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Intensity Estimation of Tropical Cyclones Using the Relevance Vector Machine From Infrared Satellite Image Data

机译:相关向量机从红外卫星图像数据估算热带气旋的强度

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摘要

In this study, tropical cyclone (TC) infrared geostationary satellite images obtained by FY-2 satellite scanning are used as reference points in the overall infrared geostationary satellite image, the deviation angle gradient co-occurrence matrix is constructed, and the statistical parameters of the co-occurrence matrix are extracted. Combined with the best track data of tropical cyclones provided by the China Meteorological Administration, the TC center is used as the origin point, and the satellite image is divided into nine 50 km scales, from the origin to a range of 450 km. Relevance vector machines are then used to construct the TC intensity estimation model for each scale. The experimental results show that the optimal radial scale is approximately 250 km. Based on these results, the proposed TC intensity estimation technique can be used for TC intensity prediction. This technique has the potential to improve the accuracy of TC intensity prediction and to provide technical support for disaster reduction.
机译:在本研究中,将通过FY-2卫星扫描获得的热带气旋(TC)红外对地静止卫星图像作为整体红外对地静止卫星图像的参考点,构造了偏差角梯度共生矩阵,并计算了统计参数。共现矩阵被提取。结合中国气象局提供的热带气旋的最佳跟踪数据,以TC中心为起点,并将卫星图像分为9个50 km的尺度,从起点到450 km。然后使用相关性向量机为每个尺度构建TC强度估计模型。实验结果表明,最佳径向尺度约为250 km。基于这些结果,提出的TC强度估计技术可用于TC强度预测。该技术有可能提高TC强度预测的准确性,并为减少灾害提供技术支持。

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