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Exploring a Principled Framework For Deep Subspace Clustering
{Chun-Guang Li Rong Xiao Xianbiao Qi wei he Zhiyuan Huang Xianghan Meng}

Abstract
Subspace clustering is a classical unsupervised learning task, built on a basic assumption that high-dimensional data can be approximated by a union of subspaces (UoS). Nevertheless, the real-world data are often deviating from the UoS assumption. To address this challenge, state-of-the-art deep subspace clustering algorithms attempt to jointly learn UoS representations and self-expressive coefficients. However, the general framework of the existing algorithms suffers from a catastrophic feature collapse and lacks a theoretical guarantee to learn desired UoS representation. In this paper, we present a Principled fRamewOrk for Deep Subspace Clustering (PRO-DSC), which is designed to learn structured representations and self-expressive coefficients in a unified manner. Specifically, in PRO-DSC, we incorporate an effective regularization on the learned representations into the self-expressive model, and prove that the regularized self-expressive model is able to prevent feature space collapse and the learned optimal representations under certain condition lie on a union of orthogonal subspaces. Moreover, we provide a scalable and efficient approach to implement our PRO-DSC and conduct extensive experiments to verify our theoretical findings and demonstrate the superior performance of our proposed deep subspace clustering approach.
Benchmarks
| Benchmark | Methodology | Metrics |
|---|---|---|
| image-clustering-on-cifar-10 | PRO-DSC | Accuracy: 0.972 NMI: 0.928 |
| image-clustering-on-cifar-100 | PRO-DSC | Accuracy: 0.773 NMI: 0.824 |
| image-clustering-on-imagenet | PRO-DSC | Accuracy: 65.0 NMI: 83.4 |
| image-clustering-on-imagenet-dog-15 | PRO-DSC | Accuracy: 0.840 NMI: 0.812 |
| image-clustering-on-tiny-imagenet | PRO-DSC | Accuracy: 0.698 NMI: 0.805 |
| unsupervised-image-classification-on-cifar-20 | PRO-DSC | Accuracy: 71.6 NMI: 73.2 |
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