Skelet 26
1RB1LD_1RC0RB_1LA1RC_1LE0LA_1LC--- (bbch), called Skelet #26, was one of Skelet's 43 holdouts and one of the last holdouts in BB(5). It is a Shift overflow counter and has an individual proof of non-halting in Coq-BB5.[1] It is equivalent to Skelet 15.
Skelet 26 was proven to be non-halting in January 2024 by int-y1 and meithecatte.[2]
Analysis by Shawn Ligocki
https://www.sligocki.com/2023/02/05/shift-overflow.html
L(2k) = L(k) 0000
L(2k+1) = L(k) 0001
D(n, a, m) = L(n) 000 <C 101a R(m)
E(n, a, m) = L(n) 00 <C 101a R(m)
F(n, a, m) = L(n) 0 <C 101a R(m)
G(n, a, m) = L(n) <C 101a R(m)
D(n, a, m) -> D(n+1, a, m+1) (if b(m) > 1)
L(n) 000 <C -> L(n+1) 000 B>
1000 <C -> <C 1111
0000 <C -> 1000 B>
E> R(n) -> <C R(n+1)
E> 11 -> 11 E>
E> 10 -> <C 11
11 <C -> <C 10
B> 1010 -> 1111 E>
1111 <C -> <C 1010
B> 1011 -> 0111 E>
0111 <C -> <C 1011
D(n-1, 0, 2^k - 1) -> E(n, 1, 2^k)
0 1111 E> 11^k 0 -> <C 1011 10^k 11
E(n, a, m) -> E(n', 1, m') (if b(m) > n) (n' < n)
0100 0000^k <C 101a R(m) -> 0100 1000^k <C 101a R(m + 2^k - 1)
0100 1000^k <C 101a R(m + 2^k - 1) -> <C 1011 10^2k 11 1a R(m + 2^k - 1)
D(n-1, 1, 2^k - 1) -> G(2n, 0, 2^{k-1})
1000 0000^n 0111 E> 11^m+1 0 -> 01 0000^n+1 <C 1010 10^m 11
G(n, a, m) -> E(n', a', m') (if b(m) > n) (n' < n)
01 0000^k <C 101a R(m) -> <C 10 10^2k 11 1a R(m + 2^k - 1)
Start -> D(0, 0, 11) @ Step 85
Skelet 15
1RB---_1RC1LB_1LD1RE_1LB0LD_1RA0RC (bbch), also called Skelet #15 is equivalent to Skelet 26. It was proven to be non-halting together with Skelet 26 in January 2024 by int-y1 and meithecatte.[2]