Generative AI-Driven Human Digital Twin in IoT-Healthcare: A Comprehensive Survey
Jiayuan Chen, You Shi, Changyan Yi, Hongyang Du, Jiawen Kang, Dusit, Niyato

TL;DR
This survey reviews how generative AI can enhance human digital twins in IoT healthcare, enabling personalized monitoring, diagnosis, and treatment through advanced virtual modeling and data management techniques.
Contribution
It provides a comprehensive overview of GAI-driven HDT frameworks, techniques, and applications in IoT-healthcare, highlighting recent advances and future research directions.
Findings
GAI enables high-fidelity virtual human modeling.
GAI improves data acquisition and management in HDT.
Potential to revolutionize personalized healthcare applications.
Abstract
The Internet of things (IoT) can significantly enhance the quality of human life, specifically in healthcare, attracting extensive attentions to IoT-healthcare services. Meanwhile, the human digital twin (HDT) is proposed as an innovative paradigm that can comprehensively characterize the replication of the individual human body in the digital world and reflect its physical status in real time. Naturally, HDT is envisioned to empower IoT-healthcare beyond the application of healthcare monitoring by acting as a versatile and vivid human digital testbed, simulating the outcomes and guiding the practical treatments. However, successfully establishing HDT requires high-fidelity virtual modeling and strong information interactions but possibly with scarce, biased and noisy data. Fortunately, a recent popular technology called generative artificial intelligence (GAI) may be a promising…
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Taxonomy
TopicsDigital Transformation in Industry · Artificial Intelligence in Healthcare and Education
