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New C++ programmer here.

I have the following map definition:

typedef std::map<std::string, Option> MapType;
MapType my_map

Option is a unique class i created. I never actually add the Option class into my map by itself. Instead I am always adding a class that inherits from Option, for example i have a class called IntOption that store an int variable (its all it does) .

Now i have no problem adding IntOption into my map by doing:

    IntOption add;
my_map.insert(std::pair<string, IntOption>("a key here", add));

This works fine because when i do a

my_map["a key here"]

it will return the value "add".

Now my question to you all good people is how can i get the subclass variable out of the return value? I can do the following

my_map["a key here"].getVariableA(); // this is in the base class Option.

but i cannot do

my_map["a key here"].getIntVariable(); //this fails because it doesnt recognize the

// getter because it is NOT in the base class but the class extending Option.

How do i fix this problem?

I have considered typedef std::map MapType;

buy i cannot figure out how to do the dynamic casting nor how to add the pointer to the class into the map.

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1 Answer 1

It won't work the way you have it set up. The map is assuming that it only holds instances of Option, so it will be throwing away any IntOption data you try to send it. You will have to fall back on pointers to the options.

typedef std::map<std::string, Option*> MapType;

my_map["a key here"] = new IntOption();

IntOption *opt = dynamic_cast<IntOption*>( my_map["a key here"]);

Note that you'll have to handle memory management now, and decide when your options will be deallocated. std::auto_ptr might help with that.

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2  
You can't store an auto_ptr in a map (it doesn't satisfy the CopyConstructible requirement). shared_ptr or unique_ptr would be good. –  Alan Stokes Oct 6 '11 at 12:18
    
Problem here is that, if you have multiple derived Option types, dynamic_cast will fail (return null) and you need to know in advance which item is of which type to be successful. –  David Oct 6 '11 at 12:50
    
@David that's correct. I'm guessing it's inherent in the nature of the problem though - the user is trying to store options that can be ints, or strings, or dates, or whatever. How it's used is a business rule. –  Ben Fulton Oct 7 '11 at 13:17

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