测绘学报 ›› 2014, Vol. 43 ›› Issue (5): 486-492.

• 学术论文 • 上一篇    下一篇

顾及协方差函数的自适应四叉树InSAR数据压缩算法

张静1,张勤2,赵超英3,张菊清4   

  1. 1. 长安大学
    2. 长安大学地测学院
    3. 长安大学地质工程与测绘学院测绘科学与工程系
    4. 长安大学地质工程与测绘学院
  • 收稿日期:2012-12-21 修回日期:2014-02-19 出版日期:2014-05-20 发布日期:2014-06-05
  • 通讯作者: 张勤 E-mail:zhangqinle@263.net.cn
  • 基金资助:

    多分辨率雷达干涉融合技术用于矿区塌陷灾害研究;基于时空信息的InSAR数据质量控制与后处理研究;汾渭盆地重点地区地面沉降地裂缝InSAR与GPS监测;地震行业科研专项项目-鄂尔多斯地块周缘InSAR变形检测及大地测量数据管理系统建设

A Quadtree InSAR Data Reduction Method Based on Covariance Function

  • Received:2012-12-21 Revised:2014-02-19 Online:2014-05-20 Published:2014-06-05

摘要:

利用InSAR数据进行形变机理反演时,由于InSAR数据点众多,且含有较多的误差乃至粗差点,严重制约了反演的效率和可靠性。为此,本文提出了顾及InSAR数据物理空间相关性来设立协方差函数,并依据协方差函数确定四叉树象限分解阈值和最大象限大小的自适应四叉树分解InSAR数据压缩算法。本算法能够在尽可能保留形变信号特征细节信息的同时,极大地降低InSAR数据量。本文以西安地区地面沉降InSAR结果为例进行了实验分析,验证了该算法的有效性,结果表明该方法能够在不损失形变信号特征的同时,有效的实现InSAR数据压缩和噪声消除的目的。

关键词: 四叉树, 数据压缩, 空间相关, 协方差函数

Abstract:

A major problem in inversion of deformation mechanism using InSAR data is that the InSAR results often contain thousands to millions of data points. Furthermore, there always exist errors and even some blunders, which make the data inversion be lower efficient and lower reliable. Thus, we propose an adaptive quadtree decomposition method for InSAR data reduction in order to reduce the data numbers without losing the significant information about the deformation. The two important parameters of quadtree decomposition by covariance function is determined ,which is eatablished by taking account of the physical spatial crrelation of InSAR data. The algorithm can preserve details of deformation as much as possible and achieve efficient data reduction. This method is evaluated with InSAR data over Xi’an land subsidence. The results indicate that the algorithm proposed in this manuscript can not only reduce InSAR data number efficiently under a very good preservation of deformation signal, but can eliminate the noise of deformation results efficiently.

Key words: quadtree, data reduction, spatial correlation, covariance function

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