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In C++0x, one can create a constexpr std::tuple, e.g. like

#include <tuple>
constexpr int i = 10;
constexpr float f = 2.4f;
constexpr double d = -10.4;
constexpr std::tuple<int, float, double> tup(i, f, d);

One also can query a std::tuple at runtime, e.g. via

int i2 = std::get<0>(tup);

But it is not possible to query it at compile time, e.g.,

constexpr int i2 = std::get<0>(tup);

will throw a compilation error (at least with the latest g++ snapshot 2011-02-19).

Is there any other way to query a constexpr std::tuple at compile time?

And if not, is there a conceptual reason why one is not supposed to query it?

(I am aware of avoiding using std::tuple, e.g., by using boost::mpl or boost::fusion instead, but somehow it sounds wrong not to use the tuple class in the new standard...).

By the way, does anybody know why

  constexpr std::tuple<int, float, double> tup(i, f, d);

compiles fine, but

  constexpr std::tuple<int, float, double> tup(10, 2.4f, -10.4);


Thanks a lot in advance! - lars

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In n3225.pdf, only the default constructor is marked constexpr. Perhaps it is just too early to use this feature? – UncleBens Feb 23 '11 at 15:09

2 Answers 2

up vote 10 down vote accepted

std::get is not marked constexpr, so you cannot use it to retrieve the values from a tuple in a constexpr context, even if that tuple is itself constexpr.

Unfortunately, the implementation of std::tuple is opaque, so you cannot write your own accessors either.

share|improve this answer
Thanks. So your answer is "no, it is not possible." I had a look into <tuple> meanwhile and totally agree. This leaves the question: why cannot we query std::tuples at compile time? But evtl. this question is better discussed in the broader scope of my question on constexpr of std::forward. – Lars Feb 23 '11 at 23:04
N3305 proposes to add constexpr for tuple::get – Dave Abrahams Sep 12 '12 at 15:29

I have not yet worked with C++0x, but it seems to me that std::get() is a function, rather than expression the compiler can directly interpret. As such, it has no meaning except at runtime, after the function itself has been compiled.

share|improve this answer
C++0x adds the keyword constexpr that actually forces the compiler to evaluate a function at compile time, i.e. with constexpr int add(int x, int y) { return x+y;} you can say constexpr int i = add(7, 13); and the value of i is available at compile time, e.g., in static_assert(i == 20, "i correct");. -- So my question is why is std::get not constexpr ? – Lars Feb 23 '11 at 21:55
The idea of constexpr is that the compiler can be told to calculate the result of a function call given that arguments are also const-expressions. – UncleBens Feb 23 '11 at 21:57
That's not my reading of the references I've found. My reading is that a constexpr can define an inline function returning a constant expression (replacing macros), but it can only call a function if that function is itself constexpr. – Uncle Mikey Feb 23 '11 at 21:58
@Lars -- I suppose my guess would be, because std::get<T>(arg) is going to be used in situations where arg is not itself going to be a constexpr. – Uncle Mikey Feb 23 '11 at 22:06
this would not be a problem either as constexpr will be discarded silently when called with non-constexpr arguments. – Lars Feb 23 '11 at 23:05

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