首页> 外文会议>International Conference on Signal Processing(ICSP'06); 20061116-20; Guilin(CN) >Novel Method for SAR Image Segmentation with Application to Bridge Detection
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Novel Method for SAR Image Segmentation with Application to Bridge Detection

机译:SAR图像分割的新方法及其在桥梁检测中的应用

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摘要

A new method for SAR image segmentation is proposed in this paper. Region segmentation can be achieved by contour tracking, and we use the general Bayesian tracking framework to solve this problem. Due to the non-linearity of the tracking problem and the non-Gaussian noise of SAR image, Monte Carlo based particle filtering algorithm is adopted to obtain the Bayesian optimal solution. Based on the tracking framework, a particle filter based contour tracking method is proposed for region segmentation in SAR images. In this method, each particle is assigned to a linear segment with specific location and direction. The response of the local edge detector is used to calculate the particle weight while the global contextual knowledge, such as the smoothness of the region boundary, is guaranteed by the propagation of particles. The proposed method is employed for river boundary extraction on the SAR image. Furthermore, bridges over a river are detected.
机译:提出了一种新的SAR图像分割方法。通过轮廓跟踪可以实现区域分割,我们使用通用的贝叶斯跟踪框架来解决此问题。由于跟踪问题的非线性和SAR图像的非高斯噪声,采用基于蒙特卡洛的粒子滤波算法获得贝叶斯最优解。基于跟踪框架,提出了一种基于粒子滤波的轮廓跟踪方法,用于SAR图像的区域分割。在这种方法中,将每个粒子分配给具有特定位置和方向的线性段。局部边缘检测器的响应用于计算粒子权重,而粒子上下文的传播可保证全局上下文知识(例如区域边界的平滑度)。该方法用于SAR图像的河道边界提取。此外,可以检测到河上的桥梁。

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