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Topological Mapping with Multiple Visual Manifolds

机译:具有多个视觉流形的拓扑映射

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摘要

We address the problem of building topological maps in visual space for robot navigation. The nodes of our topological maps consist of clusters along manifolds, and we propose an unsupervised learning algorithm that automatically constructs these manifolds - the user need only specify the desired number of clusters and the minimum number of images per cluster. This spectral clustering like framework allows each cluster to optimize a separate set of clustering parameters, and we demonstrate empirically that this flexibility can significantly improve clustering results. We further propose a framework for servoing the robot in our manifold space, which would allow the robot to navigate from any point on one manifold (topological node) to any specified point on a second manifold. Finally, we present experimental results on indoor and outdoor image sequences demonstrating the efficacy of the proposed algorithm.
机译:我们解决了在视觉空间中为机器人导航构建拓扑图的问题。我们的拓扑图的节点由沿着流形的簇组成,我们提出了一种无监督的学习算法,该算法可自动构建这些流形-用户只需要指定所需的簇数和每个簇的最小图像数即可。这种类似于频谱聚类的框架允许每个聚类优化一组单独的聚类参数,并且我们凭经验证明这种灵活性可以显着改善聚类结果。我们进一步提出了在我们的歧管空间中对机器人进行伺服的框架,该框架将允许机器人从一个歧管上的任何点(拓扑节点)导航到第二个歧管上的任何指定点。最后,我们在室内和室外图像序列上给出了实验结果,证明了该算法的有效性。

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