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I was looking at "How to properly use references with variadic templates," and wondered how far comma expansion can go.

Here's a variant of the answer:

inline void inc() { }

template<typename T,typename ...Args>
inline void inc(T& t, Args& ...args) { ++t; inc(args...); }

Since variadic arguments are expanded to a comma-separated list of their elements, are those commas semantically equivalent to template/function-argument separators, or are they inserted lexically, making them suitable for any (post-preprocessor) use, including the comma operator?

This works on my GCC-4.6:

// Use the same zero-argument "inc"

template<typename T,typename ...Args>
inline void inc(T& t, Args& ...args) { ++t, inc(args...); }

But when I tried:

// Use the same zero-argument "inc"

template<typename T,typename ...Args>
inline void inc(T& t, Args& ...args) { ++t, ++args...; }

I kept getting parsing errors, expecting the ";" before the "...", and that "args" won't get its pack expanded. Why doesn't it work? Is it because if "args" is empty, we get an invalid blob of punctuation? Is it legal, and my compiler isn't good enough?

(I've tried surrounding "args" in parentheses, and/or use post-increment; neither worked.)

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did you define operator+ with variadic template parameters? –  BЈовић Apr 19 '12 at 10:28
    
lookup the wikipedia article on variadic templates. some time ago i added several techniques on such expansions to the article. –  Johannes Schaub - litb Apr 20 '12 at 21:37
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1 Answer

up vote 3 down vote accepted

Unpacking is only allowed in certain contexts, and comma separated statements doesn't belong to them. Using your words: The expansion is semantically and not lexically. However, it doesn't matter because there are several other ways of doing it. There are already some kind of patterns/idioms to write simple variadic functions. One way of doing it:

Use a helper template function, that does nothing at all:

template <typename ...Args>
void pass(Args&&...) { }

Instead of using the comma operator, pass the expressions to this function:

template <typename ...Args>
void inc(Args&&... args)
{
    pass(++std::forward<Args>(args)...);
}

You can use the comma operator within the expansion, if the expressions have to be more complex. This might be useful in your case, if some operator++ have return type void:

    pass((++std::forward<Args>(args), 0)...);
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