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B2FIND
Dataset . 2019
Data sources: B2FIND
image/svg+xml art designer at PLoS, modified by Wikipedia users Nina, Beao, JakobVoss, and AnonMoos Open Access logo, converted into svg, designed by PLoS. This version with transparent background. http://commons.wikimedia.org/wiki/File:Open_Access_logo_PLoS_white.svg art designer at PLoS, modified by Wikipedia users Nina, Beao, JakobVoss, and AnonMoos http://www.plos.org/
PANGAEA
Dataset . 2019
License: CC BY NC SA
Data sources: PANGAEA
PANGAEA - Data Publisher for Earth and Environmental Science
Dataset . 2019
License: CC BY NC SA
Data sources: Datacite
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High-resolution surface global solar radiation and the diffuse component dataset over China (2014)

Authors: orcid bw Jiang, Hou;
Jiang, Hou
ORCID
Derived by OpenAIRE algorithms or harvested from 3rd party repositories

Jiang, Hou in OpenAIRE
orcid bw Lu, Ning;
Lu, Ning
ORCID
Derived by OpenAIRE algorithms or harvested from 3rd party repositories

Lu, Ning in OpenAIRE

High-resolution surface global solar radiation and the diffuse component dataset over China (2014)

Abstract

Surface solar radiation drives the water cycle and energy exchange on the earth's surface, and its diffuse component can promote carbon uptake in ecosystems by increasing the plant productivity. The accurate knowledge of their spatial distribution is of great importance to many studies and applications, such as the estimation of agricultural yield, carbon dynamics of terrestrial systems, site selection of solar power plants, as well as trends of regional climate changes. Therefore, we produce the hourly surface radiation datasets based on the hourly Multi-functional Transport Satellite (MTSAT) satellite imagery and the ground observations from the China Meteorology Administration (CMA) through deep learning techniques. The deep network is trained using training samples in 2008, and then utilized to generate the hourly radiation for other years. This dataset provides the gridded surface global and diffuse solar radiation in 2014 within 71.025°E - 141.025°E and 14.975°N - 59.975°N with an increment of 0.05°. Both the direct predicted hourly values and the integrated daily and monthly total values are available. The dataset should be useful for the analysis of the regional differences and temporal cycles of solar radiation in fine scales, and the impact of diffuse radiation on plant growth etc.

Keywords

China, File size, solar radiation, deep learning, File format, diffuse radiation, File name, Uniform resource locator link to file, geostationary satellite, File content, Uniform resource locator/link to file, Earth System Research

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