Day 13: Claw Contraption

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Python

I just threw linear algebra and float64 on this question and it stuck. Initially in order to decrease the numbers a bit (to save precision) I tried to find greatest common divisors for the coordinates of the target but in many cases it was 1, so that was that went down the drain. Luckily float64 was able to achieve precisions up to 1e-4 and that was enough to separate wheat from chaff. So in the end I did not have to use exact formulas for the inverse of the matrix though probably would be a more satisfying solution if I did.


import numpy as np
from functools import partial
from pathlib import Path
cwd = Path(__file__).parent

def parse_input(file_path, correction):

  with file_path.open("r") as fp:
    instructions = fp.readlines()

  machine_instructions = []
  for ind in range(0,len(instructions)+1,4):

    mins = instructions[ind:ind+3]
    machine_instructions.append([])
    for i,s in zip(range(3),['+','+','=']):
      machine_instructions[-1].append([int(mins[i].split(',')[0].split(s)[-1]),
                                   int(mins[i].split(',')[1].split(s)[-1])])

    for i in range(2):
      machine_instructions[-1][-1][i] += correction

  return machine_instructions


def solve(threshold, maxn, vectors):

  c = np.array([3, 1])

  M = np.concat([np.array(vectors[0])[:,None],
                 np.array(vectors[1])[:,None]],axis=1).astype(int)

  if np.linalg.det(M)==0:
    return np.nan

  Minv = np.linalg.inv(M)
  nmoves = Minv @ np.array(vectors[2])

  if np.any(np.abs(nmoves - np.round(nmoves))>threshold) or\
    np.any(nmoves>maxn) or np.any(nmoves<0):
      return np.nan

  return np.sum(c * (Minv @ np.array(vectors[2])))


def solve_problem(file_name, correction, maxn, threshold=1e-4):
  # correction 0 or 10000000000000
  # maxn 100 or np.inf

  machine_instructions = parse_input(Path(cwd, file_name), correction)

  _solve = partial(solve, threshold, maxn)

  tokens = list(map(_solve, machine_instructions))

  return int(np.nansum(list(tokens)))
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