SOTAVerified

Bayesian Inference

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

Papers

Showing 19762000 of 2226 papers

TitleStatusHype
Constrained belief updates explain geometric structures in transformer representations0
Constrained Gaussian Process Motion Planning via Stein Variational Newton Inference0
Constrained plasticity reserve as a natural way to control frequency and weights in spiking neural networks0
Constraining subglacial processes from surface velocity observations using surrogate-based Bayesian inference0
Consumer Demand Modeling During COVID-19 Pandemic0
Contextual Similarity Distillation: Ensemble Uncertainties with a Single Model0
Contributions to Large Scale Bayesian Inference and Adversarial Machine Learning0
Convolutional Graph Auto-encoder: A Deep Generative Neural Architecture for Probabilistic Spatio-temporal Solar Irradiance Forecasting0
Cooperative Bayesian and variance networks disentangle aleatoric and epistemic uncertainties0
Cooperative Multi-Cell Massive Access with Temporally Correlated Activity0
Copula Processes0
Regularizing Explanations in Bayesian Convolutional Neural Networks0
Correcting Mode Proportion Bias in Generalized Bayesian Inference via a Weighted Kernel Stein Discrepancy0
Correntropy-Based Improper Likelihood Model for Robust Electrophysiological Source Imaging0
Cortical Microcircuits from a Generative Vision Model0
Cross-modal Variational Auto-encoder with Distributed Latent Spaces and Associators0
Cycle-Consistent Adversarial Learning as Approximate Bayesian Inference0
DART: Depth-Enhanced Accurate and Real-Time Background Matting0
Data augmentation in Bayesian neural networks and the cold posterior effect0
Data fission: splitting a single data point0
Physics-constrained Bayesian inference of state functions in classical density-functional theory0
Data-Driven Verification under Signal Temporal Logic Constraints0
Data-Informed Decomposition for Localized Uncertainty Quantification of Dynamical Systems0
A Dataset-free Deep learning Method for Low-Dose CT Image Reconstruction0
Decentralized Bayesian Learning over Graphs0
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Benchmark Results

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