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利用CMIP6数据和最优SWAT模型模拟气候变化下的径流变化及评估:一个案例研究

Simulating runoff changes and evaluating under climate change using CMIP6 data and the optimal SWAT model: a case study.

作者信息

Wang Sai, Zhang Hong-Jin, Wang Tuan-Tuan, Hossain Sarmistha

机构信息

State Key Laboratory of Marine Resource Utilization in South China Sea, Hainan University, Haikou, Hainan, 570228, China.

School of Ecology and Environment, Hainan University, Haikou, Hainan, 570228, China.

出版信息

Sci Rep. 2024 Oct 5;14(1):23228. doi: 10.1038/s41598-024-74269-9.

Abstract

This study examines the influence of climate change on hydrological processes, particularly runoff, and how it affects managing water resources and ecosystem sustainability. It uses CMIP6 data to analyze changes in runoff patterns under different Shared Socioeconomic Pathways (SSP). This study also uses a Deep belief network (DBN) and a Modified Sparrow Search Optimizer (MSSO) to enhance the runoff forecasting capabilities of the SWAT model. DBN can learn complex patterns in the data and improve the accuracy of runoff forecasting. The meta-heuristic algorithm optimizes the models through iterative search processes and finds the optimal parameter configuration in the SWAT model. The Optimal SWAT Model accurately predicts runoff patterns, with high precision in capturing variability, a strong connection between projected and actual data, and minimal inaccuracy in its predictions, as indicated by an ENS score of 0.7152 and an R coefficient of determination of 0.8012. The outcomes of the forecasts illustrated that the runoff will decrease in the coming years, which could threaten the water source. Therefore, managers should manage water resources with awareness of these conditions.

摘要

本研究考察气候变化对水文过程的影响,特别是径流,以及它如何影响水资源管理和生态系统可持续性。它使用CMIP6数据来分析不同共享社会经济路径(SSP)下径流模式的变化。本研究还使用深度信念网络(DBN)和改进的麻雀搜索优化器(MSSO)来增强SWAT模型的径流预测能力。DBN可以学习数据中的复杂模式并提高径流预测的准确性。元启发式算法通过迭代搜索过程优化模型,并在SWAT模型中找到最优参数配置。最优SWAT模型能够准确预测径流模式,在捕捉变异性方面具有高精度,预测数据与实际数据之间有很强的关联性,且预测误差最小,ENS评分为0.7152,决定系数R为0.8012。预测结果表明,未来几年径流将减少,这可能威胁到水源。因此,管理者应在了解这些情况的基础上进行水资源管理。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d372/11455851/656bbc031cbd/41598_2024_74269_Fig1_HTML.jpg

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