2022
DOI: 10.3390/rs14235926
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Quantifying the Spatio-Temporal Variations and Impacts of Factors on Vegetation Water Use Efficiency Using STL Decomposition and Geodetector Method

Abstract: Water use efficiency of vegetation (WUE), the ratio of carbon gain to water loss, is a valid indicator to describe the photosynthetic carbon–water coupling relationship. Understanding how and why WUE changes are essential for regional ecological conservation. However, the impacts of various factors and their interactions on the spatial variation of WUE remain uncertain in the arid land of Northwest China. Here, we selected the Qilian Mountains (QM) and Hexi Corridor (HC) as the study areas. Supported by the Go… Show more

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Cited by 5 publications
(3 citation statements)
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“…STL decomposition is a non-parametric statistical method that consists of an inner loop for fitting trend and seasonal components and an outer loop for calculating robustness weights to reduce the impact of outliers [53]. Compared to other time-series decomposition methods, it offers greater precision and configurability.…”
Section: Exclusion Of Short-term Meteorological Factors Based On Stl ...mentioning
confidence: 99%
“…STL decomposition is a non-parametric statistical method that consists of an inner loop for fitting trend and seasonal components and an outer loop for calculating robustness weights to reduce the impact of outliers [53]. Compared to other time-series decomposition methods, it offers greater precision and configurability.…”
Section: Exclusion Of Short-term Meteorological Factors Based On Stl ...mentioning
confidence: 99%
“…The primary objective of the interaction detection was to determine if the driving forces and the interaction's intensity interacted, i.e., the change in the explanatory power of the variable Y after the combination of different factors X. The principle was to calculate the values of q(X 1 ) and q(X 2 ) separately from q(X 1 ∩X 2 ) and determine the mode of interaction by comparing the magnitude of the values (Wang et al, 2022). The interaction relationship among the driving factors is shown in Table 4.…”
Section: Geodetectormentioning
confidence: 99%
“…The STL method decomposes a time series (Y t ) into trend (T t ), season (S t ), and remainder (R t ) components. This filtering process reduces the impact of outliers and missing values on the trend and seasonal components [75,76].…”
Section: Separation Of Annual and Intra-annual Fluctuations In Lai Ti...mentioning
confidence: 99%