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Estimating soil organic carbon from soil reflectance: a review

机译:从土壤反射率估算土壤有机碳:综述

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摘要

Soil organic carbon (SOC) concentration is a useful soil property with which to guide agricultural applications of chemical inputs. To enable this, simple, accurate, rapid and inexpensive methods are needed to produce maps of surface SOC concentrations. Researchers have investigated estimates of soil surface properties from remotely sensed information as a means of rapidly quantifying and monitoring some surface soil properties, such as SOC. The objective of this paper is to review the potential and limitations of remotely sensed data for mapping and evaluating SOC. Several statistical methods including simple regression models, the soil line' approach, principal component analysis and geostatistics have been applied to data to investigate the accuracy of such estimates. A review of the literature shows that predictive equations are not universal and require new regression models for every scene. An important benefit of remotely sensed data is to suggest a sampling strategy that can lead to improved representation of spatial heterogeneity in SOC.
机译:土壤有机碳(SOC)浓度是一种有用的土壤特性,可用于指导化学投入物在农业上的应用。为此,需要简单,准确,快速和廉价的方法来生成表面SOC浓度图。研究人员已经从遥感信息中调查了土壤表面特性的估计值,以此作为快速量化和监测某些表面土壤特性(例如SOC)的手段。本文的目的是回顾用于映射和评估SOC的遥感数据的潜力和局限性。几种统计方法,包括简单的回归模型,土线法,主成分分析和地统计方法,已应用于数据,以调查此类估计的准确性。对文献的回顾表明,预测方程不是通用的,并且需要针对每个场景的新回归模型。遥感数据的一个重要好处是提出了一种采样策略,可以改善SOC中空间异质性的表示方式。

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