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Data mining of spherical harmonic (SH) coefficients using artificial neural networks (ANN)

机译:使用人工神经网络(ANN)进行球谐(SH)系数的数据挖掘

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Gravity field recovery using space technology has evolved in the last two decades. Several dedicated satellite missions have been sent to the space to get more accurate and up-to-date gravity field information, including, Challenging Minisatellite Payload (CHAMP), Gravity Recovery and Climate Experiment (GRACE) and Gravity field and Ocean Circulation Explorer (GOCE), launched on 15 July 2000, 17 March 2002 and 17 March 2009, respectively. GRACE is the extended version of the CHAMP. CHAMP is an example of high-low satellite-to-satellite tracking (HL-SST) while the GRACE is an example of low-low satellite-to-satellite tracking (LL-SST) system. We study the gravity field in the form of SH coefficients using the range-rates observations from GRACE tandem satellites system. Sets of coefficients along with their standard deviation, recovered by GFZ-Germany up to degree and order 90 are available through the podaac data servers. In one month period, gravity field varies in few regions of the Earth. We observe it through the varying numerical values of few SH coefficients. In this contribution, we classify SH coefficients on the base of their information contents using artificial neural network (ANN) into two classes, one of them is the essential coefficient class which represents the varying gravity field and the other is the static coefficient class which does not have the varying gravity information. In the end we show that we can concentrate only on essential coefficients during the recovery process, rather than processing the whole set of coefficients.
机译:在过去的二十年中,利用太空技术进行重力场恢复已经取得了发展。已向太空发送了一些专用卫星任务,以获取更准确和最新的重力场信息,包括具有挑战性的微型卫星有效载荷(CHAMP),重力恢复和气候实验(GRACE)以及重力场和海洋环流探测器(GOCE) ),分别于2000年7月15日,2002年3月17日和2009年3月17日启动。 GRACE是CHAMP的扩展版本。 CHAMP是高低卫星到卫星跟踪(HL-SST)的示例,而GRACE是低低卫星到卫星跟踪(LL-SST)系统的示例。我们使用GRACE串联卫星系统的测距率观测值,以SH系数的形式研究重力场。可通过podaac数据服务器获得由GFZ-Germany恢复至90度和90级的系数集及其标准偏差。在一个月的时间里,重力场在地球的几个区域都变化。我们通过几个SH系数的变化数值来观察它。在此贡献中,我们使用人工神经网络(ANN)根据SH系数的信息内容将其分为两类,其中一类是代表变化的重力场的基本系数类,另一类是静态系数类,它表示没有变化的重力信息。最后,我们表明,在恢复过程中,我们只能专注于基本系数,而不能处理整个系数集。

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