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

I was playing around with labels as values and ended up with this code.

int foo = 0;
goto *foo;

My C/C++ experience tells me *foo means dereference foo and that this won't compile because foo isn't a pointer. But it does compile. What does this actually do?

gcc (Ubuntu 4.9.2-0ubuntu1~12.04) 4.9.2, if important.

share|improve this question
1  
It's a known bug. See my updated answer. – Keith Thompson Feb 6 at 4:31
up vote 19 down vote accepted

This is a known bug in gcc.

gcc has a documented extension that permits a statement of the form

goto *ptr;

where ptr can be any expression of type void*. As part of this extension, applying a unary && to a label name yields the address of the label, of type void*.

In your example:

int foo = 0;
goto *foo;

foo clearly is of type int, not of type void*. An int value can be converted to void*, but only with an explicit cast (except in the special case of a null pointer constant, which does not apply here).

The expression *foo by itself is correctly diagnosed as an error. And this:

goto *42;

compiles without error (the generated machine code appears to be a jump to address 42, if I'm reading the assembly code correctly).

A quick experiment indicates that gcc generates the same assembly code for

goto *42;

as it does for

goto *(void*)42;

The latter is a correct use of the documented extension, and it's what you should probably if, for some reason, you want to jump to address 42.

I've submitted a bug report -- which was quickly closed as a duplicate of this bug report, submitted in 2007.

share|improve this answer
    
is this the same as jump to foo address? – Ælex Feb 6 at 3:44
1  
@Ælex: It doesn't jump to the address of foo; it jumps to the address contained in foo. – Keith Thompson Feb 6 at 3:48
    
Dereferencing a void* isn't massively more "correct" than dereferencing an int... – Leushenko Feb 6 at 4:19
1  
@Leushenko: goto *expr, where expr is of type void*, is a valid use of a documented gcc extension. It's not valid in ISO C, but the standard explicitly permits extensions. – Keith Thompson Feb 6 at 4:22
1  
@Leushenko Ignoring the goto * extension, dereferencing a void* is perfectly valid in C. It's useless in strictly conforming programs, as the only thing you can do with the result is discard the result, or starting with C99, immediately take its address again, but there's no rule saying it's invalid. It's different in C++. C++ makes dereferencing void * invalid by restricting * to pointer-to-object and pointer-to-function types. The question is tagged both C and C++. I don't think it should be. This is the sort of confusion it causes. – hvd Feb 6 at 12:19

Seems to be a GCC bug. Here is a clang output as a comparison. It seems that these are the errors we should expect.

$ cc -v
Apple LLVM version 7.0.2 (clang-700.1.81)
Target: x86_64-apple-darwin15.3.0
Thread model: posix
$ cc goto.c 
goto.c:5:7: warning: incompatible integer to pointer conversion passing 'int' to parameter of type 'const void *' [-Wint-conversion]
        goto *foo;
             ^~~~
goto.c:5:2: error: indirect goto in function with no address-of-label expressions
        goto *foo;
        ^
1 warning and 1 error generated.

goto.c source code:

int main(int argc, char const *argv[])
{
    int foo = 0;
    goto *foo;
}
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.