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Cost-Effective Telemetry and Command Ground Systems Automation Strategy for the Soil Moisture Active Passive (SMAP) Mission

机译:具有成本效益的遥测和指挥地面系统自动化策略,用于土壤水分主动无源(SMAP)任务

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Soil Moisture Active Passive (SMAP) is an Earth-orbiting, remote-sensing NASA mission slated for launch in 2014. The ground data system (GDS) being developed for SMAP is composed of many heterogeneous subsystems, ranging from those that support planning and sequencing to those used for real-time operations, and even further to those that enable science data exchange. A full end-to-end automation of the GDS may result in cost savings during mission operations, but it would require a significant upfront investment to develop such a comprehensive automation. As demonstrated by the Jason-1 and Wide-field Infrared Survey Explorer (WISE) missions, a measure of "lights-out" automation for routine, orbital pass, ground operations can still reduce mission costs through smaller staffing of operators and limiting their working hours. The challenge, then, for the SMAP GDS engineering team, is to formulate an automated operations strategy-and corresponding system architecture-to minimize operator intervention during routine operations, while balancing the development costs associated with the scope and complexity of automation. This paper discusses the automated operations approach being developed for the SMAP GDS. The focus is on automating the activities involved in routine passes, which limits the scope to real-time operations. A key subsystem of the SMAP GDS-NASA's AMMOS Mission Data Processing and Control System (AMPCS)-provides a set of capabilities that enable such automation. Also discussed are the lights-out pass automations of the Jason-1 and WISE missions and how they informed the automation strategy for SMAP. The paper aims to provide insights into what is necessary in automating the GDS operations for Earth satellite missions.
机译:土壤湿度无源被动(SMAP)是2014年推出的地球轨道遥感NASA任务。正在开发用于SMAP的地面数据系统(GDS)由许多异构子系统组成,包括支持计划和排序的那些异构子系统。对于那些用于实时操作的人,甚至进一步到达能够进行科学数据交换的人。 GDS的全新端到端自动化可能会导致特派团运营期间的成本节省,但它需要一个重要的前期投资来开发这种全面的自动化。正如杰森-1和广泛的红外测量探险员(明智的)任务所证明的,衡量常规,轨道通行证的“熄灯”自动化,地面运营仍然可以通过较小的运营商的人员配置来降低任务成本并限制他们的工作小时。那么,对于SMAP GDS工程团队来说,挑战是制定自动化操作策略 - 和相应的系统架构 - 以最大限度地减少常规操作期间的操作员干预,同时平衡与自动化范围和复杂性相关的开发成本。本文讨论了为SMAP GDS开发的自动运营方法。重点是自动化常规通行证中涉及的活动,这将范围限制为实时操作。 SMAP GDS-NASA的AMMOS任务数据处理和控制系统(AMPC)的关键子系统 - 提供了一组实现自动化的功能。还讨论了杰森-1和明智的任务的灯光自动化以及他们如何通知自动化策略进行粉刷。本文旨在提供对自动化地球卫星任务的GDS操作所需的见解。

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