Modelling issues in vision based aircraft navigation during landing

Tarun Soni, B. Sridhar
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引用次数: 14

Abstract

This paper investigates the the feasibility of using visual and infrared imaging sensors to aid in the location of the aircraft position during operations such as landing in bad weather. The choice of the airport model used is crucial to algorithms which are used for position estimation based on pattern recognition. In this paper we describe the effects the choice of a model has on the behaviour of such matching algorithms. Three basic models are chosen: a line segment based model, an area based model and a texture based model. It is seen that a sparse line segment based model is not adequate to identify the runway since it matches a number of false artifacts in the image. An enhanced line segment based model containing a large number of features compares favourably with the area based model. The texture based model is seen to need a number of camera and weather dependent parameters and the performance of such a scheme is not seen to be substantially better. Thus either a proper area based model or a pseudo-area based model (based on a very large number of line features) can be seen to provide the best performance for such landmark identification and position determination algorithms.<>
基于视觉的飞机着陆导航建模问题
本文研究了在恶劣天气降落等作战过程中,利用视觉和红外成像传感器辅助飞机位置定位的可行性。在基于模式识别的位置估计算法中,机场模型的选择至关重要。在本文中,我们描述了模型的选择对这种匹配算法的行为的影响。选择了三种基本模型:基于线段的模型、基于面积的模型和基于纹理的模型。可以看出,基于稀疏线段的模型不足以识别跑道,因为它与图像中的许多虚假伪影相匹配。基于线段的增强模型包含大量的特征,与基于区域的模型比较有利。基于纹理的模型需要许多相机和天气相关的参数,并且这种方案的性能并没有明显更好。因此,适当的基于区域的模型或伪基于区域的模型(基于非常大量的线特征)可以为此类地标识别和位置确定算法提供最佳性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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