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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 101150 of 309 papers

TitleStatusHype
Computation of Ultra-Short-Term Prediction Intervals of the Power Prosumption in Active Distribution Networks0
Context-Based Echo State Networks with Prediction Confidence for Human-Robot Shared Control0
Conformal Prediction Interval Estimations with an Application to Day-Ahead and Intraday Power Markets0
Crop yield probability density forecasting via quantile random forest and Epanechnikov Kernel function0
Conformal Prediction in Learning Under Privileged Information Paradigm with Applications in Drug Discovery0
Data-Driven Personalized Energy Consumption Range Estimation for Plug-in Hybrid Electric Vehicles in Urban Traffic0
Data-Driven vs Traditional Approaches to Power Transformer's Top-Oil Temperature Estimation0
Learning Prediction Intervals for Regression: Generalization and Calibration0
Kernel-based Optimally Weighted Conformal Prediction Intervals0
Conformal Prediction for Manifold-based Source Localization with Gaussian Processes0
Adaptive, Distribution-Free Prediction Intervals for Deep Networks0
Density-Calibrated Conformal Quantile Regression0
Confidence intervals for class prevalences under prior probability shift0
Development and Evaluation of Conformal Prediction Methods for QSAR0
Accurate and Reliable Forecasting using Stochastic Differential Equations0
Discriminative Learning of Prediction Intervals0
Disease Momentum: Estimating the Reproduction Number in the Presence of Superspreading0
Confidence-Nets: A Step Towards better Prediction Intervals for regression Neural Networks on small datasets0
Learn-By-Calibrating: Using Calibration as a Training Objective0
Lifted Coefficient of Determination: Fast model-free prediction intervals and likelihood-free model comparison0
Conformal Prediction for Electricity Price Forecasting in the Day-Ahead and Real-Time Balancing Market0
Distribution-free risk assessment of regression-based machine learning algorithms0
Interpretable Machines: Constructing Valid Prediction Intervals with Random Forests0
Bin-Conditional Conformal Prediction of Fatalities from Armed Conflict0
Efficiency of conformalized ridge regression0
Conformal forecasting for surgical instrument trajectory0
An Empirical Analysis of Constrained Support Vector Quantile Regression for Nonparametric Probabilistic Forecasting of Wind Power0
Interval Load Forecasting for Individual Households in the Presence of Electric Vehicle Charging0
Adaptive Conformal Regression with Jackknife+ Rescaled Scores0
Beta quantile regression for robust estimation of uncertainty in the presence of outliers0
Inductive Conformal Prediction under Data Scarcity: Exploring the Impacts of Nonconformity Measures0
A Minimax-MDP Framework with Future-imposed Conditions for Learning-augmented Problems0
Forecast with Forecasts: Diversity Matters0
Individualised Counterfactual Examples Using Conformal Prediction Intervals0
Interpretable Battery Cycle Life Range Prediction Using Early Degradation Data at Cell Level0
Joint Prediction Regions for time-series models0
Conformalized Interactive Imitation Learning: Handling Expert Shift and Intermittent Feedback0
Guaranteed Coverage Prediction Intervals with Gaussian Process Regression0
How to Evaluate Uncertainty Estimates in Machine Learning for Regression?0
Improved conformalized quantile regression0
Failures and Successes of Cross-Validation for Early-Stopped Gradient Descent0
Extreme Conformal Prediction: Reliable Intervals for High-Impact Events0
A Wireless Foundation Model for Multi-Task Prediction0
Foundation models for time series forecasting: Application in conformal prediction0
Conformalized-KANs: Uncertainty Quantification with Coverage Guarantees for Kolmogorov-Arnold Networks (KANs) in Scientific Machine Learning0
From Conformal Predictions to Confidence Regions0
Extrapolation to complete basis-set limit in density-functional theory by quantile random-forest models0
From predictions to confidence intervals: an empirical study of conformal prediction methods for in-context learning0
Exploring Uncertainty in Deep Learning for Construction of Prediction Intervals0
A Composite Quantile Fourier Neural Network for Multi-Step Probabilistic Forecasting of Nonstationary Univariate Time Series0
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