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contributor authorAkira Imakura
contributor authorTetsuya Sakurai
date accessioned2022-01-30T19:11:09Z
date available2022-01-30T19:11:09Z
date issued2020
identifier otherAJRUA6.0001058.pdf
identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4264811
description abstractThis paper proposes a data collaboration analysis framework for distributed data sets. The proposed framework involves centralized machine learning while the original data sets and models remain distributed over a number of institutions. Recently, data has become larger and more distributed with decreasing costs of data collection. Centralizing distributed data sets and analyzing them as one data set can allow for novel insights and attainment of higher prediction performance than that of analyzing distributed data sets individually. However, it is generally difficult to centralize the original data sets because of a large data size or privacy concerns. This paper proposes a data collaboration analysis framework that does not involve sharing the original data sets to circumvent these difficulties. The proposed framework only centralizes intermediate representations constructed individually rather than the original data set. The proposed framework does not use privacy-preserving computations or model centralization. In addition, this paper proposes a practical algorithm within the framework. Numerical experiments reveal that the proposed method achieves higher recognition performance for artificial and real-world problems than individual analysis.
publisherASCE
titleData Collaboration Analysis Framework Using Centralization of Individual Intermediate Representations for Distributed Data Sets
typeJournal Paper
journal volume6
journal issue2
journal titleASCE-ASME Journal of Risk and Uncertainty in Engineering Systems, Part A: Civil Engineering
identifier doi10.1061/AJRUA6.0001058
page04020018
treeASCE-ASME Journal of Risk and Uncertainty in Engineering Systems, Part A: Civil Engineering:;2020:;Volume ( 006 ):;issue: 002
contenttypeFulltext


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