决策树回归在卫星导航遥测数据建模中的应用

Xuehuan Zhang, Jian-bo Sun, D. Zhao
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引用次数: 0

摘要

为了了解在轨卫星的工作状态,有必要对遥测数据进行分析。快速变化的遥测数据是反映导航卫星导航服务状态的重要数据。它的分析和建模有助于挖掘导航遥测数据的深层信息。提出了一种基于决策树回归的在轨卫星快速变化遥测数据建模方法。该模型用于预测频率点处的功率测量值。结果表明,R2值大于0.96,预测值误差较小。建立了效果良好的快速变化遥测数据模型,为人工智能在快速变化遥测数据分析中的应用提供了一种可能的方案。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Application of decision tree regression in navigation satellite telemetry data modeling
In order to understand the working state of on orbit satellites, it is necessary to analyze the telemetry data. The fast-changing telemetry data is an important data to express the navigation service status of navigation satellite. Its analysis and modeling are helpful to mine the deep information of navigation telemetry data. A modeling method of on orbit navigation satellite fast-changing telemetry data based on decision tree regression is proposed. The model is used to predict the power measurements at frequency points. The results show that R2 value is greater than 0.96, and the error of prediction value is small. A fast-changing telemetry data model with good effect is established, which provides a possible scheme for the application of artificial intelligence in the analysis of fast-changing telemetry data.
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