71

I know that the below code is a partial specialization of a class:

template <typename T1, typename T2> 
class MyClass { 
  … 
}; 


// partial specialization: both template parameters have same type 
template <typename T> 
class MyClass<T,T> { 
  … 
}; 

Also I know that C++ does not allow function template partial specialization (only full is allowed). But does my code mean that I have partially specialized my function template for one/same type arguments? Because it works for Microsoft Visual Studio 2010 Express! If no, then could you please explain the partial specialization concept?

#include <iostream>
using std::cin;
using std::cout;
using std::endl;

template <typename T1, typename T2> 
inline T1 max (T1 const& a, T2 const& b) 
{ 
    return a < b ? b : a; 
} 

template <typename T> 
inline T const& max (T const& a, T const& b)
{
    return 10;
}


int main ()
{
    cout << max(4,4.2) << endl;;
    cout << max(5,5) << endl;
    int z;
    cin>>z;
}
  • Look for that analogy of class specialization. If it is called class specialization, then why I should consider the same thing for function as overloading?? – Narek Nov 9 '11 at 7:15
  • 1
    No, specialization syntax is different. Look at the (supposed) function specialization syntax in my answer below. – iammilind Nov 9 '11 at 7:19
  • 1
    Why doesn't this throw a "Call to max is ambigious" error? How does max(5,5) resolve to max(T const&, T const&) [with T=int] and not max(T1 const&, T2 const&) [with T1=int and T2=int]? – NHDaly Aug 13 '15 at 5:34
70

In the example, you are actually overloading (not specializing) the max<T1,T2> function. Partial specialization syntax should have looked somewhat like below (had it been allowed):

//Partial specialization is not allowed by the spec, though!
template <typename T> 
inline T const& max<T,T> (T const& a, T const& b)
{                  ^^^^^ <--- specializing here
    return 10;
}

[Note: in the case of a function template, only full specialization is allowed by the C++ standard (excluding the compiler extensions).]

  • 1
    @Narek, Partial function specialization is not part of standard (for whatsoever reasons). I think MSVC supports it as an extension. May be after sometime, it would be allowed by other compilers also. – iammilind Nov 9 '11 at 7:29
  • 1
    @iammilind: No problem. He already seems to know that. That is why he is trying that for function template as well. So I edited it again, making it clear now. – Nawaz Nov 9 '11 at 8:43
  • 11
    Anyone who can explain why partial specialization isn't allowed? – HelloGoodbye Sep 18 '15 at 21:37
  • 1
    @NHDaly, It doesn't give ambiguity error because 1 function is better match than the other. Why it selects (T, T) over (T1, T2) for (int, int), is because the former guarantees that there are 2 parameters and both types are same; the latter only guarantees that there are 2 parameters. Compiler chooses always an accurate description. e.g. If you have to make a choice between 2 descriptions of a "River" which one would you choose? "collection of water" vs "collection of Water flowing". – iammilind Oct 23 '15 at 5:54
  • 1
    @kfsone, I think this feature is under review, hence open for interpretation. You may refer this open-std section, which I saw in Why does the C++ standard not allow function template partial specialization? – iammilind Dec 22 '18 at 2:21
37

Since partial specialization is not allowed -- as other answers pointed --, you could work around it using std::is_same and std::enable_if, as below:

template <typename T, class F>
inline typename std::enable_if<std::is_same<T, int>::value, void>::type
typed_foo(const F& f) {
    std::cout << ">>> messing with ints! " << f << std::endl;
}

template <typename T, class F>
inline typename std::enable_if<std::is_same<T, float>::value, void>::type
typed_foo(const F& f) {
    std::cout << ">>> messing with floats! " << f << std::endl;
}

int main(int argc, char *argv[]) {
    typed_foo<int>("works");
    typed_foo<float>(2);
}

Output:

$ ./a.out 
>>> messing with ints! works
>>> messing with floats! 2

Edit: In case you need to be able to treat all the other cases left, you could add a definition which states that already treated cases should not match -- otherwise you'd fall into ambiguous definitions. The definition could be:

template <typename T, class F>
inline typename std::enable_if<(not std::is_same<T, int>::value)
    and (not std::is_same<T, float>::value), void>::type
typed_foo(const F& f) {
    std::cout << ">>> messing with unknown stuff! " << f << std::endl;
}

int main(int argc, char *argv[]) {
    typed_foo<int>("works");
    typed_foo<float>(2);
    typed_foo<std::string>("either");
}

Which produces:

$ ./a.out 
>>> messing with ints! works
>>> messing with floats! 2
>>> messing with unknown stuff! either

Although this all-cases thing looks a bit boring, since you have to tell the compiler everything you've already done, it's quite doable to treat up to 5 or a few more specializations.

  • There really isn't any need to do this as this can be handled by function overloading in a much simpler and clearer fashion. – Adrian Jan 5 '15 at 4:45
  • 2
    @Adrian I really can't think of any other function overloading approach to solve this. You noticed partial overloading is not allowed, right? Share with us your solution, if you think it is clearer. – Rubens Jan 9 '15 at 10:24
  • 1
    is there any other way to do easily catch all templated function? – Nick Sep 6 '16 at 12:55
  • 1
    Using enable_if totally solved the problem, thanks. – Shuyang Feb 14 '17 at 12:23
13

What is specialization ?

If you really want to understand templates, you should take a look at functional languages. The world of templates in C++ is a purely functional sublanguage of its own.

In functional languages, selections are done using Pattern Matching:

-- An instance of Maybe is either nothing (None) or something (Just a)
-- where a is any type
data Maybe a = None | Just a

-- declare function isJust, which takes a Maybe
-- and checks whether it's None or Just
isJust :: Maybe a -> Bool

-- definition: two cases (_ is a wildcard)
isJust None = False
isJust Just _ = True

As you can see, we overload the definition of isJust.

Well, C++ class templates work exactly the same way. You provide a main declaration, that states the number and nature of the parameters. It can be just a declaration, or also acts as a definition (your choice), and then you can (if you so wish) provide specializations of the pattern and associate to them a different (otherwise it would be silly) version of the class.

For template functions, specialization is somewhat more awkward: it conflicts somewhat with overload resolution. As such, it has been decided that a specialization would relate to a non-specialized version, and specializations would not be considered during overload resolution. Therefore, the algorithm for selecting the right function becomes:

  1. Perform overload resolution, among regular functions and non-specialized templates
  2. If a non-specialized template is selected, check if a specialization exist for it that would be a better match

(for on in-depth treatment, see GotW #49)

As such, template specialization of functions is a second-zone citizen (literally). As far as I am concerned, we would be better off without them: I have yet to encounter a case where a template specialization use could not be solved with overloading instead.

Is this a template specialization ?

No, it is simply an overload, and this is fine. In fact, overloads usually work as we expect them to, while specializations can be surprising (remember the GotW article I linked).

  • "As such, template specialization of functions is a second-zone citizen (literally). As far as I am concerned, we would be better off without them: I have yet to encounter a case where a template specialization use could not be solved with overloading instead." How about with non type template parameters? – Jules G.M. Jul 24 '13 at 22:50
  • @Julius: you can still use overloading, albeit by introducing a dummy parameter such as boost::mpl::integral_c<unsigned, 3u>. Another solution could also be to use enable_if/disable_if, though it's a different story. – Matthieu M. Jul 25 '13 at 8:51
6

Non-class, non-variable partial specialization is not allowed, but as said:

All problems in computer science can be solved by another level of indirection. —— David Wheeler

Adding a class to forward the function call can solve this, here is an example:

template <class Tag, class R, class... Ts>
struct enable_fun_partial_spec;

struct fun_tag {};

template <class R, class... Ts>
constexpr R fun(Ts&&... ts) {
  return enable_fun_partial_spec<fun_tag, R, Ts...>::call(
      std::forward<Ts>(ts)...);
}

template <class R, class... Ts>
struct enable_fun_partial_spec<fun_tag, R, Ts...> {
  constexpr static R call(Ts&&... ts) { return {0}; }
};

template <class R, class T>
struct enable_fun_partial_spec<fun_tag, R, T, T> {
  constexpr static R call(T, T) { return {1}; }
};

template <class R>
struct enable_fun_partial_spec<fun_tag, R, int, int> {
  constexpr static R call(int, int) { return {2}; }
};

template <class R>
struct enable_fun_partial_spec<fun_tag, R, int, char> {
  constexpr static R call(int, char) { return {3}; }
};

template <class R, class T2>
struct enable_fun_partial_spec<fun_tag, R, char, T2> {
  constexpr static R call(char, T2) { return {4}; }
};

static_assert(std::is_same_v<decltype(fun<int>(1, 1)), int>, "");
static_assert(fun<int>(1, 1) == 2, "");

static_assert(std::is_same_v<decltype(fun<char>(1, 1)), char>, "");
static_assert(fun<char>(1, 1) == 2, "");

static_assert(std::is_same_v<decltype(fun<long>(1L, 1L)), long>, "");
static_assert(fun<long>(1L, 1L) == 1, "");

static_assert(std::is_same_v<decltype(fun<double>(1L, 1L)), double>, "");
static_assert(fun<double>(1L, 1L) == 1, "");

static_assert(std::is_same_v<decltype(fun<int>(1u, 1)), int>, "");
static_assert(fun<int>(1u, 1) == 0, "");

static_assert(std::is_same_v<decltype(fun<char>(1, 'c')), char>, "");
static_assert(fun<char>(1, 'c') == 3, "");

static_assert(std::is_same_v<decltype(fun<unsigned>('c', 1)), unsigned>, "");
static_assert(fun<unsigned>('c', 1) == 4, "");

static_assert(std::is_same_v<decltype(fun<unsigned>(10.0, 1)), unsigned>, "");
static_assert(fun<unsigned>(10.0, 1) == 0, "");

static_assert(
    std::is_same_v<decltype(fun<double>(1, 2, 3, 'a', "bbb")), double>, "");
static_assert(fun<double>(1, 2, 3, 'a', "bbb") == 0, "");

static_assert(std::is_same_v<decltype(fun<unsigned>()), unsigned>, "");
static_assert(fun<unsigned>() == 0, "");
  • Elegant! This should be the accepted answer IMHO. – ulatekh Jan 24 '18 at 21:44
4

No. For example, you can legally specialize std::swap, but you cannot legally define your own overload. That means that you cannot make std::swap work for your own custom class template.

Overloading and partial specialization can have the same effect in some cases, but far from all.

  • 4
    That's why you put your swap overload in your namespace. – jpalecek Nov 9 '11 at 9:41
2

Late answer, but some late readers might find it useful: Sometimes, a helper function – designed such that it can be specialised – can solve the issue, too.

So let's imagine, this is what we tried to solve:

template <typename R, typename X, typename Y>
void function(X x, Y y)
{
    R* r = new R(x);
    f(r, y); // another template function?
}

// for some reason, we NEED the specialization:
template <typename R, typename Y>
void function<R, int, Y>(int x, Y y) 
{
    // unfortunately, Wrapper has no constructor accepting int:
    Wrapper* w = new Wrapper();
    w->setValue(x);
    f(w, y);
}

OK, partial template function specialisation, we cannot do that... So let's "export" the part needed for specialisation into a helper function, specialize that one and use it:

template <typename R, typename T>
R* create(T t)
{
    return new R(t);
}
template <>
Wrapper* create<Wrapper, int>(int n) // fully specialized now -> legal...
{
    Wrapper* w = new Wrapper();
    w->setValue(n);
    return w;
}

template <typename R, typename X, typename Y>
void function(X x, Y y)
{
    R* r = create<R>(x);
    f(r, y); // another template function?
}

This can be interesting especially if the alternatives (normal overloads instead of specialisations, the workaround proposed by Rubens, ... – not that these are bad or mine is better, just another one) would share quite a lot of common code.

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