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STDR: A Novel Approach for Enhancing and Edge Detection of Potential Field Data

机译:STDR:一种提升和边缘检测潜在场数据的新方法

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摘要

Edge detection is one of the most important steps in the map interpretation of potential field data. In such a dataset, it is difficult to distinguish adjacent anomalous sources due to their field superposition. In particular, the presence of overlain shallow and deep magnetic/gravity sources leads to strong and weak anomalies. In this paper, we present an improved filter, STDR, which utilises the ratio of the second-order vertical derivative to the second-order total horizontal derivative at the tilt angle equation. The maximum and minimum values of this filter delineate the positive and negative anomalies, respectively. This novel filtering approach normalises the intensity of strong and weak anomalies, as well as anomalies with different depths and properties. Moreover, to better illustrate the edges, its total horizontal derivative (THD_STDR) is also used. For positive and negative anomalies, the maximum value of the THD_STDR filter shows the edges of the anomalies. The potentiality of the proposed method is examined through both synthetic and real case scenarios and the results are compared with a number of existing edge detector filters, namely TDR, THD_TDR, Theta and TDX. Due to substantial improvements in the filtering, STDR and its total horizontal derivative allow for more accurate estimation of anomaly edges in comparison with the other filtering techniques. As a consequence, the interpretation of the potential field data is more feasible using the STDR filtering method.
机译:边缘检测是地图解释潜在场数据中最重要的步骤之一。在这样的数据集中,难以引起相邻的异常来源由于它们的野外叠加。特别地,覆盖的浅和深磁/重力源的存在导致强弱的异常。在本文中,我们介绍了一种改进的滤波器STDR,其利用二阶垂直导数与倾斜角度方程的二阶总水平导数的比率。该过滤器的最大值和最小值分别描绘了正面和阴性异常。这种新颖的过滤方法落实强弱异常的强度,以及具有不同深度和性质的异常。此外,为了更好地说明边缘,还使用其总水平导数(THD_STDR)。对于正面和负异常,THD_STDR滤波器的最大值显示了异常的边缘。通过合成和实际情况地检查所提出的方法的潜力,并将结果与​​许多现有的边缘检测器过滤器进行比较,即TDR,THD_TDR,THETA和TDX。由于滤波,STDR及其总水平衍生物的大量改进允许与其他过滤技术相比,允许更准确地估计异常边缘。结果,使用STDR滤波方法对潜在场数据的解释更加可行。

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