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I'm trying to figure out what the following code in C does?

((void(*)())buf)();

where 'buf' is a char array.

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5  
Look for a program called "cdecl". Download it. Paste the declaration into it. Be enlightened. –  Paul Tomblin Nov 11 '09 at 14:37
    
@Paul: I shall try that and hope that it does not kill my machine! –  Tony The Lion Nov 11 '09 at 14:47
1  
This code might reasonably appear in a JIT, or in the OS in a dynamic linker/loader. As others have said, it's scary stuff, but only if you've encountered it in a typical application. In its proper place, it's not scary stuff, just difficult stuff. –  Steve Jessop Nov 11 '09 at 15:54

10 Answers 10

up vote 21 down vote accepted

Let's take it one step at a time.

void(*)()

This is a pointer to a function that takes unspecified arguments and has no return value.

(void(*)())buf

simply casts buf to this function pointer type. Finally,

((void(*)())buf)();

calls this function.

So the entire statement is "interpret buf as a pointer to a void function without arguments, and call that function."

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3  
Casting a character buffer into a function and calling it is evil. It's either an attempt at self modifying code, or it's a malicious intent to do some sort of exploit. Either way, avoid it at all costs. –  Paul Tomblin Nov 11 '09 at 14:41
    
Correct me if I'm wrong, but isn't it the value of the pointer (the address of the array) that is treated as a function, not the contents of the array? "interpret the value in buf" sounds a little bit like you're saying the contents are interpreted as a pointer to a function. –  Nick Meyer Nov 11 '09 at 14:43
3  
-1 (not really): takes unspecified arguments in C –  pmg Nov 11 '09 at 14:43
4  
Note that C makes no guarantee that a data pointer has the same size as a function pointer. –  David Nordvall Nov 11 '09 at 14:53
4  
@vonolsson: Quite aside from pointer size, C makes no guarantee that memory allocated on either the stack or the heap is executable. This code should only appear in a JIT or equivalent, and necessarily is platform-specific. Assuming that buf has just been filled with machine instructions, the line before the quoted cast-and-call should probably be some kind of platform-specific operation to flush the icache. –  Steve Jessop Nov 11 '09 at 15:45

It casts buf to a function pointer of type void(*)() (A function returning nothing/void and taking unspecified arguments) and calls it.

The ANSI standard does not really allow the casting of normal data pointers to function pointers, but your platform may allow it.

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How come you can cast an array to a function pointer?? Is there some article that explains it? –  Tony The Lion Nov 11 '09 at 14:37
    
A pointer is just a collection of bytes like any other value (which can thus be presented in C as an array of chars). You'll probably find that elsewhere in the program the reverse of this was done: char *buf = (char *)function; or something similar. –  Wernsey Nov 11 '09 at 14:42
    
You can do this because it's C -- you can do whatever you want. It's a terrible idea, but you can do it. –  Clyde Nov 11 '09 at 14:43
1  
What I'm saying is that it is not guaranteed to work. It is undefined behaviour in ANSI: On a Harvard architecture your program memory and data memory is physically separate, so a cast from a char* to a void(*)() does not make sense. –  Wernsey Nov 11 '09 at 14:51
    
Even on a von Neumann architecture, if segmentation is being used then a data pointer and a function pointer with the same value might point to different memory (the MS-DOS "Small" memory model is a real example of this). –  caf Nov 11 '09 at 21:30

I would guess that in many circumstances, it crashes the machine. Otherwise, it treats the array as a pointer to a function that returns void and invokes it.

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It casts buf into a function pointer, that takes unspecified arguments, and calls it.

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1  
-1 (not really): takes unspecified arguments in C –  pmg Nov 11 '09 at 14:43
    
@pmg, thanks. I edited by answer. –  Nick Dandoulakis Nov 11 '09 at 14:55

This casts buf to the type void (*)(), a pointer to a function that takes unspecified parameters and returns nothing. Then it calls the function at that address (the two rightmost parentheses).

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-1 (not really): takes unspecified arguments in C –  pmg Nov 11 '09 at 14:44
    
@pmg, good point. –  Nick Meyer Nov 11 '09 at 14:45

calls a function pointer. the function has no arguments.

Function Pointer - Wikipedia

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1  
-1 (not really): the function has unspecified arguments in C –  pmg Nov 11 '09 at 14:45
    
The function has (is given) no arguments. The function type has unspecified parameters. –  Steve Jessop Nov 11 '09 at 15:50
    
Granted, given the other answers I'll leave the post as it is. –  segy Nov 11 '09 at 17:17
((void(*)())buf)();
 \------------/         cast `buf` to
 \---------/            type: pointer to function accepting a fixed but
                              unspecified number of arguments and
                              returning void
\----------------/      and call that "function"
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+1 You are correct about the unspecified number of parameters. If you had clarified with an example, you'd probably have gotten more appreciation for your insight :) –  Andomar Nov 11 '09 at 14:57

You might find "expert c programming" a good read - unpacking this kind of thing is in one of the chapters, if I remember right. It's a long time since I read it, but I remember thinking it was worth the effort at the time. http://www.amazon.com/Expert-Programming-Peter-van-Linden/dp/0131774298

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I tend to use the "cdecl" command when I come across a mind boggling declaration. Example:

[me@machine]$ cdecl
Type `help' or `?' for help
cdecl> explain (void(*)())buf
cast buf into pointer to function returning void

Although there are cases where I do wish that there's a tool out there that explains the output of "cdecl" :/

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There is an online version of the 'cdecl' tool that lsc mentioned that you might find useful : http://www.cdecl.org/

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