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Edge Detection in Potential-Field Gradient Tensor Data by Use of Improved Horizontal Analytical Signal Methods

机译:电位场梯度张量数据边缘检测的改进水平分析信号方法

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Potential-field gradient tensor data contain nine signal components. They include higher-frequency signals than potential field data, which can help delineation of small-scale features of the sources. Edge-detection technology has been widely used to delineate the edges of the sources. We need to develop a new edge detector to process gradient tensor data. Many methods are used to recognize the edges of data. The analytical signal method is a widely used edge-detection filter. We make some improvements to the analytical signal method so it can process potential-field gradient tensor data. We define new filters based on the horizontal directional analytical signal and the second-order horizontal directional analytical signal. To display the large and small amplitude edges simultaneously, we present two normalization methods: use of the maxima of nearby values to normalize the center point in a moving window and use of different orders of vertical derivatives to normalize the new filters. The methods were tested on synthetic and real potential-field gradient tensor data to verify their feasibility. Compared with other balance filters, the normalized second-order horizontal directional analytical signal and true vertical derivatives of the directional analytical signal normalized by use of the vertical derivative of vertical gravity gradient furnish better results and reveal more detail.
机译:势场梯度张量数据包含九个信号分量。它们包括比潜在场数据更高频率的信号,这可以帮助描绘源的小尺度特征。边缘检测技术已被广泛用于描绘光源的边缘。我们需要开发一种新的边缘检测器来处理梯度张量数据。许多方法用于识别数据的边缘。分析信号方法是一种广泛使用的边缘检测滤波器。我们对分析信号方法进行了一些改进,使其可以处理势场梯度张量数据。我们基于水平方向分析信号和二阶水平方向分析信号定义新的滤波器。为了同时显示大振幅边缘和小振幅边缘,我们提出了两种归一化方法:使用附近值的最大值对移动窗口中的中心点进行归一化,以及使用不同阶数的垂直导数对新滤波器进行归一化。对这些方法进行了合成和实际势场梯度张量数据的测试,以验证其可行性。与其他平衡滤波器相比,归一化的二阶水平方向分析信号和通过使用垂直重力梯度的垂直导数进行归一化的方向分析信号的真实垂直导数提供更好的结果并显示更多细节。

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