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I want signed integers to overflow when they become too big. How do I achieve that without using the next biggest datatype (or when I am already at int128_t)?

For example using 8bit integers 19*12 is commonly 260, but I want the result 1 11 10 01 00 with the 9th bit cut off, thus -27.

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2  
isn't 19 * 12 == 228? even in 8-bit unsigned integers? –  Lee Nov 21 '10 at 22:57

7 Answers 7

Signed integer overflow is undefined according to both C and C++ standards. There's no way to accomplish what you want without a specific platform in mind.

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You could create an objective wrapper around int, but that would involve quite a lot of overhead code.

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Use bigger datatypes. With GMP you will have all the space you probably need.

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Question specifically asked how to do it without larger datatypes. And GMP is always a bad answer since it likes to abort() the calling program without warning. –  R.. Nov 22 '10 at 0:45
    
The way I understood "(or when I am already at int128_t)?" is that he is willing to use larger datatypes if he can. GMP aborts when too much memory is requested. –  Milan Nov 22 '10 at 1:51

It sounds like you want to do unsinged integer arithmetic, then stuff the result into a signed integer:

unsigned char a = 19;
unsigned char b = 12;

signed char c = (signed char)(a*b);

should give you what you're looking for. Let us know if it doesn't.

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That code still exhibits undefined behavior. (Still a signed overflow) –  Billy ONeal Nov 21 '10 at 22:55
    
@Billy - not disagreeing with you at all... but I have seen a substantial amount of C code (usually realtime/embedded stuff) that relies on signed-subtraction of unsigned integer counter values, in order to obtain a "rolling delta". I thought that the signed-to-unsigned cast was well-defined, while an overflow was not. Just out of curiosity, can you provide a reference to the relevant part of the C standard that declares all this stuff to be "undefined behavior"? –  Lee Nov 21 '10 at 23:16
    
@Lee: 1. I did not downvote this. 2. I don't see how that cast is not an overflow. I don't have a specific reference saying that the cast is invalid, but I don't have a specific reference saying that it's valid either. –  Billy ONeal Nov 21 '10 at 23:29
    
It's not undefined, it's implementation-defined. A cast or implicit conversion to a signed type that's too small to hold the value is not considered an overflow by the standard. Rather an implementation-defined conversion is performed or an implementation-defined signal is raised. –  R.. Nov 22 '10 at 0:43
    
And if you want to avoid the implementation-definedness, try this: signed char c; *(unsigned char *)&c = (a*b); –  R.. Nov 22 '10 at 0:44

Assuming two's complement signed integer arithmetic (which is a reasonable assumption these days), for addition and subtraction, just cast to unsigned to do the calculation. For multiplication and division, ensure the operands are positive, cast to unsigned, calculate and adjust the signs.

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Signed overflow is undefined in C, and that's for real.

One solution follows:

signed_result = (unsigned int)one_argument + (unsigned int)other_argument;

The above solution involves implementation-defined behavior. At least, you can expect more compiler/platforms to do what you want: cast operands to the unsigned integer type of the same width, do the unsigned operation (with specified wrap-around behavior), and cast back from unsigned to signed. An optimizing compiler will compile this to the one assembly instruction that gives what you want on usual architectures.

Alternately, if you are using gcc, then the options -fwrapv/-fno-strict-overflow may be exactly what you want. They provide an additional guarantee with respect to the standard that signed overflows wrap around. I'm not sure about the difference between the two.

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The second paragraph to this answer is the closest thing to a correct answer to this question. That's the way I'd go. –  R.. Nov 22 '10 at 0:45

It is possible to do this in a correct standard C manner, so long as you have access to an unsigned type that is of the same width as your signed type (that is, has one more value bit). To demonstrate with int64_t:

int64_t mult_wrap_2scomp(int64_t a, int64_t b)
{
    uint64_t result = (uint64_t)a * (uint64_t)b;

    if (result > INT64_MAX)
        return (int64_t)(result - INT64_MAX - 1) - INT64_MAX - 1;
    else
        return (int64_t)result;
}

This does not produce any problematic intermediate results.

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