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Optimal scaling of random-walk Metropolis algorithms using Bayesian
  large-sample asymptotics
v1v2v3 (latest)

Optimal scaling of random-walk Metropolis algorithms using Bayesian large-sample asymptotics

13 April 2021
Sebastian M. Schmon
Philippe Gagnon
ArXiv (abs)PDFHTML

Papers citing "Optimal scaling of random-walk Metropolis algorithms using Bayesian large-sample asymptotics"

6 / 6 papers shown
Title
Accelerating Bayesian inference for stochastic epidemic models using
  incidence data
Accelerating Bayesian inference for stochastic epidemic models using incidence data
Andrew Golightly
L. Wadkin
Sam A. Whitaker
A. Baggaley
N. G. Parker
T. Kypraios
58
6
0
27 Mar 2023
Improving multiple-try Metropolis with local balancing
Improving multiple-try Metropolis with local balancing
Philippe Gagnon
Florian Maire
Giacomo Zanella
78
11
0
21 Nov 2022
Amortised Likelihood-free Inference for Expensive Time-series Simulators
  with Signatured Ratio Estimation
Amortised Likelihood-free Inference for Expensive Time-series Simulators with Signatured Ratio Estimation
Joel Dyer
Patrick W Cannon
Sebastian M. Schmon
101
9
0
23 Feb 2022
Black-box Bayesian inference for economic agent-based models
Black-box Bayesian inference for economic agent-based models
Joel Dyer
Patrick W Cannon
J. Farmer
Sebastian M. Schmon
107
24
0
01 Feb 2022
Approximate Bayesian Computation with Path Signatures
Approximate Bayesian Computation with Path Signatures
Joel Dyer
Patrick W Cannon
Sebastian M. Schmon
115
16
0
23 Jun 2021
Optimal Scaling of MCMC Beyond Metropolis
Optimal Scaling of MCMC Beyond Metropolis
Sanket Agrawal
Dootika Vats
K. Łatuszyński
Gareth O. Roberts
73
11
0
05 Apr 2021
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