ABC random forests for Bayesian parameter inference.

Louis Raynal1, Jean-Michel Marin1,2, Pierre Pudlo3

  • 1IMAG, Univ Montpellier, CNRS, Montpellier, France.

Summary

This study introduces a novel likelihood-free Bayesian inference method using random forests, eliminating the need for prior summary statistics selection and tolerance calibration. The approach enhances robustness and offers a good balance between precision and computational efficiency for complex models.

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