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Prediction Intervals

A prediction interval is an estimate of an interval in which a future observation will fall, with a certain probability, given what has already been observed. Prediction intervals are often used in regression analysis.

Papers

Showing 151200 of 309 papers

TitleStatusHype
Reliable Prediction Intervals for Local Linear Regression0
Reliable Prediction Intervals with Directly Optimized Inductive Conformal Regression for Deep Learning0
Reliable Prediction Intervals with Regression Neural Networks0
Ridge Regression Revisited: Debiasing, Thresholding and Bootstrap0
Scalable computation of prediction intervals for neural networks via matrix sketching0
Scalable Subsampling Inference for Deep Neural Networks0
SEF: A Method for Computing Prediction Intervals by Shifting the Error Function in Neural Networks0
Segmentation-Guided CT Synthesis with Pixel-Wise Conformal Uncertainty Bounds0
Selecting informative conformal prediction sets with false coverage rate control0
Sequential inductive prediction intervals0
Short-term bus travel time prediction for transfer synchronization with intelligent uncertainty handling0
Sparse high-dimensional linear regression with a partitioned empirical Bayes ECM algorithm0
Sparse Variational Contaminated Noise Gaussian Process Regression with Applications in Geomagnetic Perturbations Forecasting0
Spatial Conformal Inference through Localized Quantile Regression0
Stability of Random Forests and Coverage of Random-Forest Prediction Intervals0
STACI: Spatio-Temporal Aleatoric Conformal Inference0
Statistical Verification of Autonomous Systems using Surrogate Models and Conformal Inference0
Statistics and Deep Learning-based Hybrid Model for Interpretable Anomaly Detection0
A Nonparametric Approach with Marginals for Modeling Consumer Choice0
The WayHome: Long-term Motion Prediction on Dynamically Scaled0
Ensembled Prediction Intervals for Causal Outcomes Under Hidden Confounding0
Tight Prediction Intervals Using Expanded Interval Minimization0
tspDB: Time Series Predict DB0
Transformation Forests0
Uncertainty-Aware Online Extrinsic Calibration: A Conformal Prediction Approach0
Uncertainty-enabled machine learning for emulation of regional sea-level change caused by the Antarctic Ice Sheet0
Uncertainty measurement for complex event prediction in safety-critical systems0
Uncertainty Prediction for Machine Learning Models of Material Properties0
Uncertainty Quantification in Ensembles of Honest Regression Trees using Generalized Fiducial Inference0
Uncertainty Quantification in Synthetic Controls with Staggered Treatment Adoption0
Uncertainty Quantification of Wind Gust Predictions in the Northeast US: An Evidential Neural Network and Explainable Artificial Intelligence Approach0
Uncertainty Quantification Techniques for Space Weather Modeling: Thermospheric Density Application0
Unveil Sources of Uncertainty: Feature Contribution to Conformal Prediction Intervals0
Urban Traffic Forecasting with Integrated Travel Time and Data Availability in a Conformal Graph Neural Network Framework0
Using neural ordinary differential equations to predict complex ecological dynamics from population density data0
UTOPIA: Universally Trainable Optimal Prediction Intervals Aggregation0
Wasserstein Generative Regression0
Will My Robot Achieve My Goals? Predicting the Probability that an MDP Policy Reaches a User-Specified Behavior Target0
Zadeh's Type-2 Fuzzy Logic Systems: Precision and High-Quality Prediction Intervals0
Denoising ESG: quantifying data uncertainty from missing data with Machine Learning and prediction intervals0
Density-Calibrated Conformal Quantile Regression0
Development and Evaluation of Conformal Prediction Methods for QSAR0
Diffusion-based Time Series Forecasting for Sewerage Systems0
Discriminative Learning of Prediction Intervals0
Disease Momentum: Estimating the Reproduction Number in the Presence of Superspreading0
Distribution-Driven Disjoint Prediction Intervals for Deep Learning0
Distribution-free risk assessment of regression-based machine learning algorithms0
DST-TransitNet: A Dynamic Spatio-Temporal Deep Learning Model for Scalable and Efficient Network-Wide Prediction of Station-Level Transit Ridership0
Efficiency of conformalized ridge regression0
Efficient Normalized Conformal Prediction and Uncertainty Quantification for Anti-Cancer Drug Sensitivity Prediction with Deep Regression Forests0
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