- Category:
- Other systems
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- 15kb
- Update:
- 2017-09-16
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- 吕
Description: Based on the basic spectral clustering algorithm such as sparse subspace clustering and low rank subspace clustering, the local tangent space function and the principal component analysis algorithm are established by using the kernel mapping algorithm, which can deal with the independent subspace Clustering, non-independent subspace clustering, nonlinear clustering, mixed multi-fluid clustering problems and a variety of practical problems with large amounts of data, including dealing with motion segmentation, face recognition, workpiece recognition, etc. Data clustering algorithm, and the introduction of Map-Reduce parallel processing method to optimize the computational efficiency of the algorithm
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