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contributor authorLee, Cheolhei
contributor authorWang, Kaiwen
contributor authorWu, Jianguo
contributor authorCai, Wenjun
contributor authorYue, Xiaowei
date accessioned2023-11-29T18:56:17Z
date available2023-11-29T18:56:17Z
date copyright1/10/2023 12:00:00 AM
date issued1/10/2023 12:00:00 AM
date issued2023-01-10
identifier issn1530-9827
identifier otherjcise_23_4_041009.pdf
identifier urihttp://yetl.yabesh.ir/yetl1/handle/yetl/4294477
description abstractActive learning is a subfield of machine learning that focuses on improving the data collection efficiency in expensive-to-evaluate systems. Active learning-applied surrogate modeling facilitates cost-efficient analysis of demanding engineering systems, while the existence of heterogeneity in underlying systems may adversely affect the performance. In this article, we propose the partitioned active learning that quantifies informativeness of new design points by circumventing heterogeneity in systems. The proposed method partitions the design space based on heterogeneous features and searches for the next design point with two systematic steps. The global searching scheme accelerates exploration by identifying the most uncertain subregion, and the local searching utilizes circumscribed information induced by the local Gaussian process (GP). We also propose Cholesky update-driven numerical remedies for our active learning to address the computational complexity challenge. The proposed method consistently outperforms existing active learning methods in three real-world cases with better prediction and computation time.
publisherThe American Society of Mechanical Engineers (ASME)
titlePartitioned Active Learning for Heterogeneous Systems
typeJournal Paper
journal volume23
journal issue4
journal titleJournal of Computing and Information Science in Engineering
identifier doi10.1115/1.4056567
journal fristpage41009-1
journal lastpage41009-11
page11
treeJournal of Computing and Information Science in Engineering:;2023:;volume( 023 ):;issue: 004
contenttypeFulltext


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