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Learning to Improve Earth Observation Flight Planning

机译:学习改善地球观测飞行计划

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This paper describes a method and system for integrating machine learning with planning and data visualization for the management of mobile sensors for Earth science investigations. Data mining identifies discrepancies between previous observations and predictions made by Earth science models. Locations of these discrepancies become interesting targets for future observations. Such targets become goals used by a flight planner to generate the observation activities. The cycle of observation, data analysis and planning is repeated continuously throughout a multi-week Earth science investigation.
机译:本文介绍了一种用于将机器学习与规划和数据可视化集成的方法和系统,以便为地球科学调查管理移动传感器。数据挖掘识别地球科学模型的先前观察和预测之间的差异。这些差异的位置成为未来观察的有趣目标。这种目标成为飞行计划者使用的目标,以产生观察活动。观察周期,数据分析和规划在整个周的地球科学调查中不断重复。

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