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A142996
a(0) = 0, a(1) = 1, a(n+1) = (2*n^2+2*n+7)*a(n) - n^4*a(n-1), n >= 1.
3
0, 1, 11, 193, 5092, 189916, 9541872, 622179216, 51129292032, 5172077028096, 631719119232000, 91679469784704000, 15596136686979072000, 3074102117690701824000, 695050625746441101312000
OFFSET
0,3
COMMENTS
This is the case m = 2 of the general recurrence a(0) = 0, a(1) = 1, a(n+1) = (2*n^2+2*n+m^2+m+1 )*a(n) - n^4*a(n-1) (we suppress the dependence of a(n) on m), which arises when accelerating the convergence of the series sum {k = 1..inf} 1/k^2 for the constant zeta(2). See A142995 for remarks on the general case.
REFERENCES
Bruce C. Berndt, Ramanujan's Notebooks Part II, Springer-Verlag.
FORMULA
a(n) = n!^2*p(n)*sum {k = 1..n} 1/(k^2*p(k-1)*p(k)), where p(n) = 3*n^2+3*n+1 = A003215(n) is the polynomial that gives the crystal ball sequence for the A_2 lattice. Recurrence: a(0) = 0, a(1) = 1, a(n+1) = (2*n^2+2*n+7)*a(n) - n^4*a(n-1). The sequence b(n):= n!^2*p(n) satisfies the same recurrence with b(0) = 1, b(1) = 7. Hence we obtain the finite continued fraction expansion a(n)/b(n) = 1/(7-1^4/(11-2^4/(19-3^4/(31-...-(n-1)^4/(2*n^2-2*n+7))))), for n >=2. Thus the behavior of a(n) for large n is given by lim n -> infinity a(n)/b(n) = 1/(7-1^4/(11-2^4/(19-3^4/(31-...-n^4/((2n^2+2n+7)-...))))) = sum {k = 1..inf} 1/(k^2*(9*k^4-3*k^2+1)) = zeta(2)-2*(1-1/4). The final equality follows from a result of Ramanujan; see [Berndt, Chapter 12, Corollary to Entry 31] (replace x by 2x+1 in the corollary and apply Entry 14).
MAPLE
p := n -> 3*n^2+3*n+1: a := n -> n!^2*p(n)*sum (1/(k^2*p(k-1)*p(k)), k = 1..n): seq(a(n), n = 0..20);
MATHEMATICA
RecurrenceTable[{a[0]==0, a[1]==1, a[n+1]==(2n^2+2n+7)a[n]-n^4 a[n-1]}, a, {n, 20}] (* Harvey P. Dale, Jun 27 2017 *)
CROSSREFS
KEYWORD
easy,nonn
AUTHOR
Peter Bala, Jul 18 2008
STATUS
approved