SOTAVerified

Bayesian Inference

Bayesian Inference is a methodology that employs Bayes Rule to estimate parameters (and their full posterior).

Papers

Showing 13411350 of 2226 papers

TitleStatusHype
Non-linear fitting with joint spatial regularization in Arterial Spin Labeling0
Towards Flexible Sparsity-Aware Modeling: Automatic Tensor Rank Learning Using The Generalized Hyperbolic Prior0
Ramifications of Approximate Posterior Inference for Bayesian Deep Learning in Adversarial and Out-of-Distribution SettingsCode0
Bayesian Perceptron: Towards fully Bayesian Neural Networks0
β-Cores: Robust Large-Scale Bayesian Data Summarization in the Presence of OutliersCode0
The linear conditional expectation in Hilbert space0
Surrogate Model For Field Optimization Using Beta-VAE Based Regression0
Blindness of score-based methods to isolated components and mixing proportions0
Assessing Safety-Critical Systems from Operational Testing: A Study on Autonomous Vehicles0
Bayesian geoacoustic inversion using mixture density network0
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Benchmark Results

#ModelMetricClaimedVerifiedStatus
1F-SWAAccuracy83.61Unverified
2F-SWAGAccuracy80.93Unverified