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实验室高光谱成像揭示的土壤有机碳储存热点。

Hotspots of soil organic carbon storage revealed by laboratory hyperspectral imaging.

机构信息

Soil Science, Technical University of Munich, Weihenstephan, Germany.

Research Institute of Organic Agriculture FibL, Frick, Switzerland.

出版信息

Sci Rep. 2018 Sep 17;8(1):13900. doi: 10.1038/s41598-018-31776-w.

Abstract

Subsoil organic carbon (OC) is generally lower in content and more heterogeneous than topsoil OC, rendering it difficult to detect significant differences in subsoil OC storage. We tested the application of laboratory hyperspectral imaging with a variety of machine learning approaches to predict OC distribution in undisturbed soil cores. Using a bias-corrected random forest we were able to reproduce the OC distribution in the soil cores with very good to excellent model goodness-of-fit, enabling us to map the spatial distribution of OC in the soil cores at very high resolution (~53 × 53 µm). Despite a large increase in variance and reduction in OC content with increasing depth, the high resolution of the images enabled statistically powerful analysis in spatial distribution of OC in the soil cores. In contrast to the relatively homogeneous distribution of OC in the plough horizon, the subsoil was characterized by distinct regions of OC enrichment and depletion, including biopores which contained ~2-10 times higher SOC contents than the soil matrix in close proximity. Laboratory hyperspectral imaging enables powerful, fine-scale investigations of the vertical distribution of soil OC as well as hotspots of OC storage in undisturbed samples, overcoming limitations of traditional soil sampling campaigns.

摘要

土壤底层的有机碳(OC)含量通常比表土 OC 低,且更具异质性,这使得难以检测到土壤底层 OC 储存的显著差异。我们测试了实验室高光谱成像与各种机器学习方法的应用,以预测原状土芯中 OC 的分布。使用经过偏差校正的随机森林,我们能够非常好地再现土壤芯中 OC 的分布,模型拟合度非常好,使我们能够以非常高的分辨率(约 53×53μm)绘制 OC 在土壤芯中的空间分布。尽管随着深度的增加,方差增加,OC 含量减少,但图像的高分辨率使得能够对土壤芯中 OC 的空间分布进行统计上有力的分析。与犁耕层中 OC 相对均匀的分布相比,土壤底层的特征是 OC 富集和耗尽的明显区域,包括生物孔,其 SOC 含量比附近的土壤基质高约 2-10 倍。实验室高光谱成像能够对土壤 OC 的垂直分布以及原状样本中 OC 储存的热点进行强大的、精细的研究,克服了传统土壤采样活动的局限性。

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