well part 1 was straightforward... is the solution for part 2 to run it in reverse?
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										117
									
								
								17/index.ts
									
									
									
									
									
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										117
									
								
								17/index.ts
									
									
									
									
									
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import fs from "node:fs";
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import { printTime, now, toNum } from "../util";
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const test = false;
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const data = fs.readFileSync(
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  test ? "./inputs/testinput" : "./inputs/input",
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  "utf8"
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);
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let timer = now.instant();
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let computer = data
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  .split("\n")
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  .slice(0, -1)
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  .reduce(
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    (state, line, i) => {
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      switch (i) {
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        case 0:
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          state.A = toNum(line.split(": ")[1]);
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          break;
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        case 1:
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          state.B = toNum(line.split(": ")[1]);
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          break;
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        case 2:
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          state.C = toNum(line.split(": ")[1]);
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          break;
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        case 3:
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          break;
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        case 4:
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          state.Program = line.split(": ")[1].split(",").map(toNum);
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      }
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      return state;
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    },
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    { A: 0, B: 0, C: 0, Program: [], Output: [] } as {
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      A: number;
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      B: number;
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      C: number;
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      Program: number[];
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      Output: number[];
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    }
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  );
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const comboOperand = (computer, instructionPointer: number) => {
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  switch (computer.Program[instructionPointer + 1]) {
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    case 0:
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    case 1:
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    case 2:
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    case 3:
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      return computer.Program[instructionPointer + 1];
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    case 4:
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      return computer.A;
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    case 5:
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      return computer.B;
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    case 6:
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      return computer.C;
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    case 7:
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      throw "invalid!";
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  }
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};
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let instructionPointer = 0;
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while (instructionPointer < computer.Program.length) {
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  let instruction = computer.Program[instructionPointer];
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  switch (instruction) {
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    case 0: // adv: A/(2^combo-operand) => A
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      computer.A = Math.trunc(
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        computer.A / 2 ** comboOperand(computer, instructionPointer)
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      );
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      instructionPointer += 2;
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      break;
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    case 1: // bxl: XOR(B, literal=operand) => B
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      computer.B = computer.B ^ computer.Program[instructionPointer + 1];
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      instructionPointer += 2;
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      break;
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    case 2: // bst: combo-operand % 8 => B
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      computer.B = comboOperand(computer, instructionPointer) % 8;
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      instructionPointer += 2;
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      break;
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    case 3: // jnz: jump to literal operand if non-zero register A
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      if (computer.A !== 0) {
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        instructionPointer = computer.Program[instructionPointer + 1];
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      } else {
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        instructionPointer += 2;
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      }
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      break;
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    case 4: // bxc: XOR(B, C) => B (consumes and ignores operand)
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      computer.B = computer.B ^ computer.C;
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      instructionPointer += 2;
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      break;
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    case 5: // out: combo-operand => Output
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      computer.Output.push(comboOperand(computer, instructionPointer) % 8);
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      instructionPointer += 2;
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      break;
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    case 6: // bdv: A/(2^combo-operand) => B
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      computer.B = Math.trunc(
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        computer.A / 2 ** comboOperand(computer, instructionPointer)
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      );
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      instructionPointer += 2;
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      break;
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    case 7: // cdv: A/(2^combo-operand) => C
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      computer.C = Math.trunc(
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        computer.A / 2 ** comboOperand(computer, instructionPointer)
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      );
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      instructionPointer += 2;
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      break;
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  }
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}
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console.log(
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  "part one:",
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  computer.Output.join(","),
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  printTime(now.instant().since(timer))
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);
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// timer = now.instant();
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// console.log("part two:", computer, printTime(now.instant().since(timer)));
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