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Let's say we have this line of code:

printf("%hi", 6);

Let's assume sizeof(short) == 2, and sizeof(int) == 4.

printf expects a short, but is given an int, which is wider. Is this undefined behaviour?

The same with %hhi.

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    Read about default argument promotions – Barmar May 9 '19 at 9:29
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    @Vagish My link is for C. – Barmar May 9 '19 at 9:30
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    @CacahueteFrito As I understand it, cppreference.com is both C and C++, and all the pages are labeled accordingly. – Barmar May 9 '19 at 9:34
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    @CacahueteFrito: If you are comfortable reading the standard. Then see: open-std.org/jtc1/sc22/WG14/www/docs/n1570.pdf. Section 7.21.6.1 – P.W May 9 '19 at 9:37
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    I eagerly await the day that printf("%u", 1); formats the hard drive – M.M May 9 '19 at 10:34
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printf() doesn't actually expect the argument to be a short when you use %hi. When you call a variadic function, all the arguments undergo default argument promotion. In the case of integer arguments, this means integer promotions, which means that all integer types smaller than int are converted to int or unsigned int.

If the corresponding argument is a literal, all that's required is that it be a value that will fit into a short, you don't actually have to cast it to short.

The standard section 7.21.6.1.7 explains it this way:

the argument will have been promoted according to the integer promotions, but its value shall be converted to short int or unsigned short int before printing

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  • In the standard this is explained (at least) in 7.21.6.1.7 – alx May 9 '19 at 9:50
  • Thanks, I added the relevant line from that section. – Barmar May 9 '19 at 9:54

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