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Assuming that I have this:

enum { A = 0x2E, B = 0x23, C = 0x40 }

it's possible check if x is defined into enum?

I'm doing it manually: int isdef = (x == A || x == B || x == C); But I want to something more dynamic. GCC-extensions are welcome too.

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1  
no, you probably need to use something else like a set<> –  Claptrap Jun 14 '12 at 20:44
    
@AndersK: what's a set<>? –  Jack Jun 15 '12 at 14:51
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4 Answers 4

up vote 6 down vote accepted

This is kind of a modified version of your question, but depending on what you're doing, something like this might work:

enum {A,B,C};
const int E[] = {0x2E,0x23,0x40};
// Or:
// enum { A = 0x2E, B = 0x23, C = 0x40 };
// const int E[] = {A,B,C};

int isEnum(int x)
{
    for(int i=0; i<(sizeof(E)/sizeof(*E)); i++)
    {
        if(E[i] == x){ return 1; }
    }
    return 0;
}

int main(void)
{
    printf("Value of A: 0x%02x\n", E[A]);
    // Or:   
    // printf("Value of A: 0x%02x\n", A);

    printf("isEnum(0x2e): %s\n", isEnum(0x2e) ? "true" : "false");
    printf("isEnum(0x2f): %s\n", isEnum(0x2f) ? "true" : "false");
}

which outputs

Value of A: 0x2e
isEnum(0x2e): true
isEnum(0x2f): false

EDIT: TJD beat me to it, and his suggestion of using a sorted array and doing binary search would decrease your search time from n to log(n).

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1  
+1. I would also make x-macro to generate both enum and E[] - no need to manually synchronize between these two data structures. –  Agnius Vasiliauskas Sep 11 '12 at 5:42
1  
This has a bug: sizeof(E) is the number of bytes, not the number of elements. You forgot to divide by sizeof(*E). –  Jens Apr 10 at 18:10
    
@Jens, you're absolutely correct -- thanks, fixed. –  jedwards Apr 11 at 0:52
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Not to the best of my knowledge. An enum in C is just a cleaner alternative to a series of

#define A 0x2E

statements.

If the enum is large and its values happen to be continuous, declare min/max constants and compare to those:

enum { E_MIN = 0x2E, A = 0x2E, B = 0x23, C = 0x40 ..., E_MAX=0x100};

if(x >= MIN && x <= MAX)
    ItsInEnum();
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3  
If values are discontinuous, you can put them in a constant array (sorted) and do a quick binary search to find if it's in there. –  TJD Jun 14 '12 at 20:43
    
Since enums are compile-time constants, you could even design a perfect hash function and find the answer in constant time. –  Jens Jun 14 '12 at 21:49
    
Hash calculation time might be comparable to that of comparison by hand. For enums, large-N behavior is not that relevant IMHO. –  Seva Alekseyev Jun 14 '12 at 22:32
    
Thanks for your answer! E_MIN and E_MAX is a very good solution; but the values aren't continuos, so I can't use it. –  Jack Jun 15 '12 at 14:46
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An enum is essentially the same thing as using macros to define constants, except that the enum wraps a set of associated constants up into a data type. This makes your code more self-documenting, but doesn't really provide any additional functionality.

If you venture outside the realm of standard C, some compilers can do extra things with enum that they can't do with macros. Some debuggers will map enum variables back to their name instead of showing their value. Also, some compilers provide the ability to add run-time checks for things like out-of-bounds enum values. This is essentially the same as the code you show, only the compiler adds it automatically. With GreenHills' C compiler, this feature is enabled with the -check=assignbound compiler option. I'm not sure if gcc has something like this built-in or not. What compiler are you using?

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To expand on the accepted answer, use X-macros to build your enum and array from the same data using the preprocessor.

/* Only need to define values here. */
#define ENUM_VALUES \
    X(A, 0x2E)  \
    X(B, 0x23)  \
    X(C, 0x40)

/* Preprocessor builds enum for you */
#define X(a, b) a = b,
    enum {
        ENUM_VALUES
    };
#undef X

/* Preprocessor builds array for you */
#define X(a, b) a,
    const int E[] = {
        ENUM_VALUES
    };
#undef X

/* Copied from accepted answer */
int isEnum(int x)
{
    for(int i=0; i<sizeof(E);i++)
    {
        if(E[i] == x){ return 1; }
    }
    return 0;
}
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