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A Tensor-Based Multiattributes Visual Feature Recognition Method for Industrial Intelligence

delete2021-03-01
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AI
王晓康 封面图
王晓康 (Xiaokang Wang)
L
Laurence T. Yang *
L
Liwen Song
王
王慧慧 (Huihui Wang)
任磊 封面图
任磊 (Lei Ren)
M
M. Jamal Deen
DOI:10.1109/TII.2020.2999901delete
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摘要

摘要

En 中文
Industrial Internet-of-Things (IIoT) has revolutionized almost every aspect of industrial manufacturing through industrial intelligence by incorporating production equipment, mobile terminals, and smart devices with wireless or wired networks. However, industrial visual information, such as images, videos, graphs, and texts, generated and collected from the industrial processes, contains various kinds of hidden value for industrial intelligence. Therefore, for the trend of providing ubiquitous industrial intelligence, new paradigms of perception and processing technologies of visual information such as recognition methods are required. However, industrial visual information is heterogeneous and complex with multiattributes, which presents significant challenges on visual information perception and processing technologies such as multiattributes recognition method. In this article, to provide industrial intelligence, a tensor-based visual feature recognition method is used to recognize the object from the perspective of multiattributes with the combination of attributes. To demonstrate its practical implementation, a case study about the industrial intelligence on the faulty location and diameter of bearings in the IIoT is described. Also, experiments on object recognition are carried out on the public image set COIL-100 to demonstrate the performance of the proposed method.
Keyword:
Visualization
Tensors
Production
Videos
Quality assessment
Product design
Industrial intelligence
industrial Internet-of-Things (IIoT)
recognition
tensor
visual feature
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期刊

IEEE Transactions on Industrial Informatics 封面图
IEEE Transactions on Industrial Informatics
IF:
9.9
论文数:
8.6K
被引数:
6.0W

机构

B
Beihang University
学者数:
5.2W
论文数: 4.1W
被引数: 37
Jacksonville University 封面图
Jacksonville University
学者数:
179
论文数: 230
被引数: 422
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