The potential of electrical imaging for field root zone phenotyping

S. Garré, T. Deswaef, I. Borra‐Serrano, P. Lootens, G. Blanchy
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Abstract

Summary Providing enough food for a growing population while preserving natural resources and biodiversity is one of the challenges of the 21st century. A key pathway to maximize yields in a sustainable way is to select and grow crops that are optimally adapted to their environment. Plant performance is determined by characteristics or ‘traits’ which are partially genetically determined. Nevertheless, cultivars with the same genome (G) express different appearances or ‘phenomes’ in different environments (E) and under different management practices (M). Phenotyping the below-ground traits of plants is not straightforward, due to the opaque nature of soil. Non-invasive geophysical techniques to study the root zone have substantially advanced in recent years.Their biggest potential lies in indirect monitoring of water depletion in the root zone, especially in time-lapse mode. To explore the potential of integrating geophysics in a field phenotyping platform, we first generated a range scenarios of soil moisture dynamics for different soils and grass cultivars. Then we generated ERT data from these distributions for selected electrode setups and then inverted them back to obtain conductivity distributions. In this way, we checked the performance of different electrode arrays to delineate root water uptake patterns in various realistic conditions.
电成像对田间根区表型的潜力
在保护自然资源和生物多样性的同时,为不断增长的人口提供足够的食物是21世纪面临的挑战之一。以可持续的方式实现产量最大化的一个关键途径是选择和种植最适合其环境的作物。植物的性能是由部分由基因决定的特征或“性状”决定的。然而,具有相同基因组(G)的栽培品种在不同的环境(E)和不同的管理方法(M)下表现出不同的外观或“表型”。由于土壤的不透明性质,植物地下性状的表型并不简单。近年来,研究根区的非侵入性地球物理技术取得了实质性进展。它们最大的潜力在于间接监测根区水分消耗,特别是采用延时模式。为了探索在田间表型平台中整合地球物理学的潜力,我们首先生成了不同土壤和草品种的一系列土壤水分动态情景。然后,我们从这些分布中生成ERT数据,用于选定的电极设置,然后将它们反过来获得电导率分布。通过这种方式,我们检查了不同电极阵列的性能,以描绘各种现实条件下的根系吸水模式。
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