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I have a small program to test passing char* pointers in and out of functions. When I compile with cc, I get warning and errors saying I have conflicting types even though all my variables are char* . Please enlighten

#include <stdio.h>

main()
{
    char* p = NULL;

    foo1(p);
    foo2();
}

void foo1(char* p1)
{
}

char* foo2(void)
{
    char* p2 = NULL;

    return p2;
}

p.c:11: warning: conflicting types for ‘foo1’
p.c:7: warning: previous implicit declaration of ‘foo1’ was here
p.c:15: error: conflicting types for ‘foo2’
p.c:8: error: previous implicit declaration of ‘foo2’ was here
share|improve this question
up vote 16 down vote accepted

You need to prototype your functions before the main() function.

example:

void foo1(char *p1);
char* foo2(void);

int main(.......

Or just put the bodies for those functions above the main function.

share|improve this answer
1  
Thanks, I overlooked that. Confusing error messages though. – Mike May 20 '09 at 1:44
    
Thanks, same problem! This error message also did not obviously point me to the problem either. – user3141592 May 2 at 0:23

As ghills said, to fix the error, move the function definitions above main() or put function prototypes there.

The reason for the error is that when the compiler sees:

foo1(p);
foo2();

before it sees either a declaration or definition of foo1() and foo2(), it assumes the return type of those functions is int. In the early days of C, int was considered to be a reasonable default return type (there was no void type in the earliest versions of C). Nowadays, omitting the return type is considered bad practice and compilers complain about it.

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1  
Not just the return type, but the type of the arguments are assumed to be int as well. This causes problems when (for example) passing pointers to un-prototyped functions, when sizeof(void *) != sizeof(int)... – ephemient May 20 '09 at 3:19
    
@ephemient, the type of the arguments are not assumed to be anything in particular. if there is no declaration, the function is implicitly declared as "extern int name();" (with C89). And more importantly, in C99 it's an error to omit a function declaration or to omit the return type. Arguments are promoted (char->int,float->double,...) and if the promoted types do not match the actual parameter types, then behavior is undefined. – Johannes Schaub - litb May 20 '09 at 9:10
    
@litb: I do remember that (at the very least) passing pointers to unprototyped variadic functions had significant issues in practice. I don't recall the particulars of what ANSI C/C89/C99 specify are, so I'll defer to you on that. – ephemient May 20 '09 at 14:49
    
@ephemient, since the function will be declared as "extern int name();", if the function is actually variadic, like "extern int name(int a, ...);" then undefined behavior will happen. For example, printf will always have to have a prototype declared prior to its call. But calling non-variadic functions without prototype is fine as long as the arguments have the right type in C89 (although this is deprecated). – Johannes Schaub - litb May 20 '09 at 15:39
    
Another problem is passing pointers to a function having a parameter with type void* but no prototype. You have to convert explicitly to void*, since the compiler can't do that for you since it doesn't know the types the arguments should have. – Johannes Schaub - litb May 20 '09 at 15:41

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