13

I need to use printf() to print a uint16_t. This SO answer (How to print uint32_t and uint16_t variables value?) says I need to use inttypes.h.

However, I'm working on an embedded system and inttypes.h is not available. How do I print a uint16_t when the format specifier for a uint16_t is not available?

  • printf("%u\n", (uint16_t)something); – user3528438 Mar 18 '15 at 1:54
  • 1
    Figure out how wide the various integer types are on your system, and use the appropriate specifier. – Kevin Mar 18 '15 at 1:55
  • 2
    @user3528438: No, %u expects an unsigned int, not a uint16_t. The cast should be to unsigned int. – Keith Thompson Mar 18 '15 at 2:04
14

An obvious way is:

printf("%u\n", (unsigned int)x);

The unsigned int is guaranteed to be at least 16 bits, so this is not a lossy conversion.

  • Indeed anything else would be over-engineering. – chqrlie Jun 15 '18 at 22:59
14

You should use the style of inttypes.h but define the symbols yourself. For example:

#define PRIu8 "hu"
#define PRId8 "hd"
#define PRIx8 "hx"
#define PRIu16 "hu"
#define PRId16 "hd"
#define PRIx16 "hx"
#define PRIu32 "u"
#define PRId32 "d"
#define PRIx32 "x"
#define PRIu64 "llu" // or possibly "lu"
#define PRId64 "lld" // or possibly "ld"
#define PRIx64 "llx" // or possibly "lx"

Figure them out for your machine and use them. Take a look at others in inttypes.h and figure which you will need.

This way, your code will be more portable. I've been doing embedded systems work since the late 70's. Trust me: portability is important.

  • I could not come up with a better answer! Portability is often underestimated indeed. – Michael Beer Jun 15 '18 at 22:32
7

short int is the smallest at least 16 bits long so convert the value to unsigned short int and print it with %hu.

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