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A Synoptic Review on Deriving Bathymetry Information Using Remote Sensing Technologies: Models, Methods and Comparisons 被引量:6
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作者 Shridhar D. Jawak Somashekhar S. Vadlamani Alvarinho J. Luis 《Advances in Remote Sensing》 2015年第2期147-162,共16页
This paper discusses the bathymetric mapping technologies by means of satellite remote sensing (RS) with special emphasis on bathymetry derivation models, methods, accuracies, advantages, limitations, and comparisons.... This paper discusses the bathymetric mapping technologies by means of satellite remote sensing (RS) with special emphasis on bathymetry derivation models, methods, accuracies, advantages, limitations, and comparisons. Traditionally, bathymetry can be mapped using echo sounding sounders. However, this method is constrained by its inefficiency in shallow waters and very high operating logistic costs. In comparison, RS technologies present efficient and cost-effective means of mapping bathymetry over remote and broad areas. RS of bathymetry can be categorised into two broad classes: active RS and passive RS. Active RS methods are based on active satellite sensors, which emit artificial radiation to study the earth surface or atmospheric features, e.g. light detection and ranging (LIDAR), polarimetric synthetic aperture radar (SAR), altimeters, etc. Passive RS methods are based on passive satellite sensors, which detect sunlight (natural source of light) radiation reflected from the earth and thermal radiation in the visible and infrared portion of the electromagnetic spectrum, e.g. multispectral or optical satellite sensors. Bathymetric methods can also be categorised as imaging methods and non-imaging methods. The non-imaging method is elucidated by laser scanners or LIDAR, which measures the distance between the sensor and the water surface or the ocean floor using a single wave pulse or double waves. On the other hand, imaging methods approximate the water depth based on the pixel values or digital numbers (DN) (representing reflectance or backscatter) of an image. Imaging methods make use of the visible and/or near infrared (NIR) and microwave radiation. Imaging methods are implemented with either analytical modelling or empirical modelling, or by a blend of both. This paper presents the development of bathymetric mapping technology by using RS, and discusses the state-of-the-art bathymetry derivation methods/algorithms and their implications in practical applications. 展开更多
关键词 Optical REMOTE Sensing BATHYMETRY SAR LIDAR Stumpf model Jupp’s model lyzenga model
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多光谱水深反演模型推广至无实测数据海域的可行性探讨——以北岛和甘泉岛为例 被引量:4
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作者 赵露露 常伟纲 +1 位作者 高磊 朱金山 《中国科技论文》 CAS 北大核心 2021年第5期542-548,共7页
为了探究水质相同或相近前提下将多光谱水深反演模型推广至无实测数据海域的可行性,利用WorldView-2影像、GeoEye-1影像及相应实测水深数据于南海北岛海域、甘泉岛海域开展研究,在北岛海域提取3组样本数据,在甘泉岛海域提取1组样本数据... 为了探究水质相同或相近前提下将多光谱水深反演模型推广至无实测数据海域的可行性,利用WorldView-2影像、GeoEye-1影像及相应实测水深数据于南海北岛海域、甘泉岛海域开展研究,在北岛海域提取3组样本数据,在甘泉岛海域提取1组样本数据。其中,利用北岛A组样本构建Stumpf比值模型、Lyzenga对数线性模型、比值统计模型,利用北岛B组、C组样本验证水深模型的反演精度。结果显示:各模型在海底类型相似的B组海域的验证精度较高,相关系数(r)、均方根误差(root mean squared error,RMSE)、平均绝对误差(mean absolute error,MAE)值依次仅约为0.9、1.1、0.9 m;在海底差异较大的C组区域,反演精度明显变差,r值低于0.7,RMSE、MAE值分别增加至2.2 m、1.6 m以上。此外,还将北岛A组样本的Stumpf比值模型推广至海底类型相似的甘泉岛海域,反演精度介于B组、C组精度之间,验证样本的r、RMSE、MAE值依次为0.821、1.961 m、1.420 m。研究结果表明:水质相同或相近前提下,海底类型极大地影响水深模型的反演精度;在海底类型相同或相似的海域,水深反演模型的推广可行性更高。 展开更多
关键词 水深反演 多光谱遥感 Stumpf模型 lyzenga模型 水深模型应用
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