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Daily surface temperatures for 185,549 lakes in the conterminous United States estimated using deep learning (1980–2020)

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Willard, J.D., Read, J.S., Topp, S., Hansen, G.J.A. and Kumar, V. (2022), Daily surface temperatures for 185,549 lakes in the conterminous United States estimated using deep learning (1980–2020). Limnol. Oceanogr. Lett. https://doi.org/10.1002/lol2.10249

Summary

The dataset described here includes estimates of historical (1980–2020) daily surface water temperature, lake metadata, and daily weather conditions for lakes bigger than 4 ha in the conterminous United States (n = 185,549), and also in situ temperature observations for a subset of lakes (n = 12,227). Estimates were generated using a long short-term memory deep learning model and compared to existing process-based and linear regression models. Model training was optimized for prediction on unmonitored lakes through cross-validation that held out lakes to assess generalizability and estimate error. On the held-out lakes with in situ observations, median lake-specific error was 1.24°C, and the overall root mean squared error was 1.61°C. [...]

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  • Midwest CASC
  • National and Regional Climate Adaptation Science Centers

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citationTypeJournal Article
journalLimnology and Oceanography Letters

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