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首页> 外文期刊>Advances in space research >Trajectory classification in circular restricted three-body problem using support vector machine
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Trajectory classification in circular restricted three-body problem using support vector machine

机译:支持向量机在圆形受限三体问题中的轨迹分类

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In the circular restricted three-body problem (CR3BP), transit orbit is a class of orbit which can pass through the bottleneck region of the zero velocity curve and escapes from the vicinity of the primary or the secondary. This kind of orbit plays a very important role in the design of space exploration missions. A kind of low-energy interplanetary transfer, which is called Interplanetary Superhighway (IPS), can be realized by utilizing transit orbits. To use the transit orbit in actual mission design, a key issue is to find an algorithm which can separate the states corresponding to transit orbits from the states corresponding to other types of orbits rapidly. In fact, the distribution of transit orbit in the phase space has been investigated by numerical method, and a Fourier series approximation method has been introduced to describe the boundary of transit orbits. However, the Fourier series approximation method needs several hundred sets of Fourier series. The coefficients of these Fourier series are neither easy to be computed nor convenient to be stored, which makes the method can hardly be used in actual mission design. In this paper, the support vector machine (SVM) is used to classify the trajectories in the CR3BP. Using the Gaussian kernel, the 6-dimensional states in the CR3BP are mapped into an infinite-dimensional space, and the bound of the transit orbits is described by a hyperplane. A training data generation method is introduced, which reduces the size of training data by generating the states near the hyperplane. The numerical results show that the proposed algorithm gives the good correct rate of classification, and its computing speed is much faster than that of the Fourier series approximation method.
机译:在圆形受限三体问题(CR3BP)中,过渡轨道是一类轨道,可以穿过零速度曲线的瓶颈区域,并从初级或次级附近逃脱。这种轨道在太空探索任务的设计中起着非常重要的作用。通过利用轨道,可以实现一种低能量的星际转移,称为星际高速公路(IPS)。为了在实际任务设计中使用过渡轨道,关键问题是找到一种算法,该算法可以将与过渡轨道相对应的状态与与其他类型的轨道相对应的状态迅速分开。实际上,已经通过数值方法研究了过渡轨道在相空间中的分布,并引入了傅里叶级数逼近方法来描述过渡轨道的边界。但是,傅立叶级数逼近方法需要数百套傅立叶级数。这些傅立叶级数的系数既不容易计算也不便于存储,这使得该方法很难用于实际的任务设计中。在本文中,使用支持向量机(SVM)对CR3BP中的轨迹进行分类。使用高斯核,CR3BP中的6维状态被映射到一个无穷维空间,并且过渡轨道的边界由一个超平面描述。介绍了一种训练数据生成方法,该方法通过在超平面附近生成状态来减少训练数据的大小。数值结果表明,该算法具有很好的分类正确率,其计算速度比傅里叶级数逼近法要快。

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