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Uncertainty Quantification

Papers

Showing 351400 of 2366 papers

TitleStatusHype
α-OCC: Uncertainty-Aware Camera-based 3D Semantic Occupancy Prediction0
A Critical Synthesis of Uncertainty Quantification and Foundation Models in Monocular Depth Estimation0
Flow Matching Meets PDEs: A Unified Framework for Physics-Constrained Generation0
Conformal Calibration: Ensuring the Reliability of Black-Box AI in Wireless Systems0
Conformalized-DeepONet: A Distribution-Free Framework for Uncertainty Quantification in Deep Operator Networks0
Conformalized-KANs: Uncertainty Quantification with Coverage Guarantees for Kolmogorov-Arnold Networks (KANs) in Scientific Machine Learning0
A Soft Sensor Method with Uncertainty-Awareness and Self-Explanation Based on Large Language Models Enhanced by Domain Knowledge Retrieval0
A Critical Analysis of Internal Reliability for Uncertainty Quantification of Dense Image Matching in Multi-view Stereo0
A Simple Approach to Improve Single-Model Deep Uncertainty via Distance-Awareness0
A generative foundation model for an all-in-one seismic processing framework0
Model-Free Kernel Conformal Depth Measures Algorithm for Uncertainty Quantification in Regression Models in Separable Hilbert Spaces0
Artificial Intelligence for Science in Quantum, Atomistic, and Continuum Systems0
A robustness measure for singular point and index estimation in discretized orientation and vector fields0
A generalized Bayes framework for probabilistic clustering0
A Risk-Aware Adaptive Robust MPC with Learned Uncertainty Quantification0
A Rigorous Uncertainty-Aware Quantification Framework Is Essential for Reproducible and Replicable Machine Learning Workflows0
A General Framework for Uncertainty Quantification via Neural SDE-RNN0
A Consistency-Based Loss for Deep Odometry Through Uncertainty Propagation0
Confident magnitude-based neural network pruning0
A Rigorous Link between Deep Ensembles and (Variational) Bayesian Methods0
A Bulirsch-Stoer algorithm using Gaussian processes0
ConfEviSurrogate: A Conformalized Evidential Surrogate Model for Uncertainty Quantification0
A Framework for Uncertainty Quantification Based on Nearest Neighbors Across Layers0
Are vision language models robust to uncertain inputs?0
Uncertainty Quantification with Statistical Guarantees in End-to-End Autonomous Driving Control0
Confidence Interval Construction and Conditional Variance Estimation with Dense ReLU Networks0
A review of uncertainty quantification in medical image analysis: probabilistic and non-probabilistic methods0
A Review of Uncertainty Quantification in Deep Learning: Techniques, Applications and Challenges0
A Framework for Supervised and Unsupervised Segmentation and Classification of Materials Microstructure Images0
A review of deep learning in medical imaging: Imaging traits, technology trends, case studies with progress highlights, and future promises0
A Review of Bayesian Uncertainty Quantification in Deep Probabilistic Image Segmentation0
A Framework for Strategic Discovery of Credible Neural Network Surrogate Models under Uncertainty0
A computational spectral approach to interest rate models0
Confidence Intervals and Simultaneous Confidence Bands Based on Deep Learning0
Confident or Seek Stronger: Exploring Uncertainty-Based On-device LLM Routing From Benchmarking to Generalization0
Are generative models fair? A study of racial bias in dermatological image generation0
A recursive Bayesian neural network for constitutive modeling of sands under monotonic loading0
A framework for benchmarking uncertainty in deep regression0
A Fast, Reliable, and Secure Programming Language for LLM Agents with Code Actions0
A Comprehensive Review of Digital Twin -- Part 2: Roles of Uncertainty Quantification and Optimization, a Battery Digital Twin, and Perspectives0
Conditional Shift-Robust Conformal Prediction for Graph Neural Network0
Arbitrarily-Conditioned Multi-Functional Diffusion for Multi-Physics Emulation0
A Comprehensive Review of Digital Twin -- Part 1: Modeling and Twinning Enabling Technologies0
Uncertainty quantification with approximate variational learning for wearable photoplethysmography prediction tasks0
Bridging the gap: Towards an Expanded Toolkit for AI-driven Decision-Making in the Public Sector0
Exchangeable Sequence Models Quantify Uncertainty Over Latent Concepts0
Composing Normalizing Flows for Inverse Problems0
Conditional Uncertainty Quantification for Tensorized Topological Neural Networks0
Bridging the Gap Between Explainable AI and Uncertainty Quantification to Enhance Trustability0
Bridging Data-Driven and Physics-Based Models: A Consensus Multi-Model Kalman Filter for Robust Vehicle State Estimation0
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