19

How do I randomly select a value for an enum type in C++? I would like to do something like this.

enum my_type(A,B,C,D,E,F,G,h,J,V);
my_type test(rand() % 10);

But this is illegal... there is not an implicit conversion from int to an enum type.

1
  • 2
    static_cast is a good friend in such situations. Jun 8, 2010 at 16:10

3 Answers 3

30

How about:

enum my_type {
    a, b, c, d,
    last
};

void f() {
    my_type test = static_cast<my_type>(rand() % last);
}
6
  • 1
    +1 for less hard-coding, but I recommend the C++ style static_cast.
    – Bill
    Jun 8, 2010 at 16:52
  • 4
    This won't work if the enum values aren't contiguous.
    – einpoklum
    Aug 15, 2016 at 13:44
  • @einpoklum Can you give an example? Oct 17, 2017 at 14:08
  • @SvenvandenBoogaart: a = 1, b = 2, c = 4, d = 16. The rand() will give you invalid values.
    – einpoklum
    Oct 17, 2017 at 18:48
  • ... also, never use rand(), it is considered harmful.
    – einpoklum
    Oct 17, 2017 at 18:49
9

There is no implicit conversion, but an explicit one will work:

my_type test = my_type(rand() % 10);
2
  • Some individual mentioned in the accepted answer that implicit conversion one won't work if the enum values aren't contiguous. Does it also apply to this? Sep 27, 2017 at 6:25
  • @VolkanGüven Yes. This is the same as the accepted answer. Dec 14, 2021 at 3:37
7

Here is how I solved a similar problem recently. I put this in an appropiate .cc file:

static std::random_device rd;
static std::mt19937 gen(rd());

Inside the header that defines the enum:

enum Direction
{
    N,
    E,
    S,
    W
};
static std::vector<Direction> ALL_DIRECTIONS({Direction::N, Direction::E, Direction::S, Direction::W});

And to generate a random direction:

Direction randDir() {
    std::uniform_int_distribution<size_t> dis(0, ALL_DIRECTIONS.size() - 1);
    Direction randomDirection = ALL_DIRECTIONS[dis(gen)];
    return randomDirection;
}

Don't forget to

#include <random>

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