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Can someone help me to identify in the standards (C99 and C++03) what happens to the line below?

uint16_t a = 5;

So, on the left is the typed variable, on the right is the literal, when and how does the literal value get the type of the variable?

Is the above assignment is equivalent to statement below?

uint16_t a = (uint16_t)5;  /* C */
uint16_t a = reinterpret_cast<uint16_t>(5);  // C++

How about:

uint16_t a = 5u;

Then if you have something like:

uint32_t b = a + 5;

Is the statement above equivalent to statement below?

uint32_t b = (uint32_t)(a + (uint16_t)(5));  /* C */
uint32_t b = reinterpret_cast<uint32_t>(a + reinterpret_cast<uint16_t>(5));  // C++

Do things change in C11 and C++14? Also, please assume that the system int is 32 bit.

I have been coding in C for a while, but never really understood it deeply, but it always bothers me, so I would appreciate if someone can help me to sort it out.

Thank you...

(Edited: added assumption that the int is 32 bit)

  • 6
    Well finally we have a question tagged both C and C++ and it is indeed related to both :) – Eregrith May 26 '15 at 14:27
  • 4
    That would be static_cast not reinterpret_cast (which is only for conversions involving pointers and references). – Mike Seymour May 26 '15 at 14:28
  • 5 is of type int and 5u is of type unsigned int. – user3528438 May 26 '15 at 14:30
  • For arithmetic opeartions, see en.cppreference.com/w/cpp/language/… – Seçkin Savaşçı May 26 '15 at 14:47
6

The rule is that first the RHS is evaluated, and then the value is converted for the target type. In particular

uint32_t b = a + 5;

is equivalent to

uint32_t b = (uint32_t)((int)a + 5);

If uint16_t is a narrow type, narrower than int.

All operations in C (and I think also in C++) are at least at an integer rank of int.

  • Is uint32_t a = 1.8 + 0.3; also a good example? (Since floating point numbers get truncated when converting to an integer type, the result 2 shows that the values get added before being converted.) – usr2564301 May 26 '15 at 14:40
  • "rank of int". Bytes are what truly matters imo. – Imobilis May 26 '15 at 15:25
  • @Jongware, sure, good example. First the expression on right is evaluated as double, and then converted to uint32_t – Jens Gustedt May 26 '15 at 18:14

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