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A Semi-analytical Algorithm for Remotely Estimating Suspended Particulate Matter of Inland Waters

机译:内陆水域悬浮颗粒物遥感估算的半解析算法

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Monitoring total suspended particulate matter (TSM) by remoting sensing is particularly challenging for inland waters. Although several models have been developed for TSM inversion, their accuracy varies evidently due to variability in inherent optical properties (IOPs) of the inland waters. To address this issue, we proposed a semi-analytical algorithm, which is based on Quasi-Analytical Algorithm (QAA), for remotely estimating TSM concentration in Maozhou River, located in Shenzhen, China. An innovative loss function was defined to represent homogeneity and rationality of IOPs within a small geographic region in this paper. Adaptive Moment Estimation (Adam) was employed to modify the QAA model by minimizing the value of the loss function. The proposed approach requires no in-situ IOPs data, which makes it practical. Furthermore, a TSM inversion model based on Normalized Difference TSM Index (NDTI) was developed and validated. The results of higher relevance between TSM concentrations and IOPs retrieved by the Modified QAA model showed that the approach we proposed was helpful for TSM inversion. The values of MRE, MAE and RMSE showed that the accuracy of the model is acceptable for inland waters.
机译:对于内陆水域,通过远程传感监测总悬浮颗粒物(TSM)尤其具有挑战性。虽然已经开发了几种TSM反演模型,但由于内陆水域固有光学特性(IOPs)的变化,它们的精度存在明显差异。为了解决这个问题,我们提出了一种基于准解析算法(QAA)的半解析算法,用于远程估算中国深圳市茅洲河TSM浓度。本文定义了一个创新的损失函数来表示小地理区域内IOPs的同质性和合理性。自适应矩估计(Adam)通过最小化损失函数的值来修正QAA模型。所提出的方法不需要现场IOPs数据,这使其具有实用性。在此基础上,建立并验证了基于归一化差分TSM指数(NDTI)的TSM反演模型。通过改进的QAA模型,TSM浓度和IOPs之间的相关性更高,这表明我们提出的方法有助于TSM反演。MRE、MAE和RMSE的数值表明,该模型的精度适用于内陆水域。

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