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首页> 外文期刊>International journal of applied earth observation and geoinformation >Synergy of sampling techniques and ensemble classifiers for classification of urban environments using full-waveform LiDAR data
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Synergy of sampling techniques and ensemble classifiers for classification of urban environments using full-waveform LiDAR data

机译:使用全波形LIDAR数据进行采样技术和集合分类器的采样技术和集合分类

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摘要

Fine scale land cover classification of urban environments is important for a variety of applications. LiDAR data has been increasingly used, separately or in conjunction with other remote sensing data, for providing land cover classification due to its high geometric accuracy as well as its additional radiometric information. An important issue in the classification of remote sensing data is the inevitable imbalance of training samples, which usually results in poor classification performance in classes with few samples (minority classes). In this paper, a synergy of sampling techniques in data mining with ensemble classifiers is proposed to address the data imbalance problem in the training datasets. Several sampling strategies, including under-sampling the majority classes, synthetic over-sampling the minority classes, hybrid-sampling, and under-sampling aggregation are examined. The results from two different datasets show superior performance of ensemble classifiers when integrated with sampling techniques. In particular, under-sampling aggregation and hybrid sampling coupled with random forests resulted in 16.7% and 5.5% improvements in the G-mean measure in two experimental datasets examined.
机译:细尺土地覆盖城市环境分类对于各种应用都很重要。 LIDAR数据已经越来越多地使用或与其他遥感数据一起使用,用于提供由于其高几何精度以及其额外的辐射信息而提供土地覆盖分类。遥感数据分类中的一个重要问题是训练样本的不可避免的不平衡,这通常会导致少量样本中的课程中的差的分类性能(少数群体)。在本文中,提出了通过集成分类器的数据挖掘中采样技术的协同作用,以解决训练数据集中的数据不平衡问题。检查了几种采样策略,包括在取样的大多数类,合成过采样少数群体类别,混合采样和下采样聚合的情况下。两个不同的数据集的结果显示了与采样技术集成时集合分类器的卓越性能。特别地,与随机森林结合的取样聚集和杂化取样导致在检查两个实验数据集中的G均值测量中的16.7%和5.5%。

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