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An Algorithm for Cold Patch Detection in the Sea off Northeast Taiwan Using Multi-Sensor Data

机译:多传感器数据的台湾东北海冷斑检测算法

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Multi-sensor data from different satellites are used to identify an upwelling area in the sea off northeast Taiwan. Sea surface temperature (SST) data derived from infrared and microwave, as well as sea surface height anomaly (SSHA) data derived from satellite altimeters are used for this study. An integration filtering algorithm based on SST data is developed for detecting the cold patch induced by the upwelling. The center of the cold patch is identified by the maximum negative deviation relative to the spatial mean of a SST image within the study area and its climatological mean of each pixel. The boundary of the cold patch is found by the largest SST gradient. The along track SSHA data derived from satellite altimeters are then used to verify the detected cold patch. Applying the detecting algorithm, spatial and temporal characteristics and variations of the cold patch are revealed. The cold patch has an average area of 1.92 × 104 km2. Its occurrence frequencies are high from June to October and reach a peak in July. The mean SST of the cold patch is 23.8 °C. In addition to the annual and the intraseasonal fluctuation with main peak centered at 60 days, the cold patch also has a variation period of about 4.7 years in the interannual timescale. This implies that the Kuroshio variations and long-term and large scale processes playing roles in modifying the cold patch occurrence frequency.
机译:来自不同卫星的多传感器数据用于识别台湾东北部海域的上升流区域。这项研究使用了来自红外和微波的海面温度(SST)数据以及来自卫星高度计的海面高度异常(SSHA)数据。提出了一种基于SST数据的积分滤波算法,用于检测上升流诱发的冷区。通过相对于研究区域内SST图像的空间平均值及其每个像素的气候平均值的最大负偏差来识别冷斑的中心。通过最大的SST梯度可以找到冷补丁的边界。然后,从卫星高度计得出的沿轨SSHA数据将用于验证检测到的冷补丁。应用检测算法,揭示了冷补丁的时空特征和变化。寒冷地区的平均面积为1.92×10 4 km 2 。它的发生频率从6月到10月高,在7月达到峰值。冷补丁的平均SST为23.8°C。除了主要峰值集中在60天的年度和季节内波动外,该寒区在年际时间尺度上的变化期也约为4.7年。这意味着黑潮的变化以及长期和大规模的过程在改变冷斑发生频率方面发挥了作用。

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