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African soil properties and nutrients mapped at 30 m spatial resolution using two-scale ensemble machine learning.


ABSTRACT: Soil property and class maps for the continent of Africa were so far only available at very generalised scales, with many countries not mapped at all. Thanks to an increasing quantity and availability of soil samples collected at field point locations by various government and/or NGO funded projects, it is now possible to produce detailed pan-African maps of soil nutrients, including micro-nutrients at fine spatial resolutions. In this paper we describe production of a 30 m resolution Soil Information System of the African continent using, to date, the most comprehensive compilation of soil samples ([Formula: see text]) and Earth Observation data. We produced predictions for soil pH, organic carbon (C) and total nitrogen (N), total carbon, effective Cation Exchange Capacity (eCEC), extract

SUBMITTER: Hengl T 

PROVIDER: S-EPMC7969779 | biostudies-literature | 2021 Mar

REPOSITORIES: biostudies-literature

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