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首页> 外文期刊>Geophysics: Journal of the Society of Exploration Geophysicists >Trend enhancement in aeromagnetic maps using constrained coherence-enhancing diffusion filtering
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Trend enhancement in aeromagnetic maps using constrained coherence-enhancing diffusion filtering

机译:使用约束相干增强扩散滤波的航空地图趋势增强

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摘要

Geophysical data have to be modeled on a regular grid for various numerical procedures. However, airborne data tend to be collected with fine spacing along traverses but with much coarser spacing between traverses. Gridding only honors flight-line data when the mesh size is close to the sample spacing; otherwise, high-frequency information is always lost, which creates aliasing artifacts. For example, linear trends at an acute angle with respect to flight lines are imaged as “bull’s-eyes,” which resemble a boudinage at line intersections. The presence of boudinage artifacts can significantly distort anomalies of interest and thus lead to incorrect interpretation of shapes or sizes of causative bodies. We evaluated a method called constrained coherenceenhancing diffusion filtering that only diffuses the image in specific areas where strong anisotropy is detected. This method was tested on synthetic and field data set. Results indicated that the method can be efficiently used to enhance linear structure in multiple local directions. The images derived from this grid, such as the vertical gradient map, are also significantly improved. The original line data are honored by the constraints applied. We also used a field data set to compare the proposed approach with the approach used when diffusion is applied uniformly in all areas, irrespective of anisotropy. The proposed method was proven to produce better results with fewer artifacts.
机译:对于各种数值程序,必须在规则的网格上对地球物理数据进行建模。但是,机载数据的收集往往沿导线的间距很小,但导线之间的间距要大得多。网格化仅在网格大小接近样本间距时才接受飞行数据。否则,高频信息将始终丢失,从而产生混叠伪像。例如,相对于飞行线成锐角的线性趋势被成像为“牛眼”,类似于直线交叉点处的栅栏。 bou物的存在会大大扭曲感兴趣的异常,从而导致对致病物体的形状或大小的错误解释。我们评估了一种称为约束相干增强扩散滤波的方法,该方法仅在检测到强各向异性的特定区域中扩散图像。该方法已在综合和现场数据集上进行了测试。结果表明该方法可以有效地用于增强多个局部方向上的线性结构。从该网格派生的图像(例如垂直梯度图)也得到了显着改善。原始线数据受所应用约束的约束。我们还使用了一个现场数据集,将所提出的方法与在所有区域均匀应用扩散的方法(无论各向异性如何)进行了比较。实践证明,所提出的方法可以产生更少伪像的更好结果。

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