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Two-level adaptive sampling for illumination integrals using Bayesian Monte Carlo

Marques, R.; Bouville, C.; Santos, Luís Paulo; Bouatouch, K.

Bayesian Monte Carlo (BMC) is a promising integration technique which considerably broadens the theoretical tools that can be used to maximize and exploit the information produced by sampling, while keeping the fundamental property of data dimension independence of classical Monte Carlo (CMC). Moreover, BMC uses information that is ignored in the CMC method, such as the position of the samples and prior stochas...


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