this post was submitted on 12 Dec 2023
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Advent Of Code
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An unofficial home for the advent of code community on programming.dev!
Advent of Code is an annual Advent calendar of small programming puzzles for a variety of skill sets and skill levels that can be solved in any programming language you like.
AoC 2023
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console.log('Hello World')
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I don't think there are many significant optimizations with regards to reducing the search tree. It took me long enough to get behind it, but the "solution" (not saying there aren't other ways) to part 2 is to not calculate anything more than once. Instead put partial solutions in a dict indexed by the current state and use that cached value if you need it again.
It seems like you are actually constructing all rows with replaced
?
. This won't be viable for part 2, your memory usage will explode. I have a recursive function that calls itself twice whenever a?
is encountered, once assuming it's a.
, and once a#
.Memory is fine but I think I get what you mean. In the example:
I'm checking the second unknowns combinations for each of the first, but if my state was say
And I get 4 combinations from recursion then, I know that is the same number of combination for any of the first unknowns.
So I can then cache
".????.###",[1,3] -> 4
.