首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >Bottom characterization by using airborne lidar bathymetry (ALB) waveform features obtained from bottom return residual analysis
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Bottom characterization by using airborne lidar bathymetry (ALB) waveform features obtained from bottom return residual analysis

机译:利用空气传播激光雷达沐浴浴(ALB)波形特征从底部返回残余分析中获得的底部表征

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摘要

Airborne Lidar Bathymetry (ALB) surveys are traditionally used for measuring depths in shallow nearshore and back-bay areas. In this paper, we present a novel ALB waveform processing procedure, namely bottom return residual analysis, for bottom characterization. Waveform features obtained from the bottom return residual analysis are used in a supervised classification approach, i.e. Support Vector Machine, to differentiate between: 1) sand and rock bottoms and subsequently, 2) fine and coarse sand bottoms. The classification procedure was tested on ALB survey data collected with an Optech SHOALS-1000T ALB system that covers a similar to 7 km(2) area within 1 km from shore in the western Gulf of Maine, USA. The bottom classification results, when compared to ground-truth measurements, indicate a 96% overall accuracy for sand and rock classification and 86% overall accuracy for fine and coarse sand classification. Results of ALB-based bottom classification are compared with interpretations of a multibeam echosounder acoustic backscatter mosaic collected from the survey area.
机译:Airborne Lidar Bathymetry(ALB)调查传统上用于测量浅近岸和后湾地区的深度。在本文中,我们提出了一种新颖的ALB波形处理程序,即底部返回残余分析,用于底部表征。从底部返回残余分析获得的波形特征以监督分类方法,即支持向量机,区分:1)沙子和岩石底部,随后,2)良好和粗砂底部。在由Optech Shoals-1000T ALB系统收集的ALB调查数据上进行了分类程序,该数据占地面积,距离美国缅因州湾湾的岸边有20公里(2)区。底部分类结果,与地面真理测量相比,砂和岩石分类的总精度为96%,整体精度为86%,整体精度为细小砂分类。将基于ALB的底部分类结果与从调查区域收集的多次辐射回声器声反向散射马赛克进行比较。

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