A Continuous Semi-nonparametric Isotope-Based Mixing Model for Multimodal Water Uptake Patterns

IF 2.5 3区 环境科学与生态学 Q2 ECOLOGY
Ecohydrology Pub Date : 2025-02-25 DOI:10.1002/eco.70003
Eric J. Neil, Han Fu, Bingcheng Si
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Abstract

Isotope mixing models have become increasingly prevalent in the partitioning of root water uptake. However, many models fail to incorporate site physical information in a physically meaningful manner, whereas others adopt discrete approaches to segmenting the soil profile rather than continuous approaches that aptly treat the soil as a continuum of physical properties and conditions. Here, we present the novel ‘multimodal physically-based root water uptake isotope mixing estimation’ model (Multi-PRIME). The model utilizes a flexible, continuous and multimodal probability density function in conjunction with water-stable isotopes and additional site physical information, combined in a process-based linear mixing framework. To evaluate the approach, estimates of water uptake from boreal forest Pinus banksiana trees were compared with those of the PRIME and MixSIAR approaches. The models yielded comparable results; however, because of the highly flexible nature of its semi-nonparametric water uptake function, Multi-PRIME reduced the bias and uncertainty associated with soil segmentation of the discrete model MixSIAR and with the specification of parametric functions and initial parameter values of the PRIME model. Furthermore, the multimodal nature of Multi-PRIME provided a superior ability to describe water uptake patterns in cases with multiple potential source regions of uptake. In addition, due to its continuous and process-based nature, Multi-PRIME surpassed the discrete, empirically-based MixSIAR in both accuracy and certainty. These findings illustrate the benefits of adopting a process-based modelling framework that utilizes a semi-nonparametric, continuous and multimodal water uptake function, thereby providing an improvement in our ability to confidently estimate water uptake apportionment.

Abstract Image

多模态水吸收模式的连续半非参数同位素混合模型
同位素混合模式在根系水分吸收分配中越来越流行。然而,许多模型未能以物理上有意义的方式纳入现场物理信息,而其他模型则采用离散方法来分割土壤剖面,而不是将土壤视为物理性质和条件的连续体的连续方法。在这里,我们提出了新的“基于物理的多模态根系水分吸收同位素混合估算”模型(Multi-PRIME)。该模型利用灵活、连续和多模态概率密度函数,结合水稳定同位素和额外的现场物理信息,结合在一个基于过程的线性混合框架中。为了对该方法进行评价,将北方针叶林岸松(Pinus banksiana)树木的吸水量估算值与PRIME和MixSIAR方法进行了比较。这些模型得出了可比较的结果;然而,由于其半非参数吸水函数的高度灵活性,Multi-PRIME减少了与离散模型MixSIAR的土壤分割以及参数函数和PRIME模型初始参数值的规格相关的偏差和不确定性。此外,Multi-PRIME的多模态特性提供了在具有多个潜在吸收源区域的情况下描述水吸收模式的优越能力。此外,由于其连续和基于过程的性质,Multi-PRIME在准确性和确定性方面都超过了离散的、基于经验的MixSIAR。这些发现说明了采用基于过程的建模框架的好处,该框架利用半非参数、连续和多模态的水分吸收函数,从而提高了我们自信地估计水分吸收分配的能力。
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来源期刊
Ecohydrology
Ecohydrology 环境科学-生态学
CiteScore
5.10
自引率
7.70%
发文量
116
审稿时长
24 months
期刊介绍: Ecohydrology is an international journal publishing original scientific and review papers that aim to improve understanding of processes at the interface between ecology and hydrology and associated applications related to environmental management. Ecohydrology seeks to increase interdisciplinary insights by placing particular emphasis on interactions and associated feedbacks in both space and time between ecological systems and the hydrological cycle. Research contributions are solicited from disciplines focusing on the physical, ecological, biological, biogeochemical, geomorphological, drainage basin, mathematical and methodological aspects of ecohydrology. Research in both terrestrial and aquatic systems is of interest provided it explicitly links ecological systems and the hydrologic cycle; research such as aquatic ecological, channel engineering, or ecological or hydrological modelling is less appropriate for the journal unless it specifically addresses the criteria above. Manuscripts describing individual case studies are of interest in cases where broader insights are discussed beyond site- and species-specific results.
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