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Is there a simple way to use a typedef based on an if condition?

example:

int depth = someObject->getDepth();

if(depth == 32){
    typedef float cast;
}
else{
     typedef double cast;
 }

 cast *data = (cast)someObject->getData();

thanks

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2  
Runtime typedefs aren't allowed. –  birryree Mar 27 '12 at 18:49

3 Answers 3

up vote 3 down vote accepted

Refactor the implemantation in another function:

template<class T>
void foo(T* data){
  // ...
}

int depth = someObject->getDepth();
if(depth == 32)
  foo(static_cast<float*>(someObject->getData());
else
  foo(static_cast<double*>(someObject->getData());
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No, you cannot do that because a typedef is a static, compile time construct. Indeed the entire type system in C++ is static. You could solve your problem with something like boost::variant<float, double>.

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Functions are as close as you can get

template< class cast>
void do_task(cast* object) {

}

int main() {
    int depth = someObject->getDepth();
    if (depth == 32)
        do_task( static_cast<float*>(someObject->getData()));
    else 
        do_task( static_cast<double*>(someObject->getData()));
}
share|improve this answer
    
You still need a cast there. –  Xeo Mar 27 '12 at 18:54
    
@Xeo: Since he was casting to float and double, I assumed it was something that could implicitly cast to those. It was a silly assumption to make, and also I didn't notice that he sometimes uses getData as a pointer, and sometimes an object. That.... confuses matters. –  Mooing Duck Mar 27 '12 at 18:58
    
in both uses, someObject is a pointer to another object –  Miek Mar 27 '12 at 19:03
    
@Miek: cast *data = (cast)someObject->getData(); You can't cast a float to a float*, no matter what getData returns. –  Mooing Duck Mar 27 '12 at 19:49
    
Oops sorry, my typdefs should have been pointers. I fixed it –  Miek Mar 28 '12 at 22:54

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