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I am wondering why the following code doesn't compile:

struct S
{
    template <typename... T>
    S(T..., int);
};

S c{0, 0};

This code fails to compile with both clang and GCC 4.8. Here is the error with clang:

test.cpp:7:3: error: no matching constructor for initialization of 'S'
S c{0, 0};
  ^~~~~~~
test.cpp:4:5: note: candidate constructor not viable: requires 1 argument, but 2 were provided
    S(T..., int);
    ^

It seems to me that this should work, and T should be deduced to be a pack of length 1.

If the standards forbids doing things like this, does anyone know why?

share|improve this question
    
One reason is that S(T..., U...) or S(T..., int = 0) would be impossible to resolve. So the rules say that you can only have one pack, and it must be last. – Bo Persson Feb 8 '13 at 9:08
    
@BoPersson: I don't see how that's a reason to disallow S(T..., int), where this is neither a default parameter nor a second parameter pack. – HighCommander4 Feb 8 '13 at 9:09
2  
It would create lots of special rules. Parameter packs are hard enough anyway, so the committee chose a simple and general rule. – Bo Persson Feb 8 '13 at 9:11
1  
@HighCommander4 (x,y,z,a,b,c,.....infinity ,Last) , can you deduce what the value will be of Last if passed (12,3,4)? , if you answer Last = 4, then isn't the case parameters up to infinity in the start of parameter list could have taken that value? – M3taSpl0it Feb 8 '13 at 9:11
up vote 4 down vote accepted

Because when a function parameter pack is not the last parameter, then the template parameter pack cannot be deduced from it and it will be ignored by template argument deduction.

So the two arguments 0, 0 are compared against , int, yielding a mismatch.

Deduction rules like this need to cover many special cases (like what happens when two parameter packs appear next to each other). Since parameter packs are a new feature in C++11, the authors of the respective proposal drafted the rules conservatively.

Note that a trailing template parameter pack will be empty if it is not otherwise deduced. So when you call the constructor with one argument, things will work (notice the difference of template parameter pack and function parameter pack here. The former is trailing, the latter is not).

share|improve this answer
    
Why is it ignored, rather than cause a compiler error? – Nikolai Aug 21 '13 at 21:38

So, there should be a workaround. Something along these lines:

// Extract the last type in a parameter pack.
// 0, the empty pack has no last type (only called if 1 and 2+ don't match)
template<typename... Ts>
struct last_type {};

// 2+ in pack, recurse:
template<typename T0, typename T1, typename... Ts>
struct last_type<T0, T1, Ts...>:last_type<T1, Ts...>{};

// Length 1, last type is only type:
template<typename T0>
struct last_type<T0> {
  typedef T0 type;
};


struct S
{
    // We accept any number of arguments
    // So long as the type of the last argument is an int
    // probably needs some std::decay to work right (ie, to implicitly work out that
    // the last argument is an int, and not a const int& or whatever)
    template <typename... T, typename=typename std::enable_if<std::is_same<int, typename last_type<T...>::type>>::type>
    S(T...);

};

where we check that the last type of a parameter pack is an int, or that we where only passesd an int.

share|improve this answer
    
there's a typo in the code: typename Ts... for '2+ in pack' should be typename... Ts – stijn Sep 5 '14 at 10:43
    
@stjin thanks, fixed – Yakk Sep 5 '14 at 11:46

From the working draft of the standard N3376 § 14.1 is a probable section to read about this.

Below is § 14.1.11

If a template-parameter of a class template or alias template has a default template-argument, each subsequent template-parameter shall either have a default template-argument supplied or be a template parameter pack. If a template-parameter of a primary class template or alias template is a template parameter pack, it shall be the last template-parameter. A template parameter pack of a function template shall not be followed by another template parameter unless that template parameter can be deduced from the parameter-type-list of the function template or has a default argument.

share|improve this answer
    
-1, because I cannot see how this quotation of the Standard is helpful. – Johannes Schaub - litb Feb 9 '13 at 12:23
1  
@JohannesSchaub-litb: Only because Rapptz didn't bold the relevant sentence, and you didn't spot it. – Lightness Races in Orbit Feb 9 '13 at 12:47
    
@LightnessRacesinOrbit there is no relevant sentence, isn't there? What you bolded talks about class templates and alias templates. I haven't seen one in the question yet. – Johannes Schaub - litb Feb 9 '13 at 13:02
    
@JohannesSchaub-litb: Yeah, okay. This is a more meaningful downvote explanation, then: the only passage here that applies is the final passage that talks about deduction, which is already part of the question. – Lightness Races in Orbit Feb 9 '13 at 13:08
    
@LightnessRacesinOrbit i don't see how the last passage applies. The template parameter pack is not followed by other template parameters in the questions' code. – Johannes Schaub - litb Feb 9 '13 at 13:11

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