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    题名 作者 年代 出处 被引量
1一种结合空间与光谱信息的改进CVA变化检测方法显示文摘基于变化向量分析(CVA)的变化检测方法通过直接比较像素差异,能够快速提取多时相影像间的变化信息。尽管如此,由于忽略了像素领域的空间上下文信息及波段之间的差异性和互补性,导致检测结果中难以消除噪声等因素产生的'伪变化'。为此提出了一种结合空间和光谱信息的改进CVA方法。首先,采用主成分分析法对影像进行增强,继而通过构建一种新的多方向差分描述子来提取中心像素的空间上下文信息;在此基础上,提出一种基于相关性的加权融合策略,获得统一的变化强度差分影像;最后,采用EM算法求得变化像素的阈值,继而得到二值检测结果。实验结果表明:所提出的算法能够有效应对'伪变化'的干扰,显著提高变化检测的精度及可靠性。申祎 王超 胡佳乐 2019遥感技术与应用2019,34,4:3
2Topographically derived subpixel-based change detection for monitoring changes over rugged terrain Himalayas using AWiFS data显示文摘Continuous and accurate monitoring of earth surface changes over rugged terrain Himalayas is important to manage natural resources and mitigate natural hazards.Conventional techniques generally focus on per-pixel based processing and overlook the sub-pixel variations occurring especially in case of low or moderate resolution remotely sensed data.However,the existing subpixel-based change detection(SCD)models are less effective to detect the mixed pixel information at its complexity level especially over rugged terrain regions.To overcome such issues,a topographically controlled SCD model has been proposed which is an improved version of widely used per-pixel based change vector analysis(CVA)and hence,named as a subpixel-based change vector analysis(SCVA).This study has been conducted over a part of the Western Himalayas using the advanced wide-field sensor(AWiFS)and Landsat-8 datasets.To check the effectiveness of the proposed SCVA,the cross-validation of the results has been done with the existing neural network-based SCD(NN-SCD)and per-pixel based models such as fuzzybasedCVA(FCVA)andpost-classification comparison(PCC).The results have shown that SCVA offered robust performance(85.6%-86.4%)as comparedtoNN-SCD(81.6%-82.4%),PCC(79.2%-80.4%),and FCVA(81.2%-83.6%).We concluded that SCVA helps in reducing the detection of spurious pixels and improve the efficacy of generating change maps.This study is beneficial for the accurate monitoring of glacier retreat and snow cover variability over rugged terrain regions using moderate resolution remotely sensed datasets.Vishakha SOOD Hemendra Singh GUSAIN Sheifali GUPTA Sartajvir SINGH 2021Journal of Mountain Science2021,18,1:0
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