Chlorophyll-a Detection in Riverine and Transitional Waters Using UAS Multispectral Imagery: A Systematic Review

多光谱图像 遥感 辐射定标 环境科学 卫星 多光谱模式识别 校准 时间分辨率 图像分辨率 河口 辐射测量 卫星图像 一致性(知识库) 计算机科学 变更检测 大气校正 地球观测 时间尺度 光谱带 空间变异性 环境监测 频道(广播) 光谱分辨率 专题制图器 钥匙(锁) 经验模型
作者
Maria Danae Stamataki,Ermioni-Eirini Papadopoulou,Athina Petridi,Stavros Proestakis,Nikolaos Soulakellis,George Tsirtsis,Ourania Tzoraki
出处
期刊:Sustainability [Multidisciplinary Digital Publishing Institute]
卷期号:18 (12): 6234-6234
标识
DOI:10.3390/su18126234
摘要

River systems and their transitional zones near estuaries are characterized by strong spatial and temporal variability in both hydro-chemical and optical conditions. These dynamics make the monitoring of key water quality indicators such as chlorophyll-a (Chl-a) particularly demanding. Unmanned aerial systems (UASs) equipped with multispectral sensors have increasingly been used to address these challenges, providing high spatial resolution observations in environments where satellite imagery is often constrained by narrow channel widths and complex optical conditions. This systematic review examines the use of multispectral sensors for the detection, estimation, and mapping of chlorophyll-a in riverine, estuarine and transitional environments. Following the PRISMA 2020 framework, sixteen peer-reviewed studies published between 2016 and 2025 were identified and analyzed, focusing on the observation platforms employed, spectral band configurations, radiometric processing procedures, and the modeling approaches used to retrieve chlorophyll-a concentrations. Across the reviewed literature, most applications rely on empirical spectral indices based on red, red-edge, and near-infrared wavelengths, usually calibrated with concurrent in situ measurements. Machine learning methods appear mainly in more recent publications, yet their performance remains strongly tied to site-specific calibration datasets. Notable differences in radiometric correction workflows, validation protocols, and documentation of results complicate direct comparison among studies. This review highlights the strong potential of UAS multispectral observations for resolving small-scale spatial patterns of chlorophyll-a in dynamic river systems, while underscoring the need for greater methodological consistency in future research.
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