Home/ Questions/Q 8789167
In Process

The Archive Base Latest Questions

Editorial Team
  • 0
Asked: 2026-06-13T22:19:37+00:00

I have declared a boost::variant which accepts three types: string , bool and int

  • 0

I have declared a boost::variant which accepts three types: string, bool and int. The following code is showing that my variant accepts const char* and converts it to bool. Is it a normal behavior for boost::variant to accept and convert types not on its list? 

#include <iostream>
#include "boost/variant/variant.hpp"
#include "boost/variant/apply_visitor.hpp"

using namespace std;
using namespace boost;

typedef variant<string, bool, int> MyVariant;

class TestVariant
    : public boost::static_visitor<>
{
public:
    void operator()(string &v) const
    {
        cout << "type: string -> " << v << endl;
    }
    template<typename U>
    void operator()(U &v)const
    {
        cout << "type: other -> " << v << endl;
    }
};

int main(int argc, char **argv) 
{
    MyVariant s1 = "some string";
    apply_visitor(TestVariant(), s1);

    MyVariant s2 = string("some string");
    apply_visitor(TestVariant(), s2);

    return 0;
}

output:

type: other -> 1
type: string -> some string

If I remove the bool type from MyVariant and change it to this:

typedef variant<string, int> MyVariant;

const char* is no more converted to bool. This time it’s converted to string and this is the new output:

type: string -> some string
type: string -> some string

This indicates that variant tries to convert other types first to bool and then to string. If the type conversion is something inevitable and should always happen, is there any way to give conversion to string a higher priority?

Share

Leave an answer

You must login to add an answer.

Need An Account,

1 Answer

  1. Editorial Team

    I don’t think this is anything particularly to do with boost::variant, it’s about which constructor gets selected by overload resolution. The same thing happens with an overloaded function:

    #include <iostream>
#include <string>

void foo(bool) {
    std::cout << "bool\n";
}

void foo(std::string) {
    std::cout << "string\n";
}

int main() {
    foo("hi");
}

    output:

    bool

    I don’t know of a way to change what constructors a Variant has [edit: as James says, you can write another class that uses the Variant in its implementation. Then you can provide a const char* constructor that does the right thing.]

    Maybe you could change the types in the Variant. Another overloading example:

    struct MyBool {
    bool val;
    explicit MyBool(bool val) : val(val) {}
};

void bar(MyBool) {
    std::cout << "bool\n";
}

void bar(const std::string &) {
    std::cout << "string\n";
}

int main() {
    bar("hi");
}

    output:

    string

    Unfortunately now you have to write bar(MyBool(true)) instead of foo(true). Even worse in the case of your variant with string/bool/int, if you just change it to a variant of string/MyBool/int then MyVariant(true) would call the int constructor.

    • 0