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Is it possible to use a reference as the value in a standard map container in C++?
If not - why not?

Example declaration:

map<int, SomeStruct&> map_num_to_struct;

Example usage:

...
SomeStruct* some_struct = new SomeStruct();
map_num_to_struct[3] = *some_struct;
map_num_to_struct[3].some_field = 14.3;
cout<<some_struct.some_field;
...

I would expect to see 14.3 printed...

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possible duplicate of STL map containing references does not compile, among others –  Kirill V. Lyadvinsky Nov 21 '10 at 17:51
    

5 Answers 5

up vote 10 down vote accepted

No. STL container value types need to be assignable. References are not assignable. (You cannot assign them a different object to reference.)

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Since when do container value types need to be assignable? They need to be copyable. A reference is indeed not "copyable",but your answer is technically wrong. What am I missing? –  Narek Apr 17 '13 at 13:50

No, it's not. You can use pointers as the value type, though.

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I don't think so, references are supposed to be treated like constant pointers to a certain element if I remember correctly. But you could just use pointers to the same effect.

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It's just no fun de-referencing all your iterator values :( –  GWW Nov 21 '10 at 17:51
1  
but then you get to use -> instead of . and it looks cooler (this is definitely a legitimate reason to use pointers) –  rtpg Nov 21 '10 at 17:52
    
@GWW, no problem - you can use boost::inderect_iterator to get "auto-dereferencing". –  Kirill V. Lyadvinsky Nov 21 '10 at 17:53
    
@Kirill that's actually quite useful. I need to stop being lazy and start looking at boost more often. I already use it for a bunch of stuff. @Dasuraga if you are using a vector instead of a map it gets ugly (*it)->do_something(); is not so cool –  GWW Nov 21 '10 at 17:57

No, you can't use references but you can use pointers. You seem to be mixing up both in your example. Try:

map<int, SomeStruct *> map_num_to_struct;
SomeStruct* some_struct = new SomeStruct();
map_num_to_struct[3] = some_struct;
map_num_to_struct[3]->some_field = 14.3;
cout<<some_struct->some_field;
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Value types must be assignable, and references are not.

Anyway you can use a tr1 reference_wrapper.

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OP's talking about value type, not key type. You've got the point though. –  user500944 Nov 21 '10 at 17:59
    
Ooops, I read well, but answered bad, fixing it... –  peoro Nov 21 '10 at 18:05

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