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c++ - How can I Initialize a div_t Object?

So the order of the members returned from the div functions seems to be implementation defined.

Is quot the 1st member or is rem?

Let's say that I'm doing something like this:

generate(begin(digits), end(digits), [i = div_t{ quot, 0 }]() mutable {
    i = div(i.quot, 10);
    return i.rem;
})

Of course the problem here is that I don't know if I initialized i.quot or i.rem in my lambda capture. Is intializing i with div(quot, 1) the only cross platform way to do this?

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You're right that the order of the members is unspecified. The definition is inherited from C, which explicitly states it is (emphasis mine):

7.20.6.2 The div, ldiv, and lldiv functions

3 [...] The structures shall contain (in either order) the members quot (the quotient) and rem (the remainder), each of which has the same type as the arguments numer and denom. [...]

In C, the fact that the order is unspecified doesn't matter, and an example is included specifically regarding div_t:

6.7.8 Initialization

34 EXAMPLE 10 Structure members can be initialized to nonzero values without depending on their order:

div_t answer = { .quot = 2, .rem = -1 };

Unfortunately, C++ never adopted this syntax.

I'd probably go for simple assignment in a helper function:

div_t make_div_t(int quot, int rem) {
  div_t result;
  result.quot = quot;
  result.rem = rem;
  return result;
}

For plain int values, whether you use initialisation or assignment doesn't really matter, they have the same effect.

Your division by 1 is a valid option as well.


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