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Search: id:A007889
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| A007889 |
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Number of intransitive (or alternating) trees: vertices are [0,n] and for no i<j<k are both (i,j) and (j,k) edges. |
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+0
6
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| 1, 1, 2, 7, 36, 246, 2104, 21652, 260720, 3598120, 56010096, 971055240, 18558391936, 387665694976, 8787898861568, 214868401724416, 5636819806209792, 157935254554567296, 4707152127520549120, 148704074888134683520
(list; graph; listen)
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OFFSET
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0,3
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COMMENT
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Number of local binary search trees (i.e. labeled binary trees such that every left child has a smaller label than its parent and every right child has a larger label than its parent) on n vertices. Example: a(3)=7 because we have 3L2L1, 2L1R3, 3L1R2, 1R2R3, 1R3L2, 2R3L1 (Li means left child labeled i, RI means right child labeled i) and root 2 with left child 1 and right child 3. - Emeric Deutsch (deutsch(AT)duke.poly.edu), Nov 24 2004
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REFERENCES
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C. Chauve, S. Dulucq and A. Rechnitzer, Enumerating alternating trees, J. Combin. Theory Ser. A 94 (2001), 142-151.
I. M. Gelfand, M. I. Graev and A. Postnikov, Combinatorics of hypergeometric functions associated with positive roots, in Arnold-Gelfand Mathematical Seminars: Geometry and Singularity Theory, Birkhauser, 1997.
A. Postnikov, Intransitive Trees, J. Combin. Theory Ser. A 79 (1997), 360-366.
R. P. Stanley, Enumerative Combinatorics, Cambridge, Vol. 2, 1999; see Problem 5.41(a).
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LINKS
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A. Postnikov, home page
Index entries for sequences related to trees
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FORMULA
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E.g.f. satisfies: A(x) = exp( x*(1 + A(x))/2 ). E.g.f. A(x) equals the inverse function of 2*log(x)/(1+x). - Paul D. Hanna (pauldhanna(AT)juno.com), Mar 29 2008
E.g.f.: -2/x*LambertW(-1/2*x*exp(1/2*x)). - Vladeta Jovovic (vladeta(AT)eunet.rs), Mar 29 2008
Comments from Vladeta Jovovic and Paul D. Hanna, Apr 03 2008 (Start): Powers of e.g.f.: If A(x)^p = Sum_{n>=0} a(n,p)*x^n/n! then a(n,p) = (1/2^n)* Sum_{k=0..n} binomial(n,k)*p*(k+p)^(n-1).
Let A(x) = e.g.f. of A007889, B(x) = e.g.f. of A138860 where B(x) = exp( x*[B(x) + B(x)^2]/2 ); then B(x) = A(x*B(x)) = (1/x)*Series_Reversion(x/A(x)) and A(x) = B(x/A(x)) = x/Series_Reversion(x*B(x)). (End)
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MAPLE
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f := (n)->1/(2^n*(n+1))*sum(binomial(n+1, k)*k^n, 'k'=1..(n+1));
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PROGRAM
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(PARI) {a(n)=local(A=1+x); for(i=0, n, A=exp(x*(1+A)/2 +x*O(x^n))); n!*polcoeff(A, n)} - Paul D. Hanna (pauldhanna(AT)juno.com), Mar 29 2008
(PARI) /* Coefficients of A(x)^p are given by: */ {a(n, p=1)=(1/2^n)*sum(k=0, n, binomial(n, k)*p*(k+p)^(n-1))} - Vladeta Jovovic and Paul D. Hanna, Apr 03 2008
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CROSSREFS
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Cf. A038049.
Cf. A138860.
Sequence in context: A095793 A029768 A167199 this_sequence A125033 A034430 A143805
Adjacent sequences: A007886 A007887 A007888 this_sequence A007890 A007891 A007892
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KEYWORD
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nonn,easy,nice
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AUTHOR
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Alexander Postnikov [ apost(AT)math.mit.edu ]
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