Literature DB >> 32780696

Model-Protected Multi-Task Learning.

Jian Liang, Ziqi Liu, Jiayu Zhou, Xiaoqian Jiang, Changshui Zhang, Fei Wang.   

Abstract

Multi-task learning (MTL) refers to the paradigm of learning multiple related tasks together. In contrast, in single-task learning (STL) each individual task is learned independently. MTL often leads to better trained models because they can leverage the commonalities among related tasks. However, because MTL algorithms can "leak" information from different models across different tasks, MTL poses a potential security risk. Specifically, an adversary may participate in the MTL process through one task and thereby acquire the model information for another task. The previously proposed privacy-preserving MTL methods protect data instances rather than models, and some of them may underperform in comparison with STL methods. In this paper, we propose a privacy-preserving MTL framework to prevent information from each model leaking to other models based on a perturbation of the covariance matrix of the model matrix. We study two popular MTL approaches for instantiation, namely, learning the low-rank and group-sparse patterns of the model matrix. Our algorithms can be guaranteed not to underperform compared with STL methods. We build our methods based upon tools for differential privacy, and privacy guarantees, utility bounds are provided, and heterogeneous privacy budgets are considered. The experiments demonstrate that our algorithms outperform the baseline methods constructed by existing privacy-preserving MTL methods on the proposed model-protection problem.

Entities:  

Mesh:

Year:  2022        PMID: 32780696      PMCID: PMC8828679          DOI: 10.1109/TPAMI.2020.3015859

Source DB:  PubMed          Journal:  IEEE Trans Pattern Anal Mach Intell        ISSN: 0098-5589            Impact factor:   6.226


  11 in total

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Authors:  Xiantong Zhen; Mengyang Yu; Xiaofei He; Shuo Li
Journal:  IEEE Trans Pattern Anal Mach Intell       Date:  2017-03-28       Impact factor: 6.226

2.  Adversarial attacks on medical machine learning.

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Authors:  Haoran Li; Li Xiong; Xiaoqian Jiang
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4.  Robust Multi-Task Feature Learning.

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5.  Learning Incoherent Sparse and Low-Rank Patterns from Multiple Tasks.

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Journal:  ACM Trans Knowl Discov Data       Date:  2012-02-01       Impact factor: 2.713

6.  Differentially Private Empirical Risk Minimization.

Authors:  Kamalika Chaudhuri; Claire Monteleoni; Anand D Sarwate
Journal:  J Mach Learn Res       Date:  2011-03       Impact factor: 3.654

7.  Exploring joint disease risk prediction.

Authors:  Xiang Wang; Fei Wang; Jianying Hu; Robert Sorrentino
Journal:  AMIA Annu Symp Proc       Date:  2014-11-14

8.  Clustered Multi-Task Learning Via Alternating Structure Optimization.

Authors:  Jiayu Zhou; Jianhui Chen; Jieping Ye
Journal:  Adv Neural Inf Process Syst       Date:  2011

9.  Towards personalized medicine: leveraging patient similarity and drug similarity analytics.

Authors:  Ping Zhang; Fei Wang; Jianying Hu; Robert Sorrentino
Journal:  AMIA Jt Summits Transl Sci Proc       Date:  2014-04-07

10.  Personalized Predictive Modeling and Risk Factor Identification using Patient Similarity.

Authors:  Kenney Ng; Jimeng Sun; Jianying Hu; Fei Wang
Journal:  AMIA Jt Summits Transl Sci Proc       Date:  2015-03-25
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  1 in total

Review 1.  Current development and prospects of deep learning in spine image analysis: a literature review.

Authors:  Biao Qu; Jianpeng Cao; Chen Qian; Jinyu Wu; Jianzhong Lin; Liansheng Wang; Lin Ou-Yang; Yongfa Chen; Liyue Yan; Qing Hong; Gaofeng Zheng; Xiaobo Qu
Journal:  Quant Imaging Med Surg       Date:  2022-06
  1 in total

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