Papers › aeons: approximating the end of nested sampling
aeons: approximating the end of nested sampling
Zixiao Hu, Artem Baryshnikov, Will Handley
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This paper presents analytic results on the anatomy of nested sampling, from which a technique is developed to estimate the run-time of the algorithm that works for any nested sampling implementation. We test these methods on both toy models and true cosmological nested sampling runs. The method gives an order-of-magnitude prediction of the end point at all times, forecasting the true endpoint within standard error around the halfway point.
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