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基于小波多尺度熵和主成分分析的土壤湿度动态区域化研究

Regionalization of Daily Soil Moisture Dynamics Using Wavelet-Based Multiscale Entropy and Principal Component Analysis.

作者信息

Sun Yuqing, Niu Jun

机构信息

Center for Agricultural Water Research in China, China Agricultural University, Beijing 100083, China.

出版信息

Entropy (Basel). 2019 May 30;21(6):548. doi: 10.3390/e21060548.

Abstract

Hydrological regionalization is a useful step in hydrological modeling and prediction. The regionalization is not always straightforward, however, due to the lack of long-term hydrological data and the complex multi-scale variability features embedded in the data. This study examines the multiscale soil moisture variability for the simulated data on a grid cell base obtained from a large-scale hydrological model, and clusters the grid-cell based soil moisture data using wavelet-based multiscale entropy and principal component analysis, over the Xijiang River basin in South China, for the period of 2002-2010. The effective regionalization, for 169 grid cells with the special resolution of 0.5° × 0.5°, produced homogeneous groups based on the pattern of wavelet-based entropy information. Four distinct modes explain 80.14% of the total embedded variability of the transformed wavelet power across different timescales. Moreover, the possible implications of the regionalization results for local hydrological applications, such as parameter estimation for an ungagged catchment and designing a uniform prediction strategy for a sub-area in a large-scale basin, are discussed.

摘要

水文区域化是水文建模与预测中的一项有益举措。然而,由于缺乏长期水文数据以及数据中蕴含的复杂多尺度变异性特征,区域化并非总是一帆风顺。本研究针对从一个大尺度水文模型获取的网格单元模拟数据,考察了多尺度土壤湿度变异性,并运用基于小波的多尺度熵和主成分分析,对中国南方西江流域2002 - 2010年期间基于网格单元的土壤湿度数据进行聚类。对于具有0.5°×0.5°特殊分辨率的169个网格单元,有效的区域化基于基于小波的熵信息模式产生了同质组。四种不同模式解释了不同时间尺度上变换后的小波功率总嵌入变异性的80.14%。此外,还讨论了区域化结果对当地水文应用的可能影响,如无资料流域的参数估计以及为大尺度流域中的子区域设计统一的预测策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/6ba1/7515037/424ed361642d/entropy-21-00548-g001.jpg

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