Publication | Open Access
Exact and Computationally Efficient Likelihood-Based Estimation for Discretely Observed Diffusion Processes (with Discussion)
348
Citations
83
References
2006
Year
Observed DiffusionsBayesian StatisticsDensity EstimationEngineeringDiffusion ProcessBayesian MethodsStatistical InferenceMarkov Chain Monte CarloMonte Carlo SamplingPublic HealthEstimation TheoryAnomalous DiffusionSequential Monte CarloStatisticsDiffusion-based ModelingMaximum LikelihoodNovel Methodology
Summary The objective of the paper is to present a novel methodology for likelihood-based inference for discretely observed diffusions. We propose Monte Carlo methods, which build on recent advances on the exact simulation of diffusions, for performing maximum likelihood and Bayesian estimation.
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