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Asked: 2026-06-05T22:29:14+00:00

Does this code always evaluate to false? Both variables are two’s complement signed ints.

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Does this code always evaluate to false? Both variables are two’s complement signed ints.

~x + ~y == ~(x + y)

I feel like there should be some number that satisfies the conditions. I tried testing the numbers between -5000 and 5000 but never achieved equality. Is there a way to set up an equation to find the solutions to the condition?

Will swapping one for the other cause an insidious bug in my program?

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1 Answer

  1. Editorial Team

    Assume for the sake of contradiction that there exists some x and some y (mod 2n) such that

    ~(x+y) == ~x + ~y

    By two’s complement*, we know that,

          -x == ~x + 1
<==>  -1 == ~x + x

    Noting this result, we have,

          ~(x+y) == ~x + ~y
<==>  ~(x+y) + (x+y) == ~x + ~y + (x+y)
<==>  ~(x+y) + (x+y) == (~x + x) + (~y + y)
<==>  ~(x+y) + (x+y) == -1 + -1
<==>  ~(x+y) + (x+y) == -2
<==>  -1 == -2

    Hence, a contradiction. Therefore, ~(x+y) != ~x + ~y for all x and y (mod 2n).

    *It is interesting to note that on a machine with one’s complement arithmetic, the equality actually holds true for all x and y. This is because under one’s complement, ~x = -x. Thus, ~x + ~y == -x + -y == -(x+y) == ~(x+y).

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