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I have the following code.

typedef pid_t (*getpidType)(void);

pid_t getpid(void)
{
    printf("Hello, getpid!\n");
    getpidType* f = (getpidType*)dlsym(RTLD_NEXT, "getpid");
    return f(); // <-- Problem here
}

The compiler complains that called object ‘f’ is not a function. What is going on here? Haven't I declared and used the function pointer f in a correct way?

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1 Answer 1

up vote 7 down vote accepted

getpidType is already a pointer, so drop the *:

getpidType f = (getpidType)dlsym(RTLD_NEXT, "getpid");

(Even better, drop the explicit cast as well:

getpidType f = dlsym(RTLD_NEXT, "getpid");

Since dlsym returns void* and void* is implicitly convertible to any other pointer type, the cast is not needed. It may even hide bugs.)

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Yes you are right void* is convertible to any type in C, but not in C++, so for portability I keep it. –  user1018562 May 22 '12 at 13:18
    
@user1018562, when you write in C, write in C! There is no portability issue. You can link C-compiled and C++-compiled files together. –  Shahbaz May 22 '12 at 13:22
    
@user1018562: that's only an issue when you want to write in the subset of C and C++, which is an art form in itself and requires intimate knowledge of both languages. Shahbaz is right, compatibility at link time is a lot easier to establish. –  larsmans May 22 '12 at 13:34

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