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Is there a one-liner that lets me output the current value of an enum?

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6 Answers 6

up vote 20 down vote accepted

As a string, no. As an integer, %d.

Unless you count:

static char*[] enumStrings = { /* filler 0's to get to the first value, */
                               "enum0", "enum1", 
                               /* filler for hole in the middle: ,0 */
                               "enum2", .... };

...

printf("The value is %s\n", enumStrings[thevalue]);

This won't work for something like an enum of bit masks. At that point, you need a hash table or some other more elaborate data structure.

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10  
This (of course) implies that your enum really starts at 0 and is consecutive without "holes". –  unwind Jan 29 '10 at 12:24

I had the same problem.

I had to print the color of the nodes where the color was: enum col { WHITE, GRAY, BLACK }; and the node: typedef struct Node { col color; };

I tried to print node->color with printf("%s\n", node->color); but all I got on the screen was (null)\n.

The answer bmargulies gave almost solved the problem.

So my final solution is:

static char *enumStrings[] = {"WHITE", "GRAY", "BLACK"};
printf("%s\n", enumStrings(node->color));
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Some dude has come up with a smart preprocessor idea in this post

http://stackoverflow.com/questions/147267/easy-way-to-use-variables-of-enum-types-as-string-in-c

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The correct answer to this has already been given: no, you can't give the name of an enum, only it's value.

Nevertheless, just for fun, this will give you an enum and a lookup-table all in one and give you a means of printing it by name:

main.c:

#include "Enum.h"

CreateEnum(
        EnumerationName,
        ENUMValue1,
        ENUMValue2,
        ENUMValue3);

int main(void)
{
    int i;
    EnumerationName EnumInstance = ENUMValue1;

    /* Prints "ENUMValue1" */
    PrintEnumValue(EnumerationName, EnumInstance);

    /* Prints:
     * ENUMValue1
     * ENUMValue2
     * ENUMValue3
     */
    for (i=0;i<3;i++)
    {
        PrintEnumValue(EnumerationName, i);
    }
    return 0;
}

Enum.h:

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

#ifdef NDEBUG
#define CreateEnum(name,...) \
    typedef enum \
    { \
        __VA_ARGS__ \
    } name;
#define PrintEnumValue(name,value)
#else
#define CreateEnum(name,...) \
    typedef enum \
    { \
        __VA_ARGS__ \
    } name; \
    const char Lookup##name[] = \
        #__VA_ARGS__;
#define PrintEnumValue(name, value) print_enum_value(Lookup##name, value)
void print_enum_value(const char *lookup, int value);
#endif

Enum.c

#include "Enum.h"

#ifndef NDEBUG
void print_enum_value(const char *lookup, int value)
{
    char *lookup_copy;
    int lookup_length;
    char *pch;

    lookup_length = strlen(lookup);
    lookup_copy = malloc((1+lookup_length)*sizeof(char));
    strcpy(lookup_copy, lookup);

    pch = strtok(lookup_copy," ,");
    while (pch != NULL)
    {
        if (value == 0)
        {
            printf("%s\n",pch);
            break;
        }
        else
        {
            pch = strtok(NULL, " ,.-");
            value--;
        }
    }

    free(lookup_copy);
}
#endif

Disclaimer: don't do this.

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+1 for Disclaimer –  urzeit Oct 21 '14 at 8:40
enum A { foo, bar } a;
a = foo;
printf( "%d", a );   // see comments below
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3  
Is that cast to int really needed? In C enums are always of type int. –  Maurits Rijk Jan 29 '10 at 12:21
    
Probably not - I'll change it. –  anon Jan 29 '10 at 12:23
    
@Maurits, @Neil, That cast is needed. Enumeration variables are of a distinct type, and are compatible with some integral type being able to store all the values of the enumerators. That's not necessarily type int. (An enumeration variable may be compatible with long, for instance, just fine). printf's %d however wants exactly type int, so a cast is best to do, i think. Only the enumerators (the one in the list in the declaration) are exactly of type int. –  Johannes Schaub - litb Jan 29 '10 at 12:29
    
@Johannes Aren't some standard conversions performed on variadic parameters? –  anon Jan 29 '10 at 12:43
2  
@Maurits, yes. C_ENUM_VALUE is called "enumerator", and in C it has always type int. But a is an enumeration variable, and it has the type of the enumeration. But in C, types can be compatible (which means you can T *t = &some_u if U and T are compatible, among other things). Many rules are stated only in terms of compatibility instead of type equality. An enumeration type is compatible with either char or an signed or unsigned integral type. You don't know, and it's best not to make any assumptions on it. –  Johannes Schaub - litb Jan 29 '10 at 13:44
enum MyEnum
{  A_ENUM_VALUE=0,
   B_ENUM_VALUE,
   C_ENUM_VALUE
};


int main()
{
 printf("My enum Value : %d\n", (int)C_ENUM_VALUE);
 return 0;
}

You have just to cast enum to int !
Output : My enum Value : 2

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2  
enums are ints. –  aib Jan 29 '10 at 12:58
2  
@aib, it's easy to overlook when to cast and when not, though. What do you mean by "enums"? I would always do the cast. In the above the cast is redundant, because it's using the enumerator. But if he had done enum MyEnum c = C_ENUM_VALUE; and then passing c, he would need the cast. See discussion below on @Neil's answer. –  Johannes Schaub - litb Jan 29 '10 at 13:15
    
I see. This is right, then. –  aib Jan 29 '10 at 15:17
    
@Johannes, from my knowledge, you are right. thanks for the clear explanation ! –  Matthieu Jan 29 '10 at 16:15

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