was a special allocation function for executing stuff. –  user49164 Mar 6 '12 at 23:53
    
@user49164: To increase the difficulty of exploiting stack- and heap-based buffer overflows, DEP enforces the obedience of execution permissions on memory pages. This prevents the immediate execution of data on the stack or heap. VirtualAlloc is not a special allocation function for executing stuff, it's the general allocation function (which happens to take as an argument the desired access permissions of the allocated memory). –  Niklas B. Mar 7 '12 at 0:00
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The typical way to reinterpret data as a different type is by copying the binary representation:

void (*fp)();
unsigned char buf[50];
char const * p = reinterpret_cast<char const *>(&buf);

std::copy(p, p + sizeof(char const *), reinterpret_cast<char*>(&fp));

// now fp contains the same value as &buf

fp();  // call

This avoids undefined behaviour caused by aliasing and alignment violations.

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The OP is trying to reinterpret a pointer to the buffer as a function pointer, in order to execute the contents as code. Your version overwrites the function pointer with some of the buffer contents - the result is certainly not a valid pointer. You'll need to define a pointer to buf, then copy the value of that. –  Mike Seymour Mar 6 '12 at 23:17
    
confirmed. This crashes at runtime. –  user49164 Mar 6 '12 at 23:25
    
@user49164: Yes, Mike is right. Sorry about that. Fixed. –  Kerrek SB Mar 6 '12 at 23:34
    
This seems like it should work but it crashes - perhaps it's the same DEP problem? –  user49164 Mar 6 '12 at 23:48
    
Even in the edited form, this will only copy sizeof(void*) bytes. –  Niklas B. Mar 6 '12 at 23:52
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