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Two dimensional noncausal AR-ARCH model: Stationary conditions, parameter estimation and its application to anomaly detection

机译:二维非因果AR-ARCH模型:平稳条件,参数估计及其在异常检测中的应用

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Image anomaly detection is the process of extracting a small number of clustered pixels which are different from the background. The type of image, its characteristics and the type of anomalies depend on the application at hand. In this paper, we introduce a new statistical model called noncausal autoregressive-autoregressive conditional heterosce-dasticity (AR-ARCH) model for background in sonar images. Based on this background model, we propose a novel anomaly detection technique in sonar images. This new statistical model (i.e. noncausal ARCH) is an extension of the conventional ARCH model. We provide sufficient stationarity conditions and develop a computationally efficient method for estimating the model parameters which reduces to solving two sets of linear equations. We show that this estimator is asymptotically consistent. Using matched subspace detector (MSD) along with noncausal AR-ARCH modeling of the background in the wavelet domain, we propose an anomaly detection algorithm for sonar images, which is computationally efficient and less dependent on the image orientation. Simulation results demonstrate the performance of the proposed parameter estimation and the anomaly detection algorithm.
机译:图像异常检测是提取少量与背景不同的聚类像素的过程。图像的类型,特征和异常类型取决于当前的应用。在本文中,我们为声纳图像中的背景引入了一种新的统计模型,称为非因果自回归-自回归条件异质性-达数(AR-ARCH)模型。基于此背景模型,我们提出了一种新颖的声纳图像异常检测技术。这种新的统计模型(即非因果关系ARCH)是常规ARCH模型的扩展。我们提供了充分的平稳性条件,并开发了一种计算有效的方法来估计模型参数,该方法可简化为求解两组线性方程组。我们证明了该估计量是渐近一致的。使用匹配子空间检测器(MSD)结合小波域背景的非因果AR-ARCH建模,我们提出了一种声纳图像异常检测算法,该算法计算效率高,并且对图像方向的依赖性较小。仿真结果证明了所提出的参数估计和异常检测算法的性能。

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