Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I wanted to check that typeid is evaluated at compile time when used with a type name (ie typeid(int), typeid(std::string)...).

To do so, I repeated in a loop the comparison of two typeid calls, and compiled it with optimizations enabled, in order to see if the compiler simplified the loop (by looking at the execution time which is 1us when it simplifies instead of 160ms when it does not).

And I get strange results, because sometimes the compiler simplifies the code, and sometimes it does not. I use g++ (I tried different 4.x versions), and here is the program:

#include <iostream>
#include <typeinfo>
#include <time.h>

class DisplayData {};

class RobotDisplay: public DisplayData {};
class SensorDisplay: public DisplayData {};

class RobotQt {};
class SensorQt {};

timespec tp1, tp2;
const int n = 1000000000;

int main()
{
    int avg = 0;
    clock_gettime(CLOCK_REALTIME, &tp1);
    for(int i = 0; i < n; ++i)
    {
//      if (typeid(RobotQt) == typeid(RobotDisplay))    // (1) compile time
//      if (typeid(SensorQt) == typeid(SensorDisplay))  // (2) compile time
        if (typeid(RobotQt) == typeid(RobotDisplay) || 
            typeid(SensorQt) == typeid(SensorDisplay))    // (3) not compile time ???!!!
            avg++;
        else
            avg--;
    }
    clock_gettime(CLOCK_REALTIME, &tp2);
    std::cout << "time (" << avg << "): " << 
        (tp2.tv_sec-tp1.tv_sec)*1000000000+(tp2.tv_nsec-tp1.tv_nsec) << 
        " ns" << std::endl;
}

The conditions in which this problem appear are not clear, but:
- if there is no inheritance involved, no problem (always compile time)
- if I do only one comparison, no problem
- the problem only appears only with a disjunction of comparisons if all the terms are false

So is there something I didn't get with how typeid works (is it always supposed to be evaluated at compilation time when used with type names?) or may this be a gcc bug in evaluation or optimization?

About the context, I tracked down the problem to this very simplified example, but my goal is to use typeid with template types (as partial function template specialization is not possible).

Thanks for your help!

share|improve this question
    
Are you basing your conclusion entirely on how long it takes your code to execute, or do you have more definitive proof of what the compiler is actually outputting? –  Dennis Zickefoose May 20 '10 at 20:38
    
Can you design your program without the need for typeid? A program that compares object types is considered a poorly formed OO program. –  Thomas Matthews May 20 '10 at 20:49
    
Dennis> Yes, but I just checked the asm code and I can confirm that in one case there are 6 instructions with no jump between the two clock_gettime calls, and in the other case 15 instructions with 2 jumps including an obvious loop. –  cyril42e May 20 '10 at 21:10
    
You have verified that the compiler is not performing what you consider an obvious optimization. But that says nothing at all about whether or not the compiler is performing the typeid expression at compile time or not. –  Dennis Zickefoose May 20 '10 at 21:15
    
Thomas> I know that instead of type comparison, I should do template specialization. But in my case it would lead to a lot of code duplication and/or increased complexity. I just want to disable some parts of the code if some classes haven't been implemented, and type comparison really is the more readable and simple solution, which I don't believe to be so nasty as long as it is done at compile time... –  cyril42e May 20 '10 at 21:25

3 Answers 3

up vote 7 down vote accepted

I don't really know the answer to your question but if you use is_same<> metafunction instead of typeid you might get more desirable results. Even if you don't have access to this metafunction, it is very easy to write one:


template < typename T1, typename T2 >
struct is_same
{
  enum { value = false }; // is_same represents a bool.
  typedef is_same<T1,T2> type; // to qualify as a metafunction.
};

template < typename T >
struct is_same
{
  enum { value = true };
  typedef is_same<T,T> type;
};
share|improve this answer
    
Wonderful! However I had to modify a little bit the function in order to work: [ template < typename T > struct is_same<T,T> ] [ if (is_same<Type1,Type2>::value) {} ] And there is a boost::is_same. Thanks a lot, I will do that! –  cyril42e May 20 '10 at 20:47

typeid is part of the Run-Time Type Identification mechanism, which suggests what it's useful for: it's main usage is identifying the dynamic type of a pointer/reference to a base class at runtime. When the types are statically known at compile-time, you don't need to "identify" them as you already know what they are.

In the example, there is nothing to identify at runtime, though, yet the results are not in any way useful at compile-time (typeid cannot appear in const-expressions, which is what you need for template metaprogramming).

Therefore I also recommend is_same

share|improve this answer
    
Yes I agree, I didn't know about is_same, but this is indeed what I want. Thanks! –  cyril42e May 20 '10 at 21:12

For any type T, if T is polymorphic, the compiler is required to evaluate the typeid stuff at runtime. If T is non-polymorphic, the compiler is required to evaluate the typeid stuff at compile time. However, i cannot find the relevant reference in the C++ draft (n3000.pdf) for it.

Infact, in one of the projects that i worked on, this trick was used to find whether a class was polymorphic at runtime.

template <class T>  
bool isPolymorphic() {  
    bool answer=false; 
    T *t = new T(); 
    typeid(answer=true,*t);  
    delete t; 
    return answer;  
} 

I had asked a related question here on SO a few months back.

share|improve this answer
    
Ok but you are using typeid on an object, not a type name. Even if the type is polymorphic, given the type name it is completely known at compile time, isn't it? –  cyril42e May 20 '10 at 21:28
    
What was the point of doing new/delete instead of just declaring a local object? –  AndreyT May 20 '10 at 21:31
    
@AndreyT: Anything that yields lvalue would do for the typeid operator. I just put the answer from the other thread for completeness. –  Abhay May 21 '10 at 1:42
    
@cyril42e: I tried to answer to your question as to when is typeid operator evaluated. The example i gave just uses the evaluation semantics to do something useful. –  Abhay May 21 '10 at 1:46
    
Factually untrue, but close. The expression must be evaluated and the correct type_info must be returned. But in the code above, the compiler is in fact allowed to eliminate the entire runtime typeid check. As long as the answer=true part remains, the observable behavior doesn't change. –  MSalters May 21 '10 at 8:41

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.