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Markov-based approaches for ternary change detection between two high resolution synthetic aperture sonar tracks

机译:基于马尔可夫的两个高分辨率合成孔径声纳轨迹之间三元变化检测的方法

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摘要

Change detection methods, consisting in detecting potential changes between two images, representing the same geographical area but acquired at different times, have been widely used in sonar imagery. Such methods are very useful to accurately monitor, potentially low, variations in complex environments. Coherent methods, relying on both amplitude and phase of the backscattered signal, are limited because of the signals correlation that plummets with both frequency and temporal baseline. In this paper, we propose an incoherent method, only using the amplitude images, to solve the change detection problem. This method relies on a robust mathematical expression for the class conditional probability density functions of the log-ratio image along with various Markov-based approaches to provide a ternary change map, thus allowing to better understand the changes that have occured on the seafloor.
机译:变化检测方法包括检测代表同一地理区域但在不同时间获取的两幅图像之间的潜在变化,已广泛用于声纳图像中。这样的方法对于准确监视复杂环境中可能很小的变化非常有用。依赖于反向散射信号的幅度和相位的相干方法受到限制,因为信号的相关性随频率和时间基线而下降。在本文中,我们提出了一种仅使用幅度图像的非相干方法来解决变化检测问题。此方法依赖于对数比图像的类条件概率密度函数的鲁棒数学表达式,以及各种基于马尔可夫的方法来提供三元变化图,从而可以更好地了解海底发生的变化。

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