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A flight maneuver recognition method based on multi-strategy affine canonical time warping

机译:一种基于多策略仿射典型时间翘曲的飞行机动识别方法

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Maneuver recognition for unmanned combat air vehicle (UCAV) is a necessary technique for autonomous air combat. As a spatiotemporal alignment problem of multidimensional time series, the flight maneuver recognition is solved by a novel alignment measure, multi-strategy affine canonical time warping approach (MACTW) and its derivative form, which are extensions of affine canonical time warping (ACTW). MACTW makes several contributions: (1) it proposes multi-strategy success-history based adaptive differential evolution algorithm with linear population size reduction (MLSHADE) to accelerate the search of warping path of dynamic time warping (DTW); (2) it introduces affine strategy to address offset and scaling of canonical time warping (CTW), which is a combination of DTW and canonical correlation analysis (CCA); and (3) it extends ACTW based on MLSHADE to align multidimensional time series In addition, MLSHADE is a novel optimization technique that employs weighted mutation, inferior solution search, and eigen Gaussian walk strategies to improve the optimization efficiency. The experimental results on the CEC 2018 test suite illustrate the superior benefits of MLSHADE. UCAV flight maneuver recognition system which includes segmentation, preprocessing and recognition modules is modeled. The experimental results on UCR datasets and UCAV maneuver datasets including action units and long maneuver datasets illustrate the superiority of MACTW and its derivative form compared with other state-of-the-art alignment measures. (C) 2020 Elsevier B.V. All rights reserved.
机译:机动识别无人战斗机(UCAV)是自主空战的必要技术。作为多维时间序列的时空对准问题,通过新的对准测量,多策略染色时间翘曲方法(MacTW)及其衍生形式来解决飞行操纵识别,这是仿射典型时间翘曲(actw)的延伸。 Mactw做出了几个贡献:(1)它提出了基于多策略成功历史的自适应差分演进算法,具有线性群体尺寸减少(MLSHade),以加速动态时间翘曲的翘曲路径(DTW)的搜索。 (2)介绍仿射策略,以解决规范时间翘曲(CTW)的偏移和缩放,这是DTW和规范相关分析(CCA)的组合; (3)它延伸了基于MLSHADE的actw以对准多维时间序列,MLSHADE是一种新颖的优化技术,采用加权突变,劣质解决方案搜索和特征高斯步行策略来提高优化效率。 CEC 2018测试套件上的实验结果说明了MLSHADE的优越益处。 UCAV飞行机动识别系统,包括分段,预处理和识别模块是模拟的。 UCR数据集和UCAV机动数据集的实验结果包括动作单位和长时间运输数据集的实验结果说明了与其他最先进的对准措施相比的MacTW及其衍生形式的优越性。 (c)2020 Elsevier B.V.保留所有权利。

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