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std::tie returns a tuple of references, so you can do the following:

int foo, bar, baz;
std::tie(foo, bar, baz) = std::make_tuple(1, 2, 3);

This is similar to foo, bar, baz = (1, 2, 3) in Python.

What is supposed to happen if one of the assignments throws, as in the following example?

int foo = 1337;
struct Bar {
    Bar& operator=(Bar) { throw std::exception{}; }
} bar;
try {
    std::tie(foo, bar) = std::make_tuple(42, Bar{});
} catch (std::exception const&) {
    std::cout << foo << '\n';
}

Will it print 1337 or 42, or is this unspecified?

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1  
Since the layout of tuple is unspecified, I imagine the answer here is also "unspecified". –  Kerrek SB Dec 8 '12 at 15:57
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1 Answer

up vote 5 down vote accepted

The Standard speaks of tuple assignment art §20.4.2.2 [tuple.assign], the only mention of exception is that the assignment should not throw unless one of the elements assigned to throws.

Since there is no mention of the order in which elements are assigned to, it is thus unspecified.

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For most cases I would argue that the basic exception guarantee is provided as long as the types involved provide the basic exception or better. Also obviously you get nothrow iff everything is nothrow -- that's specified. –  Luc Danton Dec 8 '12 at 16:32
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