174 lines
7.7 KiB
Markdown
174 lines
7.7 KiB
Markdown
## \-\-- Day 10: Knot Hash \-\--
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You come across some programs that are trying to implement a software
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emulation of a hash based on knot-tying. The hash these programs are
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implementing isn\'t very strong, but you decide to help them anyway. You
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make a mental note to remind the Elves later not to [invent their own
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cryptographic functions]{title="NEW CRYPTOSYSTEM WHO DIS"}.
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This hash function simulates tying a knot in a circle of string with 256
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marks on it. Based on the input to be hashed, the function repeatedly
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selects a span of string, brings the ends together, and gives the span a
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half-twist to reverse the order of the marks within it. After doing this
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many times, the order of the marks is used to build the resulting hash.
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4--5 pinch 4 5 4 1
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/ \ 5,0,1 / \/ \ twist / \ / \
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3 0 --> 3 0 --> 3 X 0
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\ / \ /\ / \ / \ /
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2--1 2 1 2 5
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To achieve this, begin with a *list* of numbers from `0` to `255`, a
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*current position* which begins at `0` (the first element in the list),
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a *skip size* (which starts at `0`), and a sequence of *lengths* (your
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puzzle input). Then, for each length:
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- *Reverse* the order of that *length* of elements in the *list*,
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starting with the element at the *current position*.
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- *Move* the *current position* forward by that *length* plus the
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*skip size*.
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- *Increase* the *skip size* by one.
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The *list* is circular; if the *current position* and the *length* try
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to reverse elements beyond the end of the list, the operation reverses
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using as many extra elements as it needs from the front of the list. If
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the *current position* moves past the end of the list, it wraps around
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to the front. *Lengths* larger than the size of the *list* are invalid.
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Here\'s an example using a smaller list:
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Suppose we instead only had a circular list containing five elements,
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`0, 1, 2, 3, 4`, and were given input lengths of `3, 4, 1, 5`.
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- The list begins as `[0] 1 2 3 4` (where square brackets indicate the
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*current position*).
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- The first length, `3`, selects `([0] 1 2) 3 4` (where parentheses
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indicate the sublist to be reversed).
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- After reversing that section (`0 1 2` into `2 1 0`), we get
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`([2] 1 0) 3 4`.
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- Then, the *current position* moves forward by the *length*, `3`,
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plus the *skip size*, 0: `2 1 0 [3] 4`. Finally, the *skip size*
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increases to `1`.
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```{=html}
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<!-- -->
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```
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- The second length, `4`, selects a section which wraps:
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`2 1) 0 ([3] 4`.
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- The sublist `3 4 2 1` is reversed to form `1 2 4 3`:
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`4 3) 0 ([1] 2`.
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- The *current position* moves forward by the *length* plus the *skip
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size*, a total of `5`, causing it not to move because it wraps
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around: `4 3 0 [1] 2`. The *skip size* increases to `2`.
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```{=html}
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<!-- -->
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```
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- The third length, `1`, selects a sublist of a single element, and so
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reversing it has no effect.
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- The *current position* moves forward by the *length* (`1`) plus the
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*skip size* (`2`): `4 [3] 0 1 2`. The *skip size* increases to `3`.
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```{=html}
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<!-- -->
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```
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- The fourth length, `5`, selects every element starting with the
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second: `4) ([3] 0 1 2`. Reversing this sublist (`3 0 1 2 4` into
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`4 2 1 0 3`) produces: `3) ([4] 2 1 0`.
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- Finally, the *current position* moves forward by `8`: `3 4 2 1 [0]`.
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The *skip size* increases to `4`.
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In this example, the first two numbers in the list end up being `3` and
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`4`; to check the process, you can multiply them together to produce
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`12`.
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However, you should instead use the standard list size of `256` (with
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values `0` to `255`) and the sequence of *lengths* in your puzzle input.
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Once this process is complete, *what is the result of multiplying the
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first two numbers in the list*?
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Your puzzle answer was `19591`.
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## \-\-- Part Two \-\-- {#part2}
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The logic you\'ve constructed forms a single *round* of the *Knot Hash*
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algorithm; running the full thing requires many of these rounds. Some
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input and output processing is also required.
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First, from now on, your input should be taken not as a list of numbers,
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but as a string of bytes instead. Unless otherwise specified, convert
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characters to bytes using their [ASCII
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codes](https://en.wikipedia.org/wiki/ASCII#Printable_characters). This
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will allow you to handle arbitrary ASCII strings, and it also ensures
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that your input lengths are never larger than `255`. For example, if you
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are given `1,2,3`, you should convert it to the ASCII codes for each
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character: `49,44,50,44,51`.
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Once you have determined the sequence of lengths to use, add the
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following lengths to the end of the sequence: `17, 31, 73, 47, 23`. For
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example, if you are given `1,2,3`, your final sequence of lengths should
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be `49,44,50,44,51,17,31,73,47,23` (the ASCII codes from the input
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string combined with the standard length suffix values).
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Second, instead of merely running one *round* like you did above, run a
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total of `64` rounds, using the same *length* sequence in each round.
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The *current position* and *skip size* should be preserved between
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rounds. For example, if the previous example was your first round, you
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would start your second round with the same *length* sequence
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(`3, 4, 1, 5, 17, 31, 73, 47, 23`, now assuming they came from ASCII
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codes and include the suffix), but start with the previous round\'s
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*current position* (`4`) and *skip size* (`4`).
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Once the rounds are complete, you will be left with the numbers from `0`
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to `255` in some order, called the *sparse hash*. Your next task is to
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reduce these to a list of only `16` numbers called the *dense hash*. To
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do this, use numeric bitwise
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[](https://en.wikipedia.org/wiki/Bitwise_operation#) to combine
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each consecutive block of `16` numbers in the sparse hash (there are
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`16` such blocks in a list of `256` numbers). So, the first element in
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the dense hash is the first sixteen elements of the sparse hash XOR\'d
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together, the second element in the dense hash is the second sixteen
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elements of the sparse hash XOR\'d together, etc.
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For example, if the first sixteen elements of your sparse hash are as
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shown below, and the XOR operator is `^`, you would calculate the first
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output number like this:
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65 ^ 27 ^ 9 ^ 1 ^ 4 ^ 3 ^ 40 ^ 50 ^ 91 ^ 7 ^ 6 ^ 0 ^ 2 ^ 5 ^ 68 ^ 22 = 64
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Perform this operation on each of the sixteen blocks of sixteen numbers
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in your sparse hash to determine the sixteen numbers in your dense hash.
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Finally, the standard way to represent a Knot Hash is as a single
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[hexadecimal](https://en.wikipedia.org/wiki/Hexadecimal) string; the
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final output is the dense hash in hexadecimal notation. Because each
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number in your dense hash will be between `0` and `255` (inclusive),
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always represent each number as two hexadecimal digits (including a
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leading zero as necessary). So, if your first three numbers are
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`64, 7, 255`, they correspond to the hexadecimal numbers `40, 07, ff`,
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and so the first six characters of the hash would be `4007ff`. Because
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every Knot Hash is sixteen such numbers, the hexadecimal representation
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is always `32` hexadecimal digits (`0`-`f`) long.
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Here are some example hashes:
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- The empty string becomes `a2582a3a0e66e6e86e3812dcb672a272`.
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- `AoC 2017` becomes `33efeb34ea91902bb2f59c9920caa6cd`.
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- `1,2,3` becomes `3efbe78a8d82f29979031a4aa0b16a9d`.
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- `1,2,4` becomes `63960835bcdc130f0b66d7ff4f6a5a8e`.
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Treating your puzzle input as a string of ASCII characters, *what is the
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Knot Hash of your puzzle input?* Ignore any leading or trailing
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whitespace you might encounter.
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Your puzzle answer was `62e2204d2ca4f4924f6e7a80f1288786`.
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Both parts of this puzzle are complete! They provide two gold stars:
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\*\*
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At this point, you should [return to your Advent calendar](/2017) and
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try another puzzle.
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If you still want to see it, you can [get your puzzle
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input](10/input).
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