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In preparing to a OOP exam, I enjoyed seeing g++ compile the following code (without an instantiation) even though it appeared to make no sense:

template<class T> void f() {
    T t = "a";
    t += 5.6;
    t->b();
    T* p = t;
    p = p*(t/"string");
}

I then set out on a challenge to make this instantiate and compile.

I created the following class:

class A {
    public:
    A(const char* s) {}
    void operator+=(double d) {}
    A operator/(char* str) {return A("");}
    A* operator->() {return this;}
    A* operator=(A& a) {return &a;}
    void b() {}
};
A* operator*(A* a, A b) {return new A("");}

which allowed almost all of the template to work, except the line

T* p = t;

My question is, what operator or constructor will make this line work? Currently it gives me "error: cannot convert ‘A’ to ‘A*’ in initialization"

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Any particular reason for doing this horrible thing, or is it just to see if you can? –  David Thornley Mar 6 '10 at 13:34
    
This is to prepare to an exam, and as an exercise. I promise to never write code that looks like this in anything real :) –  Tzafrir Mar 6 '10 at 13:41
    
Ugh. You might want to skip an examen that demands you to write such code. –  sbi Mar 6 '10 at 13:46
2  
t/"string" will not compile anymore in a C++0x compiler. I recommend you to change the operator to take a char const* instead (this conversion dropping constness has been deprecated a long time). –  Johannes Schaub - litb Mar 6 '10 at 13:55
    
@Tzafrir, i like the following quiz: Given template<typename T> void f() { T t = "hello"; T u = &t; }, what is the shortest way to instantiate a valid f? –  Johannes Schaub - litb Mar 6 '10 at 14:11

5 Answers 5

up vote 3 down vote accepted

That is a completely meaningless line.

But to make it compilable, you can provide the conversion operator:

operator A* () { return 0; }

Hope you realize how evil this is.

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Works, and is the simplest that works. Thanks! –  Tzafrir Mar 6 '10 at 13:41

Use the type conversion operator?

class A {
   //...
public:
    template< class T > 
    operator T*() { return this; }
};

But clearly, it's bad practice.

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...but it's really bad practice. You want to know wether you are dealing with an object on the stack or with a pointer to an object wherever. –  Johannes Rudolph Mar 6 '10 at 13:31
    
Yes clearly it's bad practice. –  Klaim Mar 6 '10 at 13:33
    
Fixed the example to make it work with VS2008, then added that it's bad practice. –  Klaim Mar 6 '10 at 13:35
1  
Works as well. This gives me a lot more conversions than I needed, which is why I didn't mark it as my selected answer. –  Tzafrir Mar 6 '10 at 13:42

While Klaim told you how, implicit conversions to pointers of T may lead to subtile bugs - so please don't do this in production code.
Explicitly taking the address via the & operator avoid these bugs and says more clearly what your intent was.

Also note that your assignment operator looks, lets say unusual. See the C++ FAQ lite entry for more details.

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I agree. This was as a head-in-the-wall exercise. –  Tzafrir Mar 6 '10 at 13:46
class A {
  // ...
  template <typename T>
  operator T*() const
  {
    // ...
  }
  // ...
};
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My C/C++ is pretty rusty but I really want to say that it's just

T* p = &t;
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