论文标题

使用单调功能性高斯工艺模拟器攀爬中飞机的概率模型

A Probabilistic Model for Aircraft in Climb using Monotonic Functional Gaussian Process Emulators

论文作者

Pepper, Nick, Thomas, Marc, De Ath, George, Oliver, Enrico, Cannon, Richard, Everson, Richard, Dodwell, Tim

论文摘要

确保垂直分离是在拥挤领空中保持飞机之间安全分离的关键手段。飞机轨迹是在存在明显的认知不确定性存在下建模的,从而导致观察到的轨迹与确定性模型的预测之间存在差异,从而阻碍了计划确保安全分离的任务。在本文中,提出了一个概率模型,目的是模仿飞机在攀爬和界定预测轨迹的不确定性时的轨迹。单调的功能表示形式利用了雷达观测中的时空相关性。通过使用高斯工艺模拟器,参数化攀爬的特征将直接映射到功能输出,提供快速近似,同时确保所得的轨迹是单调的。该模型被用作攀爬中的飞机的概率数字双胞胎,并反对BADA,这是一种确定性模型,该模型在行业中广泛使用。当应用于看不见的测试数据集时,发现概率模型提供了一个平均预测,其准确性更高,预测34%。

Ensuring vertical separation is a key means of maintaining safe separation between aircraft in congested airspace. Aircraft trajectories are modelled in the presence of significant epistemic uncertainty, leading to discrepancies between observed trajectories and the predictions of deterministic models, hampering the task of planning to ensure safe separation. In this paper a probabilistic model is presented, for the purpose of emulating the trajectories of aircraft in climb and bounding the uncertainty of the predicted trajectory. A monotonic, functional representation exploits the spatio-temporal correlations in the radar observations. Through the use of Gaussian Process Emulators, features that parameterise the climb are mapped directly to functional outputs, providing a fast approximation, while ensuring that the resulting trajectory is monotonic. The model was applied as a probabilistic digital twin for aircraft in climb and baselined against BADA, a deterministic model widely used in industry. When applied to an unseen test dataset, the probabilistic model was found to provide a mean prediction that was 21% more accurate, with a 34% sharper forecast.

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