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Waveform fitting and geometry analysis for full-waveform LiDAR feature extraction

机译:用于全波形LiDAR特征提取的波形拟合和几何分析

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This paper presents a systematic approach that integrates spline curve fitting and geometry analysis to extract full-waveform LiDAR features for land-cover classification. The cubic smoothing spline algorithm is used to fit the waveform curve of the received LiDAR signals. After that, the local peak locations of the waveform curve are detected using a second derivative method. According to the detected local peak locations, commonly used full-waveform features such as full width at half maximum (FWHM) and amplitude can then be obtained. In addition, the number of peaks, time difference between the first and last peaks, and the average amplitude are also considered as features of LiDAR waveforms with multiple returns. Based on the waveform geometry, dynamic time-warping (DTW) is applied to measure the waveform similarity. The sum of the absolute amplitude differences that remain after time-warping can be used as a similarity feature in a classification procedure. An airborne full-waveform LiDAR data set was used to test the performance of the developed feature extraction method for land-cover classification. Experimental results indicate that the developed spline curve-fitting algorithm and geometry analysis can extract helpful full-waveform LiDAR features to produce better land-cover classification than conventional LiDAR data and feature extraction methods. In particular, the multiple-return features and the dynamic time-warping index can improve the classification results significantly.
机译:本文提出了一种系统的方法,该方法结合了样条曲线拟合和几何分析以提取全波形LiDAR特征以进行土地覆盖分类。三次平滑样条算法用于拟合接收到的LiDAR信号的波形曲线。之后,使用二阶导数方法检测波形曲线的局部峰值位置。根据检测到的局部峰值位置,然后可以获得常用的全波形特征,例如半峰全宽(FWHM)和幅度。此外,峰的数量,第一个峰与最后一个峰之间的时间差以及平均幅度也被视为具有多个返回的LiDAR波形的特征。基于波形几何形状,动态时间规整(DTW)用于测量波形相似度。时间扭曲之后剩余的绝对幅度差之和可以用作分类过程中的相似性特征。机载全波形LiDAR数据集用于测试开发的用于土地覆盖分类的特征提取方法的性能。实验结果表明,所开发的样条曲线拟合算法和几何分析可以提取有用的全波形LiDAR特征,从而比常规LiDAR数据和特征提取方法产生更好的土地覆盖分类。特别是,多重返回特征和动态时间扭曲指数可以显着改善分类结果。

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