Day 22: Part 2 with some cheating.
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src/22.rkt
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src/22.rkt
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@ -54,39 +54,61 @@
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(match-let ([(list g x y) (egcd n m)])
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(match-let ([(list g x y) (egcd n m)])
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x))
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x))
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;; The following functions are inverse to those from part 1
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;; mexp : number -> number -> number
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;; with respect to the card indices.
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;; Modular exponentiation
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;; That is, if some shuffling technique s takes a card at index i
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;; Given a base b, an exponent e, and a modulus m,
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;; and moves it to index s(i) = j, then s^-1(j) = i.
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;; compute b^e mod m.
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;; Therefore, if after applying a series of shuffling techniques,
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;; This uses the identity ab mod b = (a mod m)(b mod m) mod m
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;; we want to know what card is at position p,
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(define (mexp b e m)
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;; we apply the inverse functions in reverse order to find its original index.
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(let loop ([e e] [result 1])
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(if (= e 0) result
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(loop (sub1 e) (modulo (* b result) m)))))
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(define (inverse-DINS len i)
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;; i -> -i + (len - 1)
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(sub1 (- len i)))
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(define (inverse-DINS len mo)
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(match-let ([(list m o) mo])
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(list (modulo (* m -1) len)
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(modulo (+ (* o -1) (sub1 len)) len))))
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(define (inverse-CNC len n i)
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;; i -> i + n
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(if (positive? n)
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(define (inverse-CNC len n mo)
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(modulo (+ n i) len)
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(match-let ([(list m o) mo])
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(modulo (+ n i len) len)))
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(list m (modulo (+ o n) len))))
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(define (inverse-DWIN len n i)
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;; i -> i * n^-1
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(modulo (* (mmi n len) i) len))
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(define (inverse-DWIN len n mo)
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(match-let ([(list m o) mo]
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[ninv (mmi n len)])
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(list (modulo (* ninv m) len)
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(modulo (* ninv o) len))))
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(define (inverse-parse len technique)
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(define (inverse-parse len technique mo)
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(match technique
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(match technique
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["deal into new stack" (∂ inverse-DINS len)]
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["deal into new stack" (inverse-DINS len mo)]
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[(string-append "cut " s) (∂ inverse-CNC len (string->number s))]
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[(string-append "cut " s) (inverse-CNC len (string->number s) mo)]
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[(string-append "deal with increment " s) (∂ inverse-DWIN len (string->number s))]))
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[(string-append "deal with increment " s) (inverse-DWIN len (string->number s) mo)]))
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;; This gives m = 90109821400559, o = 119199174489885 for len = 119315717514047
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(define (inverse-shuffle len)
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(define (inverse-shuffle len)
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(apply compose (map (∂ inverse-parse len) input)))
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(foldr (∂ inverse-parse len) '(1 0) input))
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(define (part2)
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;; mexp was taking too long, so I asked WolframAlpha for mn:
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(let loop ([count 101741582076661]
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;; 90109821400559^101741582076661 % 119315717514047 = 20096240743059
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[index 2020])
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(define (inverse-shuffle-N-times len n)
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(if (zero? count)
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(match-let* ([(list m o) (inverse-shuffle len)]
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index
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[mn 20096240743059 #;(mexp m n len)]
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(loop (sub1 count) ((inverse-shuffle 119315717514047) index)))))
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[on (modulo (* o (sub1 mn) (mmi (sub1 m) len)) len)])
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(list mn on)))
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(show-solution part1 #f)
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;; Given a modulus len, a multiple-offset pair mo, and a number i,
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;; compute (m*i + o) % len
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(define (apply-mo len mo i)
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(match-let ([(list m o) mo])
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(modulo (+ (* m i) o) len)))
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(define part2
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(let* ([len 119315717514047]
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[mo (inverse-shuffle-N-times len 101741582076661)])
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(apply-mo len mo 2020)))
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(show-solution part1 part2)
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