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Titlebook: Algorithms in Bioinformatics; First International Olivier Gascuel,Bernard M. E. Moret Conference proceedings 2001 Springer-Verlag Berlin H

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S. Zimny,U. Waldecker,A. Eckardthow that the problem can be solved in .(2. . .) time, where . is the number of taxa in each tree, and every node in every tree has at most . children. Hence, a maximum compatible tree for . unrooted trees can be found in in .(2. . .) time.
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S. Morbach,G. Rümenapf,R. Lobmannpportunities for discoveries about deep evolutionary rearrangement events, provided that sufficiently accurate methods can be developed to reconstruct evolutionary trees in these models [.,.,.,.]. A necessary component of any such method is the ability to accurately estimate the . between two genome
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https://doi.org/10.1007/3-540-27609-2 symmetric model of substitution. For identically distributed rates per site this is probably the simplest phylogenetic estimation problem, and it is readily solved numerically. Analytic solutions, on the other hand, were obtained only recently (Yang, 2000)..In this work we provide analytic solution
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Versorgungsstrukturen in der Zukunft,tudy presents theoretically obtained convergence rates, as well as an empirical study based upon simulation of evolution on random birth-death trees. We find that the new phylogenetic methods offer an advantage over the neighbor-joining method, except at low rates of evolution where they have compar
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Versorgungsstrukturen in der Zukunft,om the point of view of computational molecular biology, a more adequate objective function is obtained, if transpositions are given double weight. We present a (1 + ε)-approximation for this problem, based on the exact algorithm of Hannenhalli and Pevzner, for sorting by reversals only.
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