17

What will the unsigned int contain when I overflow it? To be specific, I want to do a multiplication with two unsigned ints: what will be in the unsigned int after the multiplication is finished?

unsigned int someint = 253473829*13482018273;
24

unsigned numbers can't overflow, but instead wrap around using the properties of modulo.

For instance, when unsigned int is 32 bits, the result would be: (a * b) mod 2^32.


As CharlesBailey pointed out, 253473829*13482018273 may use signed multiplication before being converted, and so you should be explicit about unsigned before the multiplication:

unsigned int someint = 253473829U * 13482018273U;
  • is that a part of a standard? – ev-br Feb 8 '12 at 13:15
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    @Zhenya Yes, in both C and C++. – Pubby Feb 8 '12 at 13:17
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    @Ramhound: Of course it matters. If the standard didn't define this behaviour (like it doesn't for signed integer types), then you couldn't rely on it. – Mike Seymour Feb 8 '12 at 13:25
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    @Mr.Anubis: No, only unsigned integer types. Signed and floating point overflows give undefined behaviour. – Mike Seymour Feb 8 '12 at 13:26
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    This answer is not necessarily relevant. Depending on the compiler limits, the expression 253473829*13482018273 may use signed integer arithmetic which may overflow before the result is converted to unsigned int. – CB Bailey Feb 8 '12 at 13:30
6

Unsigned integer overflow, unlike its signed counterpart, exhibits well-defined behaviour.

Values basically "wrap" around. It's safe and commonly used for counting down, or hashing/mod functions.

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    Unsigned doesn't overflow – Sergei Kurenkov Feb 8 '12 at 13:19
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    I meant that as a comparison to try explain it by relating to something similar. I did qualify my statement later with the wrap around bit. Ah technicalities. – evandrix Feb 8 '12 at 13:21
-3

It probably depends a bit on your compiler. I had errors like this years ago, and sometimes you would get runtime error, other times it would basically "wrap" back to a really small number that would result from chopping off the highest level bits and leaving the remainder, i.e if it's a 32 bit unsigned int, and the result of your multiplication would be a 34 bit number, it would chop off the high order 2 bits and give you the remainder. You would probably have to try it on your compiler to see exactly what you get, which may not be the same thing you would get with a different compiler, especially if the overflow happens in the middle of an expression where the end result is within the range of an unsigned int.

  • Unsigned overflow does not depend on the compiler, it is standardized to have wrap-around semantics. It is only signed overflow that leads to undefined values, and may thus depend on the compiler. – cmaster Apr 11 '17 at 13:29

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