Stack Overflow is a community of 4.7 million programmers, just like you, helping each other.

Join them; it only takes a minute:

Sign up
Join the Stack Overflow community to:
  1. Ask programming questions
  2. Answer and help your peers
  3. Get recognized for your expertise

in C++, I can easily create a function pointer by taking the address of a member function. However, is it possible to change the address of that local function?

I.e. say I have funcA() and funcB() in the same class, defined differently. I'm looking to change the address of funcA() to that of funcB(), such that at run time calling funcA() actually results in a call to funcB(). I know this is ugly, but I need to do this, thanks!

EDIT----------

Background on what I'm trying to do:

I'm hoping to implement unit tests for an existing code base, some of the methods in the base class which all of my modules are inheriting from are non-virtual. I'm not allowed to edit any production code. I can fiddle with the build process and substitute in a base class with the relevant methods set to virtual but I thought I'd rather use a hack like this (which I thought was possible).

Also, I'm interested in the topic out of technical curiosity, as through the process of trying to hack around this problem I'm learning quite a bit about how things such as code generation & function look-up work under the hood, which I haven't had a chance to learn in school having just finished 2nd year of university. I'm not sure as to I'll ever be taught such things in school as I'm in a computer engineering program rather than CS.

Back on topic The the method funcA() and funcB() do indeed have the same signature, so the problem is that I can only get the address of a function using the & operator? Would I be correct in saying that I can't change the address of the function, or swap out the contents at that address without corrupting portions of memory? Would DLL injection be a good approach for a situation like this if the functions are exported to a dll?

share|improve this question
13  
No, you don't need to do this. – GManNickG Mar 2 '10 at 22:07
2  
I don't mind you asking, but this is so "darwin award" category that some explanation would be in order why you "need to do this". And who knows, that explanation may trigger some people to come with alternative solutions for the hack you're proposing. – user180326 Mar 2 '10 at 22:14
    
Nor should you do this. No matter how much you think you should. – John Dibling Mar 2 '10 at 22:16
1  
This is a perfectly valid question. Just because the answer is "no, nor should you" does not mean the question should be downvoted, people. – John Dibling Mar 2 '10 at 22:24
1  
@John Dibling: What got to me was the statement that he needed to do that. No intimation of what he actually wanted to accomplish, no way to answer the question intelligently. – David Thornley Mar 2 '10 at 22:38
up vote 4 down vote accepted

No. Functions are compiled into the executable, and their address is fixed throughout the life-time of the program.

The closest thing is virtual functions. Give us an example of what you're trying to accomplish, I promise there's a better way.

share|improve this answer
    
it is possible using codecave on the "code segment" but it will be different field than "formal" programming. also, it will require both function to have similar prototype. – YeenFei Mar 3 '10 at 1:02
    
Thanks, that was an interesting read! – wk1989 Mar 3 '10 at 7:21

It cannot be done the way you describe it. The only way to change the target for a statically bound call is by modifying the actual executable code of your program. C++ language has no features that could accomplish that.

If you want function calls to be resolved at run-time you have to either use explicitly indirect calls (call through function pointers), or use language features that are based on run-time call resolution (like virtual functions), or you can use plain branching with good-old if or switch. Which is more appropriate in your case depends on your specific problem.

share|improve this answer

Technically it might be possible for virtual functions by modifying the vtable of the type, but you most certainly cannot do it without violating the standard (causing Undefined Behavior) and it would require knowledge of how your specific compiler handles vtables.

For other functions it is not possible because the addresses of the functions are directly written to program code, which is generally on a read-only memory area.

share|improve this answer

What you want is a pointer to a function, you can point it to FuncA or FuncB assuming that they have the same signature.

share|improve this answer
    
I do have the pointers, but the actual code uses function calls and I can't touch that. – wk1989 Mar 3 '10 at 7:34
    
wk1989, the fact that you cannot change some of the code is a very important point that should have been in the original question. Live and learn. – KPexEA Mar 3 '10 at 18:01

I am fairly sure this is impossible in pure C++. C++ is not a dynamic language.

share|improve this answer

You cannot do what you want to do directly. However, you can achieve a similar result with some slightly different criteria, using something you are already familiar with -- function pointers. Consider:

// This type could be whatever you need, including a member function pointer type.
typedef void (*FunctionPointer)();

struct T {
   FunctionPointer Function;
};

Now you can set the Function member on any given T instance, and call it. This is about as close as you can reasonably get, and I presume that since you are already aware of function pointers you're already aware of this solution.

Why don't you edit your question with a more complete description of the problem you're trying to solve? As it stands it really sounds like you're trying to do something horrible.

share|improve this answer

Its simple!

For

at run time calling funcA() actually results in a call to funcB().

write funcA() similar to following:

int funcA( int a, int b) {
  return funcB( a, b );
}

:-)

share|improve this answer

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.