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I have the following program

#include <stdio.h>

int main(void)
{
    unsigned short int length = 10; 

    printf("Enter length : ");
    scanf("%u", &length);

    printf("value is %u \n", length);

    return 0;
}

Which when compiled using gcc filename.c issued the following warning (in the scanf() line).

warning: format ‘%u’ expects argument of type ‘unsigned int *’, but argument 2 has type ‘short unsigned int *’ [-Wformat]

I then referred the C99 specification - 7.19.6 Formatted input/output functions and couldn't understand the correct format specifier when using the length modifiers (like short, long, etc) with unsigned for int data type.

Is %u the correct specifier unsigned short int? If so why am I getting the above mentioned warning?!

EDIT: Most of the time, I was trying %uh and it was still giving the warning.

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2  
printf("%u\n", (unsigned int)length); // always works, since the C99 spec you read guarantees that sizeof(short) <= sizeof(int) (but the actual answers to this question below are of course much nicer) –  Philip Jan 2 '12 at 14:39
1  
No need for the cast; default promotions take care of it. –  R.. Jan 2 '12 at 15:37

4 Answers 4

up vote 35 down vote accepted

Try using the "%h" modifier:

scanf("%hu", &length);
        ^

Specifies that a following d , i , o , u , x , X , or n conversion specifier applies to an argument with type pointer to short or unsigned short.

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For scanf, you need to use %hu since you're passing a pointer to an unsigned short. For printf, it's impossible to pass an unsigned short due to default promotions (it will be promoted to int or unsigned int depending on whether int has at least as many value bits as unsigned short or not) so %d or %u is fine. You're free to use %hu if you prefer, though.

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2  
+1 for mentioning the default promotions in printf(). Thanks! –  Sangeeth Saravanaraj Jan 2 '12 at 15:39

%u expects an unsigned int, so it's not correct. You can use the h modifier to state that it's a short. So use %hu.

h Indicates that the conversion will be one of d i o u x X or n and the next pointer is a pointer to a short int or unsigned short int (rather than int).

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From the Linux manual page:

h      A  following  integer conversion corresponds to a short int or unsigned short int argument, or a fol‐
       lowing n conversion corresponds to a pointer to a short int argument.

So to print an unsigned short integer, the format string should be "%hu".

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I don't think that's how you "printf" short ints because they are automatically promoted to ints (just like chars). –  Alexey Frunze Jan 2 '12 at 11:00
1  
@Alex %hu/%hd in printf does work. It was %hhu/%hhd that is only available starting with C99. %h and %hh imply a &0xFFFF resp. &0xFF on the passed integer. –  jørgensen Jan 2 '12 at 13:11
    
@jørgensen: you're right, it's in the standard. –  Alexey Frunze Jan 2 '12 at 19:16

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