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      An Open-source Bayesian Atmospheric Radiative Transfer (BART) Code. III. Initialization, Atmospheric Profile Generator, Post-processing Routines

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          Abstract

          This and companion papers by Harrington et al. and Cubillos et al. describe an open-source retrieval framework, Bayesian Atmospheric Radiative Transfer ( BART), available to the community under the reproducible-research license via https://github.com/exosports/BART. BART is a radiative transfer code (transit; https://github.com/exosports/transit; Rojo et al.), initialized by the Thermochemical Equilibrium Abundances (TEA; https://github.com/dzesmin/TEA) code (Blecic et al.), and driven through the parameter phase space by a differential-evolution Markov Chain Monte Carlo (MC3; https://github.com/pcubillos/mc3) sampler (Cubillos et al.). In this paper we give a brief description of the framework and its modules that can be used separately for other scientific purposes; outline the retrieval analysis flow; present the initialization routines, describing in detail the atmospheric profile generator and the temperature and species parameterizations; and specify the post-processing routines and outputs, concentrating on the spectrum band integrator, the best-fit model selection, and the contribution functions. We also present an atmospheric analysis of WASP-43b secondary eclipse data obtained from space- and ground-based observations. We compare our results with the results from the literature and investigate how the inclusion of additional opacity sources influences the best-fit model.

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          Inference from Iterative Simulation Using Multiple Sequences

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            The Chemical Composition of the Sun

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              An Algorithm for Least-Squares Estimation of Nonlinear Parameters

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                Journal
                The Planetary Science Journal
                Planet. Sci. J.
                American Astronomical Society
                2632-3338
                April 18 2022
                April 01 2022
                April 18 2022
                April 01 2022
                : 3
                : 4
                : 82
                Article
                10.3847/PSJ/ac3515
                70873c4a-0b65-4e8d-8b47-d44e28e55365
                © 2022

                http://creativecommons.org/licenses/by/4.0/

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