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      AWTY (are we there yet?): a system for graphical exploration of MCMC convergence in Bayesian phylogenetics.

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          Abstract

          A key element to a successful Markov chain Monte Carlo (MCMC) inference is the programming and run performance of the Markov chain. However, the explicit use of quality assessments of the MCMC simulations-convergence diagnostics-in phylogenetics is still uncommon. Here, we present a simple tool that uses the output from MCMC simulations and visualizes a number of properties of primary interest in a Bayesian phylogenetic analysis, such as convergence rates of posterior split probabilities and branch lengths. Graphical exploration of the output from phylogenetic MCMC simulations gives intuitive and often crucial information on the success and reliability of the analysis. The tool presented here complements convergence diagnostics already available in other software packages primarily designed for other applications of MCMC. Importantly, the common practice of using trace-plots of a single parameter or summary statistic, such as the likelihood score of sampled trees, can be misleading for assessing the success of a phylogenetic MCMC simulation.

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          Author and article information

          Journal
          Bioinformatics
          Bioinformatics (Oxford, England)
          Oxford University Press (OUP)
          1367-4811
          1367-4803
          Feb 15 2008
          : 24
          : 4
          Affiliations
          [1 ] School of Computational Sciences, Florida State University, Tallahassee, Florida 32306, USA.
          Article
          btm388
          10.1093/bioinformatics/btm388
          17766271
          d8070b2e-3728-43bf-b278-eb2f32ead51a
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