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Simulation Based Verification of Drogue Detection Algorithms for Autonomous Aerial Refueling

机译:基于模拟的自主空中加油锥套检测算法验证

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Drogue detection algorithms are object detection algorithms that are used to detect the drogue basket using a camera in order to automate the docking phase of aerial refueling. Deep learning techniques, particularly Convolutional Neural Networks (CNNs) are receiving more and more interest for the drogue detection problem. The verification of such networks is a recent challenge. This paper proposes a simulation environment to generate test data, a test scenario generation approach to achieve a broad coverage, and an evaluation strategy. It not only integrates them in a testing workflow, but also demonstrates them with an example case.
机译:锥套检测算法是对象检测算法,用于使用摄像机检测锥套,以使空中加油的对接阶段自动化。深度学习技术,尤其是卷积神经网络(CNN),对于锥套检测问题越来越受到关注。这种网络的验证是最近的挑战。本文提出了一种用于生成测试数据的仿真环境,一种实现广泛覆盖的测试方案生成方法以及一种评估策略。它不仅将它们集成到测试工作流程中,而且还通过示例案例进行了演示。

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