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首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >Detection of mesoscale thermal fronts from 4 km data using smoothing techniques: Gradient-based fronts classification and basin scale application
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Detection of mesoscale thermal fronts from 4 km data using smoothing techniques: Gradient-based fronts classification and basin scale application

机译:使用平滑技术从4 km数据检测中尺度热锋面:基于梯度的锋面分类和流域尺度应用

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摘要

In order to optimize frontal detection in sea surface temperature fields at 4 km resolution, a combined statistical and expert-based approach is applied to test different spatial smoothing of the data prior to the detection process. Fronts are usually detected at 1 km resolution using the histogram-based, single image edge detection (SIED) algorithm developed by Cayula and Cornillon in 1992, with a standard preliminary smoothing using a median filter and a 3 x 3 pixel kernel. Here, detections are performed in three study regions (off Morocco, the Mozambique Channel and north-western Australia) and across the Indian Ocean basin using the combination of multiple windows (CMW) method developed by Nieto, Demarcq and McClatchie in 2012 which improves on the original Cayula and Cornillon algorithm. Detections at 4 km and 1 km resolution are compared.
机译:为了优化4 km分辨率的海面温度场中的正面探测,在探测过程之前,采用了一种基于统计和专家的组合方法来测试数据的不同空间平滑度。通常使用由Cayula和Cornillon在1992年开发的基于直方图的单图像边缘检测(SIED)算法以1 km的分辨率检测前沿,并使用中值滤波器和3 x 3像素内核进行标准的初步平滑处理。在这里,使用Nieto,Demarcq和McClatchie在2012年开发的多窗口组合方法,在三个研究区域(摩洛哥,莫桑比克海峡和澳大利亚西北部)以及整个印度洋海盆进行了探测,该方法结合了多窗口法(CMW)原始的Cayula和Cornillon算法。比较了4 km和1 km分辨率下的检测结果。

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