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首页> 外文期刊>Journal of marine systems: journal of the European Association of Marine Sciences and Techniques >An algorithm for oceanic front detection in chlorophyll and SST satellite imagery
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An algorithm for oceanic front detection in chlorophyll and SST satellite imagery

机译:叶绿素和SST卫星图像中海洋锋面检测的算法

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摘要

An algorithm is described for oceanic front detection in chlorophyll (Chl) and sea surface temperature (SST) satellite imagery. The algorithm is based on a gradient approach: the main novelty is a shape-preserving, scale-sensitive, contextual median filter applied selectively and iteratively until convergence. This filter has been developed specifically for Chl since these fields have spatial patterns such as chlorophyll enhancement at thermohaline fronts and small- and meso-scale chlorophyll blooms that are not present in SST fields. Linear Chl enhancements and localized (point-wise) blooms are modeled as ridges and peaks respectively, whereas conventional fronts in Chl and SST fields are modeled as steps or ramps. Examples are presented of the algorithm performance using modeled (synthetic) images as well as synoptic Chl and SST imagery. After testing, the algorithm was used on >6000 synoptic images, 1999-2007, to produce climatologies of Chl and SST fronts off the U.S. Northeast.
机译:描述了一种用于在叶绿素(Chl)和海面温度(SST)卫星图像中进行海洋前沿检测的算法。该算法基于梯度方法:主要的新颖之处是形状保留,比例敏感,上下文中值滤波器,有选择地并迭代地应用,直到收敛为止。该过滤器是专门为Chl开发的,因为这些田地具有空间模式,例如在热盐碱锋处的叶绿素增强以及SST田地中不存在的中小规模的叶绿素水华。线性Chl增强和局部(点向)开花均被建模为山脊和峰,而Chl和SST场中的常规前沿被建模为阶梯或斜坡。给出了使用建模(合成)图像以及天气Ch1和SST图像的算法性能的示例。经过测试后,该算法被用于1999-2007年的> 6000张天气概况图像上,从而在美国东北部产生了Chl和SST锋面的气候。

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