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I'm trying to use malloc() and sizeof() to create a struct on the heap. Here is my code:

#include <stdio.h>
#include <stdlib.h>
#include <string.h>

struct Employee
{
    char first[21];
    char last[21];
    char title[21];
    int salary;
};


struct Employee* createEmployee(char* first, char* last, char* title, int salary) // Creates a struct Employee object on the heap.
{
    struct Employee* p = malloc(sizeof(struct Employee)); 

    if (p != NULL)
    {
        strcpy(p->first, first);
        strcpy(p->last, last);
        strcpy(p->title, title);
        p->salary, salary;
    }
    return p;

}

No my compiler (Visual C++) tells me for the line struct Employee* p = malloc(sizeof(struct Employee)); that the type "void *" can't be converted to the type "Employee *". I don't know what is wrong here. Seems as if struct Employee is a void but i don't understand why...

share|improve this question
2  
Just as a general tip, when the compiler tells you that a type can't be converted to another type, it usually means that the right hand side of your assignment is not the same type as your left hand side, not the other way around. So, that error is telling you that your right hand side is the wrong type. That should help you narrow it down in the future. – Chad La Guardia Dec 23 '10 at 15:04
1  
Apart from the allocation etc issue, note that p->salary, salary; is probably not what you want. – ndim Dec 23 '10 at 15:19
    
@claguardia: That's decent advice in general, but irrelevant to OP's problem. OP's problem is basically the C,C++ equivalent of writing #!/usr/bin/perl at the top of a Bourne shell script. – R.. Dec 23 '10 at 15:22
    
How exactly is explaining a compile error irrelavent? – Chad La Guardia Dec 23 '10 at 15:28
1  
LEARN WHAT Language you are using. Not C++. If you are only going to write C have the wits to use the C compiler to build it. Then you would not have had these problems. Or a better solution (learn how to use C++ and create a constructor). – Loki Astari Dec 23 '10 at 17:44
up vote 9 down vote accepted

In C++ (since you are using Visual C++ to compile), you have to explicitly cast the pointer returned by malloc:

struct Employee* p = (struct Employee*) malloc(sizeof(struct Employee));
share|improve this answer
    
Man, beat me by 5 seconds! – Fred Larson Dec 23 '10 at 14:58
    
Don't tell me Visual C++ isn't capable of compiling C code as C code? – aschepler Dec 23 '10 at 15:00
    
Thank you very much. That works. I will accept your answer when the timer is ready. – Ordo Dec 23 '10 at 15:01
    
@aschepler: It's capable of doing it but it doesn't do it by default unless the file has a .c extension. – Billy ONeal Dec 23 '10 at 15:01
    
@schepler It is, but I forget the flags/settings off the top of my head. – user470379 Dec 23 '10 at 15:02

Best practices for using malloc:

struct Employee *p = malloc(sizeof *p); 

You also need to fix your IDE/compiler to tell it you're writing C and not C++, since it's too broken to figure this out on its own...

Since some people seem unhappy with this answer (and with my disapproval of the other answers), I think I should explain why working around the problem is not good.

In C, casting the return value of malloc is harmful because it hides warnings if you forgot to include stdlib.h or otherwise prototype malloc. It also makes your code harder to maintain; all the answers with a cast require making 3 changes if the type of p needs to be changed, while my answer requires a change only in one place. Finally, new C programmers should not get in the bad habit of using casts whenever they see a compiler warning or error. This usually just buries bugs. Correct code almost never requires casts, and their use should be seen as a code smell

share|improve this answer
    
To the downvoter, "retaliating" for -1 on a bad answer you gave is really mature... – R.. Dec 23 '10 at 15:31
    
The downvoter is me, and the downvote was partly on the (lack of) merit of your answer and partly because I believe that downvoting all of the existing answers (including mine) was really bad form. Care to discuss? – Jon Dec 23 '10 at 15:40
2  
When all the existing answers are repeats of the same thing, and all are ignoring OP's real problem (compiling as the wrong language) and giving an ugly workaround, what would be better than downvoting them all? Just downvoting the first one? Minding my own business? – R.. Dec 23 '10 at 15:44
3  
Very well. I've fixed the tagging in the question, but I still consider the accepted answer bad advice. If you're writing C++ you should use new, not malloc. If you're writing C, you should never write casts like this. – R.. Dec 23 '10 at 16:06
1  
"A C++ question should not mention malloc. – R.." – user470379 Dec 23 '10 at 17:52

If you are compiling as C code, that line should be valid.

But in C++, the conversion from void* to Employee* is invalid.

Is the file named something.c? Are there compiler options you can change?

If you must use a C++ compiler, you can fix this by adding an explicit cast:

struct Employee* p = (struct Employee*)malloc(sizeof(struct Employee));
share|improve this answer

You should cast the result of malloc to the type of pointer you are using.

struct Employee* p = (struct Employee*)malloc(sizeof(struct Employee)); 

malloc will always return a chunck of memory as a (void *). Its up to you to tell the compiler what type of chunck that memory is.

share|improve this answer
    
No, OP should either fix the settings of his IDE/compiler or fix his question to tag it C++ rather than C, if he really intends to use C++ (but why would you use malloc in C++?!) – R.. Dec 23 '10 at 15:12
    
Its not a settings issue. If his file is .c, then it will compile with the c compiler. If its a .cpp, it will compile with the c++ compiler. Its valid to write c and compile it with a c++ compiler, but types are a enforced just a bit more by the compiler. – Chad La Guardia Dec 23 '10 at 15:20
    
It is not valid to write C and compile it with a C++ compiler. It's only valid to write a particular subset of C (the intersection of C and C++) if you're going to do that, and it will require you to write very bad C code. – R.. Dec 23 '10 at 15:35
    
Not true. A c++ compiler is specified such that it is supposed to be able to compile all c. The fact that some c++ compilers do not properly compile c is the fault of the implementation. – Chad La Guardia Dec 23 '10 at 16:16

The value returned from malloc is a void*. The value you want to assign to p must be of type Employee*. In C++ (in contrast to C), there is no implicit conversion from void* to another pointer type. Therefore, you need to perform the conversion explicitly:

struct Employee* p = reinterpret_cast<Employee*>(malloc(sizeof(struct Employee))); 
share|improve this answer
    
Question is tagged C, not C++ – R.. Dec 23 '10 at 15:31
    
@R..: Is there a good reason to assume that the OP meant to confuse us by using VC++ (and mentioning it explicitly) rather than that they simply mistagged the question, other than "my assumption is better than your assumption"? I would think that by accepting the answer he did, he kind of agrees that this is a C++ question. – Jon Dec 23 '10 at 15:36
1  
A C++ question should not mention malloc. – R.. Dec 23 '10 at 16:15

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