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I'm micro-optimizing code for identifying object types. I assume I can use the following for checking whether two objects instantiated in the same module have identical types:

SomeCommonBase& first = ...;
SomeCommonBase& second = ...;
const type_info& firstInfo = typeid( first );
const type_info& secondInfo = typeid( second );

if( &firstInfo == &secondInfo || firstInfo == secondInfo ) {
   //identical types
} else {
   //different types

The logic is that once a type_info reference is returned the object behind that reference is guaranteed to live until the module is unloaded. So once a reference is returned no other object can occupy the same address.

So if addresses match then those are identical type_info objects and identical data types. If the implementation returns different type_info objects for the same type type_info::operator== is invoked and does additional check.

Is that a correct assumption?

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I believe Visual Studio might be doing this for you already. Take care not to be premature... – Bo Persson Aug 11 '11 at 12:42
@Bo Persson: I carefully measured and looks like you're right - the difference is very small, I guess it only saves a function call. Anyway I don't mind changing one tiny piece of code to have a slight speedup everywhere. – sharptooth Aug 12 '11 at 6:46

1 Answer 1

up vote 3 down vote accepted


Equal addresses mean that both pointers refer to the same object in memory. If the pointer is of type type_info*, then obviously it means the objects (i.e first and second in your case) passed to typeid() are of same type. After all, how can two pointers having same address, might refer to the different type_info objects, so as to become different type?

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