• @[email protected]
        32 days ago

        This is insane stuff. 13 is truly mesmerizing. Although I don’t think I’m sharp enough for the proofs. Even the divisibility by 2 proof looks hellish.

    • @[email protected]
      22 days ago

      I have discovered a truly marvelous demonstration of this proposition that this comment section is too narrow to contain.

    • Hjalmar
      22 days ago

      Il do it for disability by three and a three digit numbers with the digits a, b and c. The value of that number then is 100a + 10b + c. They concept is the same for nine.

      100a + 10b + a mod 3 =
a + b + a

      This means that, mod 3, a three digit number is equivalent to the sum of it’s digits and therefore preserves disability by 3.