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Tyler McCandless
Tyler McCandless
Director of Data Science
Verified email at tomorrow.io - Homepage
Title
Cited by
Cited by
Year
A regime-dependent artificial neural network technique for short-range solar irradiance forecasting
TC McCandless, SE Haupt, GS Young
Renewable Energy 89, 351-359, 2016
832016
Building the Sun4Cast system: Improvements in solar power forecasting
SE Haupt, B Kosović, T Jensen, JK Lazo, JA Lee, PA Jiménez, J Cowie, ...
Bulletin of the American Meteorological Society 99 (1), 121-136, 2018
812018
Machine learning for applied weather prediction
SE Haupt, J Cowie, S Linden, T McCandless, B Kosovic, S Alessandrini
2018 IEEE 14th international conference on e-science (e-Science), 276-277, 2018
612018
An objective methodology for configuring and down-selecting an NWP ensemble for low-level wind prediction
JA Lee, WC Kolczynski, TC McCandless, SE Haupt
Monthly Weather Review 140 (7), 2270-2286, 2012
582012
A model tree approach to forecasting solar irradiance variability
TC McCandless, SE Haupt, GS Young
Solar Energy 120, 514-524, 2015
522015
Solar irradiance nowcasting case studies near Sacramento
JA Lee, SE Haupt, PA Jiménez, MA Rogers, SD Miller, TC McCandless
Journal of Applied Meteorology and Climatology 56 (1), 85-108, 2017
442017
Combining artificial intelligence with physics-based methods for probabilistic renewable energy forecasting
SE Haupt, TC McCandless, S Dettling, S Alessandrini, JA Lee, S Linden, ...
Energies 13 (8), 1979, 2020
382020
The SunCast solar-power forecasting system: the results of the public-private-academic partnership to advance solar power forecasting
SE Haupt, B Kosovic, T Jensen, J Lee, P Jimenez, J Lazo, J Cowie, ...
National Center for Atmospheric Research (NCAR), Boulder (CO): Research …, 2016
382016
Regime-dependent short-range solar irradiance forecasting
TC McCandless, GS Young, SE Haupt, LM Hinkelman
Journal of Applied Meteorology and Climatology 55 (7), 1599-1613, 2016
352016
Blending distributed photovoltaic and demand load forecasts
SE Haupt, S Dettling, JK Williams, J Pearson, T Jensen, T Brummet, ...
Solar Energy 157, 542-551, 2017
302017
Enhancing wildfire spread modelling by building a gridded fuel moisture content product with machine learning
TC McCandless, B Kosovic, W Petzke
Machine Learning: Science and Technology 1 (3), 035010, 2020
212020
Comparison of implicit vs. explicit regime identification in machine learning methods for solar irradiance prediction
T McCandless, S Dettling, SE Haupt
Energies 13 (3), 689, 2020
202020
Examining the potential of a random forest derived cloud mask from GOES-R satellites to improve solar irradiance forecasting
T McCandless, PA Jiménez
Energies 13 (7), 1671, 2020
192020
The Schaake shuffle technique to combine solar and wind power probabilistic forecasting
S Alessandrini, T McCandless
Energies 13 (10), 2503, 2020
182020
Machine learning for improving surface-layer-flux estimates
T McCandless, DJ Gagne, B Kosović, SE Haupt, B Yang, C Becker, ...
Boundary-Layer Meteorology 185 (2), 199-228, 2022
162022
Climatology of wind variability for the Shagaya region in Kuwait
SM Naegele, TC McCandless, SJ Greybush, GS Young, SE Haupt, ...
Renewable and Sustainable Energy Reviews 133, 110089, 2020
162020
The Effects of Imputing Missing Data on Ensemble Temperature Forecasts.
TC McCandless, SE Haupt, GS Young
J. Comput. 6 (2), 162-171, 2011
162011
Short term solar radiation forecasts using weather regime-dependent artificial intelligence techniques
TC McCandless, SE Haupt, GS Young
Proceedings of the 12th Conference on Artificial and Computational …, 2014
112014
The super-turbine wind power conversion paradox: using machine learning to reduce errors caused by Jensen's inequality
TC McCandless, SE Haupt
Wind Energy Science 4 (2), 343-353, 2019
102019
Machine learning parameterization of the surface layer: bridging the observation-modeling gap
DJ Gagne, T McCandless, B Kosovic, A DeCastro, R Loft, SE Haupt, ...
AGU Fall Meeting Abstracts 2019, IN44A-04, 2019
52019
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