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Spatial downscaling of precipitation using adaptable random forests

Publication ,  Journal Article
He, X; Chaney, NW; Schleiss, M; Sheffield, J
Published in: Water Resources Research
October 1, 2016

This paper introduces Prec-DWARF (Precipitation Downscaling With Adaptable Random Forests), a novel machine-learning based method for statistical downscaling of precipitation. Prec-DWARF sets up a nonlinear relationship between precipitation at fine resolution and covariates at coarse/fine resolution, based on the advanced binary tree method known as Random Forests (RF). In addition to a single RF, we also consider a more advanced implementation based on two independent RFs which yield better results for extreme precipitation. Hourly gauge-radar precipitation data at 0.125° from NLDAS-2 are used to conduct synthetic experiments with different spatial resolutions (0.25°, 0.5°, and 1°). Quantitative evaluation of these experiments demonstrates that Prec-DWARF consistently outperforms the baseline (i.e., bilinear interpolation in this case) and can reasonably reproduce the spatial and temporal patterns, occurrence and distribution of observed precipitation fields. However, Prec-DWARF with a single RF significantly underestimates precipitation extremes and often cannot correctly recover the fine-scale spatial structure, especially for the 1° experiments. Prec-DWARF with a double RF exhibits improvement in the simulation of extreme precipitation as well as its spatial and temporal structures, but variogram analyses show that the spatial and temporal variability of the downscaled fields are still strongly underestimated. Covariate importance analysis shows that the most important predictors for the downscaling are the coarse-scale precipitation values over adjacent grid cells as well as the distance to the closest dry grid cell (i.e., the dry drift). The encouraging results demonstrate the potential of Prec-DWARF and machine-learning based techniques in general for the statistical downscaling of precipitation.

Duke Scholars

Published In

Water Resources Research

DOI

EISSN

1944-7973

ISSN

0043-1397

Publication Date

October 1, 2016

Volume

52

Issue

10

Start / End Page

8217 / 8237

Related Subject Headings

  • Environmental Engineering
  • 4011 Environmental engineering
  • 4005 Civil engineering
  • 3707 Hydrology
  • 0907 Environmental Engineering
  • 0905 Civil Engineering
  • 0406 Physical Geography and Environmental Geoscience
 

Citation

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He, X., Chaney, N. W., Schleiss, M., & Sheffield, J. (2016). Spatial downscaling of precipitation using adaptable random forests. Water Resources Research, 52(10), 8217–8237. https://doi.org/10.1002/2016WR019034
He, X., N. W. Chaney, M. Schleiss, and J. Sheffield. “Spatial downscaling of precipitation using adaptable random forests.” Water Resources Research 52, no. 10 (October 1, 2016): 8217–37. https://doi.org/10.1002/2016WR019034.
He X, Chaney NW, Schleiss M, Sheffield J. Spatial downscaling of precipitation using adaptable random forests. Water Resources Research. 2016 Oct 1;52(10):8217–37.
He, X., et al. “Spatial downscaling of precipitation using adaptable random forests.” Water Resources Research, vol. 52, no. 10, Oct. 2016, pp. 8217–37. Scopus, doi:10.1002/2016WR019034.
He X, Chaney NW, Schleiss M, Sheffield J. Spatial downscaling of precipitation using adaptable random forests. Water Resources Research. 2016 Oct 1;52(10):8217–8237.
Journal cover image

Published In

Water Resources Research

DOI

EISSN

1944-7973

ISSN

0043-1397

Publication Date

October 1, 2016

Volume

52

Issue

10

Start / End Page

8217 / 8237

Related Subject Headings

  • Environmental Engineering
  • 4011 Environmental engineering
  • 4005 Civil engineering
  • 3707 Hydrology
  • 0907 Environmental Engineering
  • 0905 Civil Engineering
  • 0406 Physical Geography and Environmental Geoscience