基于遥感土壤湿度数据的分布式水文模型参数联合率定方法
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李致家(1962—),男,教授,博士,主要从事水文预报研究。E-mail:zjli@hhu.edu.cn

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宁夏回族自治区重点研发项目(2023BEG02054);国家自然科学基金项目(52079035)


Joint calibration method of distributed hydrological model parameters based on remote sensing soil moisture data
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    摘要:

    为探究在半干旱小流域引入遥感土壤湿度数据辅助分布式水文模型参数率定的可行性,提出了融合硬数据(流量)与软数据(遥感土壤湿度)的参数联合率定方法。该方法将CLDAS卫星遥感土壤湿度数据应用于Grid-Multi-GA模型中,采用多目标优化框架,以流量模拟的纳什效率系数和土壤湿度时空分布的Spearman相关系数作为双评价指标,通过系统调整权重实现两类指标的动态权衡,最终确定最优权重及其对应的产流和汇流参数组合,同时通过设置参数未率定、仅用流量率定、流量与土壤湿度联合率定3种情景,验证联合率定方法的可行性。宁夏原州流域的实例验证结果表明:流量与土壤湿度联合率定的Grid-Multi-GA模型在小流域中的洪水模拟中,纳什效率系数大于0.7,Spearman相关系数为0.84,明显优于未率定和仅用流量率定的Grid-Multi-GA模型。

    Abstract:

    To explore the feasibility of introducing remote sensing soil moisture data to assist in distributed hydrological model parameter calibration in semi-arid small watersheds, a joint parameter calibration method that integrated hard data (flow rate) and soft data (remote sensing soil moisture) was proposed. CLDAS satellite remote sensing soil moisture data were applied to the Grid-Multi-GA model. A multi-objective optimization framework was adopted, and the Nash efficiency coefficient of flow rate simulation and the Spearman correlation coefficient of soil moisture’s spatiotemporal distribution were used as dual evaluation indicators. By adjusting the weights of the system to dynamically balance two types of indicators, the optimal weight and its corresponding runoff generation and flow routing parameter combination were ultimately determined. To validate the feasibility of the joint calibration method, three model scenarios were established, namely uncalibrated parameters, calibration using only discharge, and joint calibration of discharge and soil moisture. The case study results in the Ningxia Yuanzhou Watershed demonstrate that the Grid-Multi-GA model jointly calibrated by flow rate and soil moisture achieves a Nash efficiency coefficient greater than 0.7 and a Spearman correlation coefficient of 0.84 in flood simulation for small watersheds, significantly outperforming both the uncalibrated model and the model calibrated only with flow rate.

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李致家,邓帆,张汉辰,等.基于遥感土壤湿度数据的分布式水文模型参数联合率定方法[J].河海大学学报(自然科学版),2026,54(1):1-7.(Li Zhijia, Deng Fan, Zhang Hanchen, et al. Joint calibration method of distributed hydrological model parameters based on remote sensing soil moisture data[J]. Journal of Hohai University (Natural Sciences),2026,54(1):1-7.(in Chinese))

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  • 收稿日期:2025-04-25
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  • 在线发布日期: 2026-01-29
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