• Narrrz@kbin.social
    link
    fedilink
    arrow-up
    4
    arrow-down
    1
    ·
    1 year ago

    it makes graphs look nicer.

    however, 0^0 isn’t 0x0, that would be 0^2. 0^1 is 0x1, anything^0 is… well, it’s 1. afaik there isn’t am equivalent mathematical expression to n^0, it’s multiplying a number by itself -1x, or something equally mind melting.

    • Narrrz@kbin.social
      link
      fedilink
      arrow-up
      4
      ·
      1 year ago

      actually, I thought of a (maybe) helpful way to visualise this.

      x^-n is equivalent to 1÷(x^n), so 10^-1 is one tenth, 10^-2 is one hundredth, so on. the number, x, appears in the equation n times.

      you can view positive exponents as the inverse, (x^n)÷1. likewise, the number appears n times.

      so what happens for x^0? well, zero is neither positive nor negative. and to maintain consistency, x must appear in the equation zero times. so what you’re left with is 1÷1, regardless of what number you input as x.

    • nekomusumeninaritai@lemmy.blahaj.zone
      link
      fedilink
      English
      arrow-up
      3
      ·
      edit-2
      1 year ago

      I’d imagine you want something defined recursively like multiplication

      • ( 0x = 0 )
      • ( xy = x(y-1)+ x ) ( y > 0 ).

      So it needs to be

      • ( x^0 = c ) (c is some constant)
      • ( x^y = xx^{y-1} ) (( y > 0 ) (to see why, replace multiplication with exponentiation and addition with multiplication). So what could ( c ) be? Well, the recursive exponentiation definition we want refers to ( x^0 ) in ( x^1 ). ( x^1 ) must be ( x ) by the thing we wish to capture in the formalism (multiplication repeated a single time). So the proposed formalism has ( x = x^1 = xx^0 = xc ). So ( cx = x ) hence ( c = 1 ), the multiplicative identity. Anything else would leave exponentiation to a zeroth power undefined, require a special case for a zeroth power and make the base definition that of ( x^1 ), or violate the intuition that exponentiation is repeated multiplication.

      On an unrelated note, it’d be nice if Lemmy had Mathjax. I just wrote all this on mobile with that assumption, and I’m not rewriting now that I know better.