Day 13: Claw Contraption

Megathread guidelines

  • Keep top level comments as only solutions, if you want to say something other than a solution put it in a new post. (replies to comments can be whatever)
  • You can send code in code blocks by using three backticks, the code, and then three backticks or use something such as https://topaz.github.io/paste/ if you prefer sending it through a URL

FAQ

  • hades@lemm.ee
    link
    fedilink
    arrow-up
    2
    ·
    11 days ago

    It’s interesting that you’re not checking if the solution to x is a whole number. I guess the data doesn’t contain any counterexamples.

    • Acters@lemmy.world
      link
      fedilink
      arrow-up
      3
      ·
      edit-2
      11 days ago

      we are solving for y first. If there is a y then x is found easily.

      (Ax)*x + (Bx)*y = Px and (Ay)*x + (By)*y = Py

      Because of Ax or Ay and Bx or By, lets pretend that they are not (A*x)*x and (A*y)*y for both. they are just names. could be rewritten as: (Aleft)*x + (Bleft)*y = Pleft and (Aright)*x + (Bright)*y = Pright

      but I will keep them short. solving for y turns into this:

      y = (Ay*Px - Ax*Py) / (Ay*Bx - Ax*By)

      if mod of 1 is equal to 0 then there is a solution. We can be confident that x is also a solution, too. Could there be an edge case? I didn’t proof it, but it works flawlessly for my solution.

      Thankfully, divmod does both division and mod of 1 at the same time.

      • Sparrow_1029@programming.dev
        link
        fedilink
        arrow-up
        2
        ·
        edit-2
        11 days ago

        Thank you so much for your explanation! I kind of found some clues looking up perp dot products & other vector math things, but this breaks it down very nicely.

        I implemented your solution in rust, and part 2 failed by +447,761,194,259 (this was using signed 64-bit integers, i64). When I changed it to use signed 64 bit floating-point f64 and checked that the solution for x produces a whole number it worked.

        • Acters@lemmy.world
          link
          fedilink
          arrow-up
          3
          ·
          11 days ago

          Did you run my python code as is? I would hope it works for everyone. though, I am unsure what the edge cases are, then.

          • Sparrow_1029@programming.dev
            link
            fedilink
            arrow-up
            1
            ·
            10 days ago

            I did run your code as-is in an ipython REPL to check. These were the results:

            REPL session
            # With unmodified `main` function & `import string` not shown
            In [4]: with open("inputs/day13.txt", "r") as f:
               ...:     input_data = f.read().strip().replace(',', '').split('\n\n')
               ...:
            
            In [5]: part_one, part_two = main(input_data)
            
            In [6]: part_one
            Out[6]: 39748
            
            In [7]: part_two
            Out[7]: 74926346266863
            
            # Then I modified the function to check if x is fractional
            In [8]: def main(input_data):
               ...:     part1_total_cost = 0
               ...:     part2_total_cost = 0
               ...:     for machine in input_data:
               ...:         Ax,Ay,Bx,By,Px,Py = [ int(l[2:]) for l in machine.split() if l[-1] in string.digits ]
               ...:         y,r = divmod((Ay * Px - Ax * Py), (Ay * Bx - Ax * By))
               ...:         if r == 0:
               ...:             x = (Px - Bx * y) / Ax
               ...:             if x % 1 == 0:
               ...:                 part1_total_cost += 3*x + y
               ...:         y,r = divmod((Ay * (Px+10000000000000) - Ax * (Py+10000000000000)), (Ay * Bx - Ax * By))
               ...:         if r == 0:
               ...:             x = ((Px+10000000000000) - Bx * y) / Ax
               ...:             if x % 1 == 0:
               ...:                 part2_total_cost += 3*x + y
               ...:
               ...:     return part1_total_cost,part2_total_cost
               ...:
            
            In [9]: part_one, part_two = main(input_data)
            
            In [10]: part_one
            Out[10]: 39748.0
            
            In [11]: part_two
            Out[11]: 74478585072604.0  # Correct answer for pt 2 of my input
            

            If you’re curious to check against my puzzle input, it’s here

            Thank you again for the back & forth, and for sharing your solution!

            • Acters@lemmy.world
              link
              fedilink
              arrow-up
              2
              ·
              10 days ago

              there is exactly ONE “machine” that causes your result to be incorrect. ONLY for part 2.

              Button A: X+67, Y+67
              Button B: X+16, Y+73
              Prize: X=4877, Y=7214
              

              I see now what your corner case causes. so when my script solves for y first. it will be exact. BUT when you solve for x, it will be not divisible… makes sense now. I didn’t expect this. This only occurs because of part 2! so dastardly. well, that was interesting. I guess I am forced to add that extra check… rip those microsecond gains.

    • VegOwOtenks@lemmy.world
      link
      fedilink
      arrow-up
      2
      arrow-down
      1
      ·
      edit-2
      11 days ago

      They do, if the remainder returned by divmod(…) wasn’t zero then it wouldn’t be divisble

      • Acters@lemmy.world
        link
        fedilink
        arrow-up
        2
        ·
        11 days ago

        you are right, we solve for y, but I am confident that solving for x after y would yield the correct result as long as y is fully divisible.