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Evaluation of Flight Parameters During Approach and Landing Phases by Applying Principal Component Analysis

机译:应用主成分分析法评估进近和着陆阶段的飞行参数

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This paper adopts an unsupervised learning technique, Principal Component Analysis (PCA) to analyze flight data. While the flight parameters for a stable approach have been established for a while, the paper reevaluates these flight parameters using PCA for a set of airports across the United States of America. Certain flight parameters were found to be more sensitive to some airports. The parameters have been cross-checked with experts in the industry to better interpret theirsignificance.
机译:本文采用无监督的学习技术,主成分分析(PCA)来分析飞行数据。虽然已经建立了稳定的方法的飞行参数,但是该论文将使用PCA用于整个美利坚合众国的一套机​​场的PCA来评估这些飞行参数。发现某些飞行参数对某些机场更敏感。参数与行业专家交叉检查,以更好地解释其关键。

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