Nonlinear Dimensionality Reduction for Data on Manifold with Rings
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    Abstract:

    Isomap has attracted attentions recently due to its prominent performance on nonlinear dimensionality reduction. However, how to implement effective learning for data on manifold with rings is still a remaining problem. To solve this problem, a systemic strategy is presented in this study. Based on the intrinsic implementation principle of Isomap, a theorem is presented which gives a sufficient and necessary condition to judge whether a manifold is with rings. Besides, an algorithm for detecting ring structures in the manifold is constructed and a nonlinear dimensionality reduction strategy is developed through polar coordinates transformation. A series of simulation results implemented on a series of synthetic and real-world data sets generated by manifolds with or without rings verify the prominent performance of the new method.

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孟德宇,古楠楠,徐宗本,梁 怡.针对环状流形数据的非线性降维.软件学报,2008,19(11):2908-2920

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  • Received:June 05,2007
  • Revised:August 03,2007
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