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基于拖尾分布的高分辨率合成孔径雷达图像建模

孙增国 韩崇昭

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基于拖尾分布的高分辨率合成孔径雷达图像建模

孙增国, 韩崇昭

Modeling high-resolution synthetic aperture radar images with heavy-tailed distributions

Sun Zeng-Guo, Han Chong-Zhao
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  • 基于中心极限定理的合成孔径雷达(SAR)图像统计分布不能反映高分辨率SAR图像尖峰和厚尾的统计特征. 文中使用广义中心极限定理,由雷达回波的实部和虚部的对称稳定分布,得到SAR图像的拖尾分布(幅值图像的拖尾Rayleigh分布以及强度图像的拖尾指数分布),并以拖尾Rayleigh分布为例,讨论了拖尾分布的代数拖尾特征以及尖峰厚尾的统计特性. 为了实现拖尾分布对高分辨率SAR图像的精确建模,基于第二类统计量,提出了对数累积量的参数估计方法,从而高效估计出拖尾分布的参数. 真实SAR图像的建模实例表明,基于广义中心极限定理的拖尾分布可以精确描述高分辨率SAR图像的尖峰和厚尾的统计特征.
    Statistical distributions of synthetic aperture radar (SAR) images based on central limit theorem cannot reflect the statistical characteristics of sharp peak and heavy tail of high-resolution SAR images. By using the generalized central limit theorem, the heavy-tailed distributions (heavy-tailed Rayleigh distribution for amplitude image and heavy-tailed exponential distribution for intensity image) are obtained from the symmetric stable distributions of real and imaginary parts of echoes. Taking the heavy-tailed Rayleigh distribution as an example, the algebraic tails of heavy-tailed distributions are explained as well as the statistical properties of sharp peak and heavy tail. In order to model the high-resolution SAR images with the heavy-tailed distributions, based on second-kind statistical, Characteristics the log-cumulant estimator is proposed to efficiently estimate the parameters of the heavy-tailed distributions. Modeling experiments on real SAR images demonstrate that the heavy-tailed distributions based on the generalized central limit theorem can accurately describe the sharp-peaked and heavy-tailed statistical characteristics of high-resolution SAR images.
    • 基金项目: 国家重点基础研究发展计划(批准号:2007CB311006)、国家高技术研究发展计划(批准号:2006AA01Z126)、国家自然科学基金(批准号:60602026)和高等学校博士学科点专项科研基金(批准号:20070698002)资助的课题.
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  • 文章访问数:  8871
  • PDF下载量:  873
  • 被引次数: 0
出版历程
  • 收稿日期:  2009-05-04
  • 修回日期:  2009-06-09
  • 刊出日期:  2010-01-05

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