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Would you please help me getting back the typename of the original object put into a boost::variant?

I have something like this

typedef boost::variant<macro,module> ref_var;

Is it possible to get back the typename of the original object? In this case (macro or module)

I was trying to get it using

typeid(v).name()

but it gives me weird name that is neither macro nor module:

PN5boost7variantI5macro6moduleNS_6detail7variant5void_ES5_S5_S5_S5_S5_S5_S5_S5_S5_S5_S5_S5_S5_S5_S5_S5_S5_EE

Would you please help?

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This is the name of type mangled by the compiler. What would you like to achieve? Are rev_var and v the same thing? –  Rafał Rawicki Mar 20 '12 at 20:07
    
Hi Rafal, rev_var is the variant type and v is the variable that can either be a macro or a module. –  Binh Van Pham Mar 20 '12 at 20:12

3 Answers 3

up vote 1 down vote accepted

If all you need is to get back the textual representation of the types held in a variant, you can roll your own solution:

const char* ref_var_typename(const ref_var& v) {
    static const char* types[] = { "macro", "module" };
    return types[v.which()];
}
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+1, excellent solution (though you shouldn't take v by value, but rather by const-reference). –  ildjarn Mar 21 '12 at 0:56
    
@ildjarn good point. –  Ferruccio Mar 21 '12 at 1:01
    
Thanks alot Ferruccio and ildjarn, this is a clean solution. –  Binh Van Pham Mar 21 '12 at 2:01

variant::type() returns std::type_info for the contents of the variant. Just don't use this to choose how to act on the variant — this is best done with visitors.

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Hi Cat, I will not do anything on it accept for getting the type name of the variant back. Is there a way to do this? Would you please show me? –  Binh Van Pham Mar 20 '12 at 20:17
1  
@Binh : What do you need that isn't already in the answer? –  ildjarn Mar 20 '12 at 20:20
    
Hi, I use v.type().name() but it gives me error saying v is of non-class type 'ref_var*' –  Binh Van Pham Mar 20 '12 at 20:37
    
@BinhVanPham: Did you put something into the variant? –  Nicol Bolas Mar 20 '12 at 20:38
1  
@Binh : You declared a pointer to a variant<>, so use -> instead of .. This is very fundamental C++ syntax... –  ildjarn Mar 20 '12 at 21:24

There is no way (in the standard) to get the actual C++ typename of any type, whether from a variant or not. The best you can do is get the type_info, but as you see, that is the mangled name, not the actual C++ typename.

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