A Survey on Digital Twin: Definitions, Characteristics, Applications, and Design Implications
Обзор цифровых двойников: определения, характеристики, области применения и выводы для проектирования
2019-01-01
SCID: 54.1/f6pemwr9
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Artificial intelligenceCloud computingDigital twinDigital twin lifecycleSocio-technical design
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Abstract (AI)
When, in 1956, Artificial Intelligence (AI) was officially declared a research field, no one would have ever predicted the huge influence and impact its description, prediction, and prescription capabilities were going to have on our daily lives. In parallel to continuous advances in AI, the past decade has seen the spread of broadband and ubiquitous connectivity, (embedded) sensors collecting descriptive high dimensional data, and improvements in big data processing techniques and cloud computing. The joint usage of such technologies has led to the creation of digital twins, artificial intelligent virtual replicas of physical systems. Digital Twin (DT) technology is nowadays being developed and commercialized to optimize several manufacturing and aviation processes, while in the healthcare and medicine fields this technology is still at its early development stage. This paper presents the results of a study focused on the analysis of the state-of-the-art definitions of DT, the investigation of the main characteristics that a DT should possess, and the exploration of the domains in which DT applications are currently being developed. The design implications derived from the study are then presented: they focus on socio-technical design aspects and DT lifecycle. Open issues and challenges that require to be addressed in the future are finally discussed.
Key Findings
1
Applications of digital twins in healthcare and medicine remain at an early development stage.
2
Digital twin technology is being developed and commercialized to optimize manufacturing and aviation processes.
3
Digital twins are artificial intelligent virtual replicas of physical systems enabled by sensors, ubiquitous connectivity, big-data processing, and cloud computing.
4
The derived design implications emphasize socio-technical considerations and the digital twin lifecycle, while highlighting unresolved challenges for future research.
5
The study analyzes existing digital-twin definitions, identifies their main characteristics, and maps domains where applications are being developed.
Research Object
Digital Twin technology and its applications across manufacturing, aviation, healthcare, and medicine
Research Subject
Digital Twin definitions, characteristics, application domains, and socio-technical lifecycle design implications
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2019-01-01
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