Added 2017/10 part 1

2024-11-23 10:02:58 +01:00 · 2024-11-23 10:02:58 +01:00 · adea09622c
commit adea09622c
parent 4cc516a620
3 changed files with 219 additions and 1 deletions
--- a/2017/09/solution.py
+++ b/2017/09/solution.py
@ -29,7 +29,7 @@ if part == 1:
 #########################################
 #                                       #
-# not working  Part 2                   #
+#              Part 2                   #
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 if part == 2:
--- a/2017/10/10.md
+++ b/2017/10/10.md
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 ## \-\-- Day 10: Knot Hash \-\--
 You come across some programs that are trying to implement a software
 emulation of a hash based on knot-tying. The hash these programs are
 implementing isn\'t very strong, but you decide to help them anyway. You
 make a mental note to remind the Elves later not to [invent their own
 cryptographic functions]{title="NEW CRYPTOSYSTEM WHO DIS"}.
 This hash function simulates tying a knot in a circle of string with 256
 marks on it. Based on the input to be hashed, the function repeatedly
 selects a span of string, brings the ends together, and gives the span a
 half-twist to reverse the order of the marks within it. After doing this
 many times, the order of the marks is used to build the resulting hash.
      4--5   pinch   4  5           4   1
     /    \  5,0,1  / \/ \  twist  / \ / \
    3      0  -->  3      0  -->  3   X   0
     \    /         \ /\ /         \ / \ /
      2--1           2  1           2   5
 To achieve this, begin with a *list* of numbers from `0` to `255`, a
 *current position* which begins at `0` (the first element in the list),
 a *skip size* (which starts at `0`), and a sequence of *lengths* (your
 puzzle input). Then, for each length:
 -   *Reverse* the order of that *length* of elements in the *list*,
    starting with the element at the *current position*.
 -   *Move* the *current position* forward by that *length* plus the
    *skip size*.
 -   *Increase* the *skip size* by one.
 The *list* is circular; if the *current position* and the *length* try
 to reverse elements beyond the end of the list, the operation reverses
 using as many extra elements as it needs from the front of the list. If
 the *current position* moves past the end of the list, it wraps around
 to the front. *Lengths* larger than the size of the *list* are invalid.
 Here\'s an example using a smaller list:
 Suppose we instead only had a circular list containing five elements,
 `0, 1, 2, 3, 4`, and were given input lengths of `3, 4, 1, 5`.
 -   The list begins as `[0] 1 2 3 4` (where square brackets indicate the
    *current position*).
 -   The first length, `3`, selects `([0] 1 2) 3 4` (where parentheses
    indicate the sublist to be reversed).
 -   After reversing that section (`0 1 2` into `2 1 0`), we get
    `([2] 1 0) 3 4`.
 -   Then, the *current position* moves forward by the *length*, `3`,
    plus the *skip size*, 0: `2 1 0 [3] 4`. Finally, the *skip size*
    increases to `1`.
 ```{=html}
 <!-- -->
 ```
 -   The second length, `4`, selects a section which wraps:
    `2 1) 0 ([3] 4`.
 -   The sublist `3 4 2 1` is reversed to form `1 2 4 3`:
    `4 3) 0 ([1] 2`.
 -   The *current position* moves forward by the *length* plus the *skip
    size*, a total of `5`, causing it not to move because it wraps
    around: `4 3 0 [1] 2`. The *skip size* increases to `2`.
 ```{=html}
 <!-- -->
 ```
 -   The third length, `1`, selects a sublist of a single element, and so
    reversing it has no effect.
 -   The *current position* moves forward by the *length* (`1`) plus the
    *skip size* (`2`): `4 [3] 0 1 2`. The *skip size* increases to `3`.
 ```{=html}
 <!-- -->
 ```
 -   The fourth length, `5`, selects every element starting with the
    second: `4) ([3] 0 1 2`. Reversing this sublist (`3 0 1 2 4` into
    `4 2 1 0 3`) produces: `3) ([4] 2 1 0`.
 -   Finally, the *current position* moves forward by `8`: `3 4 2 1 [0]`.
    The *skip size* increases to `4`.
 In this example, the first two numbers in the list end up being `3` and
 `4`; to check the process, you can multiply them together to produce
 `12`.
 However, you should instead use the standard list size of `256` (with
 values `0` to `255`) and the sequence of *lengths* in your puzzle input.
 Once this process is complete, *what is the result of multiplying the
 first two numbers in the list*?
 Your puzzle answer was `19591`.
 The first half of this puzzle is complete! It provides one gold star: \*
 ## \-\-- Part Two \-\-- {#part2}
 The logic you\'ve constructed forms a single *round* of the *Knot Hash*
 algorithm; running the full thing requires many of these rounds. Some
 input and output processing is also required.
 First, from now on, your input should be taken not as a list of numbers,
 but as a string of bytes instead. Unless otherwise specified, convert
 characters to bytes using their [ASCII
 codes](https://en.wikipedia.org/wiki/ASCII#Printable_characters). This
 will allow you to handle arbitrary ASCII strings, and it also ensures
 that your input lengths are never larger than `255`. For example, if you
 are given `1,2,3`, you should convert it to the ASCII codes for each
 character: `49,44,50,44,51`.
 Once you have determined the sequence of lengths to use, add the
 following lengths to the end of the sequence: `17, 31, 73, 47, 23`. For
 example, if you are given `1,2,3`, your final sequence of lengths should
 be `49,44,50,44,51,17,31,73,47,23` (the ASCII codes from the input
 string combined with the standard length suffix values).
 Second, instead of merely running one *round* like you did above, run a
 total of `64` rounds, using the same *length* sequence in each round.
 The *current position* and *skip size* should be preserved between
 rounds. For example, if the previous example was your first round, you
 would start your second round with the same *length* sequence
 (`3, 4, 1, 5, 17, 31, 73, 47, 23`, now assuming they came from ASCII
 codes and include the suffix), but start with the previous round\'s
 *current position* (`4`) and *skip size* (`4`).
 Once the rounds are complete, you will be left with the numbers from `0`
 to `255` in some order, called the *sparse hash*. Your next task is to
 reduce these to a list of only `16` numbers called the *dense hash*. To
 do this, use numeric bitwise
 [XOR](https://en.wikipedia.org/wiki/Bitwise_operation#XOR) to combine
 each consecutive block of `16` numbers in the sparse hash (there are
 `16` such blocks in a list of `256` numbers). So, the first element in
 the dense hash is the first sixteen elements of the sparse hash XOR\'d
 together, the second element in the dense hash is the second sixteen
 elements of the sparse hash XOR\'d together, etc.
 For example, if the first sixteen elements of your sparse hash are as
 shown below, and the XOR operator is `^`, you would calculate the first
 output number like this:
    65 ^ 27 ^ 9 ^ 1 ^ 4 ^ 3 ^ 40 ^ 50 ^ 91 ^ 7 ^ 6 ^ 0 ^ 2 ^ 5 ^ 68 ^ 22 = 64
 Perform this operation on each of the sixteen blocks of sixteen numbers
 in your sparse hash to determine the sixteen numbers in your dense hash.
 Finally, the standard way to represent a Knot Hash is as a single
 [hexadecimal](https://en.wikipedia.org/wiki/Hexadecimal) string; the
 final output is the dense hash in hexadecimal notation. Because each
 number in your dense hash will be between `0` and `255` (inclusive),
 always represent each number as two hexadecimal digits (including a
 leading zero as necessary). So, if your first three numbers are
 `64, 7, 255`, they correspond to the hexadecimal numbers `40, 07, ff`,
 and so the first six characters of the hash would be `4007ff`. Because
 every Knot Hash is sixteen such numbers, the hexadecimal representation
 is always `32` hexadecimal digits (`0`-`f`) long.
 Here are some example hashes:
 -   The empty string becomes `a2582a3a0e66e6e86e3812dcb672a272`.
 -   `AoC 2017` becomes `33efeb34ea91902bb2f59c9920caa6cd`.
 -   `1,2,3` becomes `3efbe78a8d82f29979031a4aa0b16a9d`.
 -   `1,2,4` becomes `63960835bcdc130f0b66d7ff4f6a5a8e`.
 Treating your puzzle input as a string of ASCII characters, *what is the
 Knot Hash of your puzzle input?* Ignore any leading or trailing
 whitespace you might encounter.
 Answer:
 Although it hasn\'t changed, you can still [get your puzzle
 input](10/input).
--- a/2017/10/solution.py
+++ b/2017/10/solution.py
@ -0,0 +1,49 @@
 #!/bin/python3
 import sys,re
 from pprint import pprint
 input_f = 'input'
 def list2int(x):
    return list(map(int, x))
 part = 1
 #########################################
 #                                       #
 #              Part 1                   #
 #                                       #
 #########################################
 if part == 1:
    size = 256
    lengths = []
    skip = 0
    numbers = []
    pos = 0
    for i in range(0,size):
        numbers.append(i)
    with open(input_f) as file:
        for line in file:
            lengths = list2int(line.rsplit()[0].split(','))
    for ldx, length in enumerate(lengths):
        sub = [numbers[(pos + i) % len(numbers)] for i in range(length)]
        rev = sub[::-1]
        for i in range(length):
            numbers[(pos + i) % len(numbers)] = rev[i]
        pos += (length+skip) 
        pos = pos % len(numbers)
        skip += 1
    print(numbers[0]*numbers[1])
 #########################################
 #                                       #
 #              Part 2                   #
 #                                       #
 #########################################
 if part == 2:
    exit()