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Jun, 2023
时空深入克里金插值和概率预测
Spatio-temporal DeepKriging for Interpolation and Probabilistic Forecasting
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Pratik Nag, Ying Sun, Brian J Reich
TL;DR
本文提出了一种基于深度神经网络的两阶段模型来进行时空插值和预测,并应用于 $PM_{2.5}$ 数据的快速插值和带不确定性的预测。
Abstract
gaussian processes
(GP) and
kriging
are widely used in traditional spatio-temporal mod-elling and prediction. These techniques typically presuppose that the data are observed from a stationary GP with parametric
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