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I have looked up how to pass an enumeration in a function, but that method doesn't work when both the function and enumeration are declared in a structure. Here is my code :

test_setup.h:

     1 #ifndef TEST_SETUP_H_
     2 #define TEST_SETUP_H_
     3 #include <stdio.h>
     4 #include <stdlib.h>
     5 
     6 
     7 typedef struct _test_setup {
     8 
     9   int *partner;            
    10   int *send_first;         
    11   double *results;         
    12 
    13   enum { CHIP_WIDE, NODE_WIDE, SYSTEM_WIDE } SomeMatches;
    14   void match_partners(SomeMatches match);
    15 
    16 } test_setup;              
    17 
    18 #endif

test_setup.c :

     1 #include "../includes/test_setup.h"
     2 
     3 void match_partners(SomeMatches match) { 
     4   if (match == CHIP_WIDE) {
     5 
     6   }
     7   else if (match == NODE_WIDE) {
     8 
     9   }
    10   else if (match == SYSTEM_WIDE) {
    11 
    12   }
    13   else {
    14 
    15   }
    16 }`

Error:

    In file included from src/test_setup.c:1:
    src/../includes/test_setup.h:14: error: expected ‘)’ before ‘match’
    src/../includes/test_setup.h:16: warning: no semicolon at end of struct or union
    src/test_setup.c:3: error: expected ‘)’ before ‘match’
    make: *** [setup.o] Error 1

I have tried every combination of declaring an enumeration and using it in the function parameters, but nothing has worked. Any ideas would be much appreciated. I am compiling with mpicc (because the rest of the program uses MPI functions) but I have tried with GNU GCC and I get the same warnings/errors.

share|improve this question
    
I don't believe you can create an enum inside of a structure as far as I know. I could be wrong but in all my years of programming in C I've never seen it done that way. –  Jesus Ramos Jun 23 '11 at 21:13
    
Hmmm, okay thanks Ramos. I'll see if anyone else comes up with anything. It's not the end of the world if the enum isn't inside the struct, but it would be nice ;) –  Alex Brooks Jun 23 '11 at 21:15
2  
Is this supposed to be C or C++ ? In your question you mention test_setup.cpp but the error message says test_setup.c and the question is tagged as c. (You can only put enums and functions inside a struct in C++.) –  Paul R Jun 23 '11 at 21:16
    
@Paul : Oops! My mistake Paul! I'm a natural c++ programmer, so thats my default, but this is infact in C - fixed –  Alex Brooks Jun 23 '11 at 21:18
    
I guess I was right since I believed this was C since the tag in the question was for C but you meant C++, I'll see if I can correct that for you. –  Jesus Ramos Jun 23 '11 at 21:18
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4 Answers

up vote 4 down vote accepted

For C

If you truly want C, then you simply can't do any of this.

  • You can't define a member function in a struct
  • You can't define a named enumeration nested in a struct

For C++

Use the scope-resolution operator ::

#include<iostream>

struct Test
{
  enum SomeEnum { TEST1, TEST2, TEST3 };
  void SomeFunction(SomeEnum e);
};

void Test::SomeFunction(Test::SomeEnum e)
{
  std::cout << e << "\n";
}

int main(int argc, char* argv[])
{
  Test t;
  t.SomeFunction(Test::TEST1);
  return 0;
}
share|improve this answer
    
I need the function and the enumeration in the same struct, but I will try that –  Alex Brooks Jun 23 '11 at 21:16
    
@Alex: Corrected. –  Merlyn Morgan-Graham Jun 23 '11 at 21:17
    
Well, I guess I'll just scrap the struct then and do it a different way. Thanks everyone for your help! –  Alex Brooks Jun 23 '11 at 21:26
add comment

If you want to do this in C, here are the workarounds:

// define the enumeration at file scope:

typedef enum {CHIP_WIDE, NODE_WIDE, SYSTEM_WIDE} SomeMatches;

// declare a *pointer* to a function in the struct:
typedef struct { 
    int *partner;
    int *send_first;
    double *results;

    void (*match_partners)(SomeMatches match);   
} test_setup;

Define your function as normal:

void match_partners(SomeMatches match)
{
  if (match == CHIP_WIDE) {}
  else if (match == NODE_WIDE) {}
  else if (match == SYSTEM_WIDE) {}
}

Then when you create an instance of the struct, assign the function pointer:

test_setup t;
t.match_partners = match_partners;

You don't need to explicitly dereference the function pointer to call it, so you can execute your function as

t.match_partners(CHIP_WIDE);

although if you want to dereference it explicitly, use

(*t.match_partners)(CHIP_WIDE);

Note that C doesn't have any equivalent to the this pointer; if match_partners depends on information contained in the struct instance, you'll have to explicitly pass that instance as a separate argument:

void match_parthers(SomeMatches matches, test_setup *instance) 
{
}
...
typedef struct {
  ...
  void (*match_partners)(SomeMatches matches, test_setup *instance);
  ...
} test_setup;
...
test_setup t;
t.match_partners = match_partners;
t.match_partners(CHIP_WIDE, &t);

Note that for the struct definition to be legal, we have to pass the instance as a pointer, since the test_setup type isn't complete at that point.

EDIT

That last sentence isn't terribly clear; let me try again. A struct definition cannot refer to an instance of itself, because the struct type isn't complete until the closing }. IOW, the following is not legal:

struct foo
{
  ...
  struct foo bar;
  ...
};

However, a struct can refer to a pointer to another instance of the same type, so the following is legal:

struct foo
{
  ...
  struct foo *bar;
  ...
};

The same logic applies to the function pointer declaration; the instance parameter needs to be declared as test_setup *, since the test_setup type definition isn't complete at that point. As Merlyn points out in the comments, you probably want the instance to be mutable anyway, but the language requires you to use a pointer in that circumstance.

share|improve this answer
    
+1; Also a comment to your last sentence. In something that you'd define like a method, you'd want the instance that you pass to be a pointer, anyway. If it is a mutator function, and you don't pass instance as a pointer, then you are not going to see any changes to your structure's state. –  Merlyn Morgan-Graham Jun 24 '11 at 0:35
1  
@Merlyn: True. My basic point was that for the function declaration in the struct to be legal, you'd have to use a pointer to test_setup, otherwise you'd get a compile-time error. –  John Bode Jun 24 '11 at 13:55
add comment

Your enum does not have a proper name (it doesn't have a tag) and cannot be referenced from distinct points in the code. Try this:

enum SomeMatches { CHIP_WIDE, NODE_WIDE, SYSTEM_WIDE };
struct _test_setup {
     /* ... */
     enum SomeMatches SomeMatches;
     void (*match_partners)(enum SomeMatches match);
     /* ... */
};

Sprinkle typedefs at will, or leave things bare ...

share|improve this answer
add comment

First of all #define TEST_SETUP_H_ goes before #ifndef TEST_SETUP_H_. Otherwise your code will be completely commented out to the compiler.

You don't name a typedef struct like that it goes as such: typedef struct struct_name{ /contents/ };

void match_partners(SomeMatches match) can be void match_partners(void) and use the variable inside the function because with that header file you've made it global and don't need to pass it.

share|improve this answer
    
-1: so little lines, so many erroneous info: the #ifndef / #define method is ok; the usage is typedef *thing* *new name*;; there's no variable defined in the header file –  pmg Jun 23 '11 at 21:26
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