Robust tensor factorization with unknown noise
Chen XA(陈希爱); Han Z(韩志); Wang, Yao; Zhao, Qian; Meng, Deyu; Tang YD(唐延东)
2016
会议名称2016 IEEE Conference on Computer Vision and Pattern Recognition, CVPR 2016
会议日期June 26 - July 1, 2016
会议地点Las Vegas, NV, United states
页码5213-5221
通讯作者韩志
中文摘要Because of the limitations of matrix factorization, such as losing spatial structure information, the concept of tensor factorization has been applied for the recovery of a low dimensional subspace from high dimensional visual data. Generally, the recovery is achieved by minimizing the loss function between the observed data and the factorization representation. Under different assumptions of the noise distribution, the loss functions are in various forms, like L1and L2norms. However, real data are often corrupted by noise with an unknown distribution. Then any specific form of loss function for one specific kind of noise often fails to tackle such real data with unknown noise. In this paper, we propose a tensor factorization algorithm to model the noise as a Mixture of Gaussians (MoG). As MoG has the ability of universally approximating any hybrids of continuous distributions, our algorithm can effectively recover the low dimensional subspace from various forms of noisy observations. The parameters of MoG are estimated under the EM framework and through a new developed algorithm of weighted low-rank tensor factorization (WLRTF). The effectiveness of our algorithm are substantiated by extensive experiments on both of synthetic data and real image data.
收录类别EI ; CPCI(ISTP)
产权排序1
会议主办者2016-January
会议录Proceedings of the IEEE Computer Society Conference on Computer Vision and Pattern Recognition
会议录出版者IEEE Computer Society
会议录出版地Washington, DC
语种英语
ISSN号1063-6919
ISBN号978-1-4673-8851-1
WOS记录号WOS:000400012305031
内容类型会议论文
源URL[http://ir.sia.cn/handle/173321/19197]  
专题沈阳自动化研究所_机器人学研究室
推荐引用方式
GB/T 7714
Chen XA,Han Z,Wang, Yao,et al. Robust tensor factorization with unknown noise[C]. 见:2016 IEEE Conference on Computer Vision and Pattern Recognition, CVPR 2016. Las Vegas, NV, United states. June 26 - July 1, 2016.
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