13

assuming two arbitrary timestamps:

uint32_t timestamp1;    
uint32_t timestamp2;

Is there a standard conform way to get a signed difference of the two beside the obvious variants of converting into bigger signed type and the rather verbose if-else.

Beforehand it is not known which one is larger, but its known that the difference is not greater than max 20bit, so it will fit into 32 bit signed.

int32_t difference = (int32_t)( (int64_t)timestamp1 - (int64_t)timestamp2 );

This variant has the disadvantage that using 64bit arithmetic may not be supported by hardware and is possible of course only if a larger type exists (what if the timestamp already is 64bit).

The other version

int32_t difference;
if (timestamp1 > timestamp2) {
  difference =    (int32_t)(timestamp1 - timestamp2);
} else {
  difference = - ((int32_t)(timestamp2 - timestamp1));
}

is quite verbose and involves conditional jumps.

That is with

int32_t difference = (int32_t)(timestamp1 - timestamp2);

Is this guaranteed to work from standards perspective?

3
8

You can use a union type pun based on

typedef union
{
    int32_t _signed;
    uint32_t _unsigned;
} u;

Perform the calculation in unsigned arithmetic, assign the result to the _unsigned member, then read the _signed member of the union as the result:

u result {._unsigned = timestamp1 - timestamp2};
result._signed; // yields the result

This is portable to any platform that implements the fixed width types upon which we are relying (they don't need to). 2's complement is guaranteed for the signed member and, at the "machine" level, 2's complement signed arithmetic is indistinguishable from unsigned arithmetic. There's no conversion or memcpy-type overhead here: a good compiler will compile out what's essentially standardese syntactic sugar.

(Note that this is undefined behaviour in C++.)

26
  • 1
    @Bathsheba: I do not think there is an elegant solution in strictly conforming C. Reinterpreting via union or memcpy is likely about the best one can do. Jul 2 '19 at 14:33
  • 1
    @BenVoigt: It is not the pointer interconvertibility that is important so much as that the aliasing rules in C 2018 6.5 7 explicitly allow aliasing corresponding signed and unsigned types. (By itself, the fact that converting pointers as in unsigned int y; … int *x = (int *) &y; is legal does not mean *x would be legal.) Jul 2 '19 at 14:37
  • 1
    The timestamp1 and timestamp2 variables could be left as uint32_t in your code. Only the result variable needs to be a union.
    – Ian Abbott
    Jul 2 '19 at 15:02
  • 1
    Here's a macro definition along the same lines: #define UTOS32(a) = ((union { uint32_t u; int32_t i; }){ .u = (a) }.i). UTOS32(timestamp1 - timestamp2) yields the result.
    – Ian Abbott
    Jul 2 '19 at 15:37
  • 1
    Because the fixed width types, if present, must behave in this manner. I don’t see how I can make that clearer in the answer?
    – Bathsheba
    Jul 3 '19 at 6:00
1

Bathsheba's answer is correct but for completeness here are two more ways (which happen to work in C++ as well):

uint32_t u_diff = timestamp1 - timestamp2;
int32_t difference;
memcpy(&difference, &u_diff, sizeof difference);

and

uint32_t u_diff = timestamp1 - timestamp2;
int32_t difference = *(int32_t *)&u_diff;

The latter is not a strict aliasing violation because that rule explicitly allows punning between signed and unsigned versions of an integer type.


The suggestion:

int32_t difference = (int32_t)(timestamp1 - timestamp2);

will work on any actual machine that exists and offers the int32_t type, but technically is not guaranteed by the standard (the result is implementation-defined).

3
  • As OP has commented on Bathsheba's answer, there is no documentation to support that int32_t has to be two's complement, nor that a type pun is any more portable than a regular typecast. So your comment "technically is not guaranteed by the standard" actually applies to all 3 solutions in this answer. Nov 6 '19 at 2:04
  • @personal_cloud Huh? It's in the C Standard. See C11 7.20.1.1/1
    – M.M
    Nov 6 '19 at 4:21
  • Oh, I see. Looks like this goes back to at least C99 too. So the representation of int32_t is specified, but the cast from uint32_t is not. So yes, I would accept that in my more general question as well. Nov 6 '19 at 23:51
0

The conversion of an unsigned integer value to a signed integer is implementation defined. This is spelled out in section 6.3.1.3 of the C standard regarding integer conversions:

1 When a value with integer type is converted to another integer type other than _Bool ,if the value can be represented by the new type, it is unchanged.

2 Otherwise, if the new type is unsigned, the value is converted by repeatedly adding or subtracting one more than the maximum value that can be represented in the new type until the value is in the range of the new type. 60)

3 Otherwise, the new type is signed and the value cannot be represented in it; either the result is implementation-defined or an implementation-defined signal is raised.

On implementations people are most likely to use, the conversion will occur the way you expect, i.e. the representation of the unsigned value will be reinterpreted as a signed value.

Specifically GCC does the following:

  • The result of, or the signal raised by, converting an integer to a signed integer type when the value cannot be represented in an object of that type (C90 6.2.1.2, C99 and C11 6.3.1.3).

For conversion to a type of width N, the value is reduced modulo 2^N to be within range of the type; no signal is raised.

MSVC:

When a long integer is cast to a short, or a short is cast to a char, the least-significant bytes are retained.

For example, this line

short x = (short)0x12345678L;

assigns the value 0x5678 to x, and this line

char y = (char)0x1234;

assigns the value 0x34 to y.

When signed variables are converted to unsigned and vice versa, the bit patterns remain the same. For example, casting -2 (0xFE) to an unsigned value yields 254 (also 0xFE).

So for these implementations, what you proposed will work.

1
  • 2
    This question is tagged language-lawyer and explicitly asks for a standard conforming solution. (Not my down vote.) Jul 2 '19 at 15:27
0

Rebranding Ian Abbott's macro-packaging of Bathseba's answer as an answer:

#define UTOS32(a) ((union { uint32_t u; int32_t i; }){ .u = (a) }.i)

int32_t difference = UTOS32(timestamp1 - timestamp2);

Summarizing the discussions on why this is more portable than a simple typecast: The C standard (back to C99, at least) specifies the representation of int32_t (it must be two's complement), but not in all cases how it should be cast from uint32_t.

Finally, note that Ian's macro, Bathseba's answer, and M.M's answers all also work in the more general case where the counters are allowed to wrap around 0, as is the case, for example, with TCP sequence numbers.

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