%I #15 Jul 05 2019 16:01:32
%S 211,281,421,691,881,991,1031,1151,1511,1871,1951,2591,3251,3851,4391,
%T 4651,4691,4751,4871,5381,5531,5591,5801,6011,6101,6211,6271,6491,
%U 7211,7451,8011,8171,8831,8861,9011,9091,9241,9371,9431,9931,10061,10391,10531,10691
%N Primes p such that A001175(p) = (p-1)/5.
%C Primes p such that ord((1+sqrt(5))/2,p) = (p-1)/5, where ord(z,p) is the smallest integer k > 0 such that (z^k-1)/p is an algebraic integer.
%C Let {T(n)} be a sequence defined by T(0) = 0, T(1) = 1, T(n) = k*T(n-1) + T(n-2), K be the quadratic field Q[sqrt(k^2+4)], O_K be the ring of integer of K, u = (k+sqrt(k^2+4))/2. For a prime p not dividing k^2 + 4, the Pisano period of {T(n)} modulo p (that is, the smallest m > 0 such that T(n+m) == T(n) (mod p) for all n) is ord(u,p); the entry point of {T(n)} modulo p (that is, the smallest m > 0 such that T(m) == 0 (mod p)) is ord(-u^2,p).
%C For an odd prime p:
%C (a) if p decomposes in K, then (O_K/pO_K)* (the multiplicative group of O_K modulo p) is congruent to C_(p-1) X C_(p-1), so the Pisano period of {T(n)} modulo p is equal to (p-1)/s, s = 1, 2, 3, 4, ...;
%C (b) if p is inert in K, then u^(p+1) == -1 (mod p), so the Pisano period of {T(n)} modulo p is equal to 2*(p+1)/r, r = 1, 3, 5, 7, ...
%C Here k = 1, and this sequence gives primes such that (a) holds and s = 5.
%C Number of terms below 10^N:
%C N | Number | Decomposing primes*
%C 3 | 6 | 78
%C 4 | 40 | 609
%C 5 | 280 | 4777
%C 6 | 2289 | 39210
%C 7 | 18903 | 332136
%C 8 | 163395 | 2880484
%C * Here "Decomposing primes" means primes such that Legendre(5,p) = 1, i.e., p == 1, 4 (mod 5).
%t pn[n_] := For[k = 1, True, k++, If[Mod[Fibonacci[k], n] == 0 && Mod[Fibonacci[k + 1], n] == 1, Return[k]]];
%t Reap[For[p = 2, p < 11000, p = NextPrime[p], If[Mod[p, 5] == 1, If[pn[p] == (p - 1)/5, Print[p]; Sow[p]]]]][[2, 1]] (* _Jean-François Alcover_, Jul 05 2019 *)
%o (PARI) Pisano_for_decomposing_prime(p) = my(k=1, M=[k, 1; 1, 0], Id=[1, 0; 0, 1]); if(isprime(p)&&kronecker(k^2+4,p)==1, my(v=divisors(p-1)); for(d=1, #v, if(Mod(M,p)^v[d]==Id, return(v[d]))))
%o forprime(p=2, 11000, if(Pisano_for_decomposing_prime(p)==(p-1)/5, print1(p, ", ")))
%Y Similar sequences that give primes such that (a) holds: A003147/{5} (s=1), A308787 (s=2), A308788 (s=3), A308789 (s=4), this sequence (s=5), A308791 (s=6), A308792 (s=7), A308793 (s=8), A308794 (s=9).
%K nonn
%O 1,1
%A _Jianing Song_, Jun 25 2019