The architecture of mass customization-social internet of things system: Current research profile

Document Type

Article

Publication Date

10-1-2021

Abstract

In the era of big data, mass customization (MC) systems are faced with the complexities associated with information explosion and management control. Thus, it has become necessary to integrate the mass customization system and Social Internet of Things, in order to effectively connecting customers with enterprises. We should not only allow customers to participate in MC production throughout the whole process, but also allow enterprises to control all links throughout the whole information system. To gain a better understanding, this paper first describes the architecture of the proposed system from organizational and technological perspectives. Then, based on the nature of the Social Internet of Things, the main technological application of the mass customization-Social Internet of Things (MC-SIOT) system is introduced in detail. On this basis, the key problems faced by the mass customization-Social Internet of Things system are listed. Our findings are as follows: (1) MC-SIOT can realize convenient information queries and clearly understand the user's intentions; (2) the system can predict the changing relationships among different technical fields and help enterprise R&D personnel to find technical knowledge; and (3) it can interconnect deep learning technology and digital twin technology to better maintain the operational state of the system. However, there exist some challenges relating to data management, knowledge discovery, and human-computer interaction, such as data quality management, few data samples, a lack of dynamic learning, labor consumption, and task scheduling. Therefore, we put forward possible improvements to be assessed, as well as privacy issues and emotional interactions to be further discussed, in future research. Finally, we illustrate the behavior and evolutionary mechanism of this system, both qualitatively and quantitatively. This provides some idea of how to address the current issues pertaining to mass customization systems.

Keywords

Big data, Mass customization, Technology application, Intelligent system

Divisions

BuiltEnvironment

Funders

National Natural Science Foundation of China (NSFC) (71571072),National Social Science Foundation Project (18BGL236),Guangdong Province Key Research and Development Project (2020B0101050001),Special Fund for Science and Technology Innovation Strategy of Guangdong Province (pdjh2021b0405)

Publication Title

ISPRS International Journal Of Geo-Information

Volume

10

Issue

10

Publisher

MDPI

Publisher Location

ST ALBAN-ANLAGE 66, CH-4052 BASEL, SWITZERLAND

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