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I am quite confused by the following code:

#include <stdio.h>
#include <stdint.h>

int main(int argc, char ** argv)
{
    uint16_t a = 413;
    uint16_t b = 64948;

    fprintf(stdout, "%u\n", (a - b));
    fprintf(stdout, "%u\n", ((uint16_t) (a - b)));

    return 0;
}

That returns:

$ gcc -Wall test.c -o test
$ ./test
4294902761
1001
$ 

It seems that expression (a - b) has type uint32_t. I don't uderstand why since both operators are uint16_t.

Can anyone explain this to me?

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You are declaring both as unsigned ints, and then doing a subtraction that will result in a negative number. You cannot expect reliable behavior when you are misusing datatypes. –  onit Oct 31 '11 at 14:04
1  
Actually that's exactly what I need to do. –  Julien REINAULD Oct 31 '11 at 14:11
    
please explain yourself when downvoting. –  MK. Oct 31 '11 at 14:15
1  
So I was waying: Actually that's exactly what I need to do. a and b represent the values of a 16-bit counter in a piece of hardware. A 16-bit counter counts from 0 to 65535. So a and b are uint16_t. Now if I want to know the number of cyces that passed between 2 timestamps a and b, I just have do the subtraction. If counter went from 10 to 100, I know that 90 cycles have passed. I f counter want from 65530 to 2, i.e went from 65530 to 65535, then rolled back to 0, and went to 2, I know that 5 + 1 + 2 = 8 cycles passed. –  Julien REINAULD Oct 31 '11 at 14:22
1  
b - a is so much simpler than b > a ? b - a : (((65335 - a) + b) + 1) ... –  Julien REINAULD Oct 31 '11 at 14:42

3 Answers 3

The C standard explains this quite clearly (§6.5.6 Additive Operators):

If both operands have arithmetic type, the usual arithmetic conversions are performed on them.

(§6.3.1.8 Usual Arithmetic Conversions):

... the integer promotions are performed on both operands.

(§6.3.1.1 Boolean, characters, and integers):

If an int can represent all values of the original type, the value is converted to an int; ... These are called the integer promotions. All other types are unchanged by the integer promotions.

Since int can represent all values of uint16_t on your platform, a and b are converted to int before the subtraction is performed. The result has type int, and is passed to printf as an int. You have specified the %u formatter with an int argument; strictly speaking this invokes undefined behavior, but on your platform the int argument is interpreted as it's twos-complement representation, and that is printed.

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Thanks. This is pretty clear :) Eventually I just casted my expression back to uint16_t. –  Julien REINAULD Oct 31 '11 at 14:45
    
@JulienREINAULD: which works fine, and is the intended way to deal with this. =) –  Stephen Canon Oct 31 '11 at 14:47

C promotes the arguments to unsigned int before doing the subtraction. This is standard behavior.

See, for instance, In a C expression where unsigned int and signed int are present, which type will be promoted to what type? for details.

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1  
It actually promotes them to either int or unsigned int - if int can represent all the values of uint16_t, then they will be promoted to int. –  caf Oct 31 '11 at 14:09

If you throw away the top-end bits of a number (by the explicit cast to a 16 bit unsigned integer) then you're going to have a result that is smaller (within the range of 0 and 2^16-1) than before.

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