4.6 Article

A Lightweight Secure Adaptive Approach for Internet-of-Medical-Things Healthcare Applications in Edge-Cloud-Based Networks

期刊

SENSORS
卷 22, 期 6, 页码 -

出版社

MDPI
DOI: 10.3390/s22062379

关键词

neighborhood search; secure offloading; dynamic approaches; workflow healthcare applications; LSEOS; healthcare; scheduling

资金

  1. NSRF via the Program Management Unit for Human Resources & Institutional Development, Research and Innovation [B16F640189]
  2. Chiang Mai University [R000029859]

向作者/读者索取更多资源

Mobile-cloud-based healthcare applications are growing rapidly, but the offloading and scheduling methods for mobile healthcare workflow applications have been largely ignored. This paper proposes a lightweight secure efficient offloading scheduling model that minimizes delay and security risk, outperforming existing methods.
Mobile-cloud-based healthcare applications are increasingly growing in practice. For instance, healthcare, transport, and shopping applications are designed on the basis of the mobile cloud. For executing mobile-cloud applications, offloading and scheduling are fundamental mechanisms. However, mobile healthcare workflow applications with these methods are widely ignored, demanding applications in various aspects for healthcare monitoring, live healthcare service, and biomedical firms. However, these offloading and scheduling schemes do not consider the workflow applications' execution in their models. This paper develops a lightweight secure efficient offloading scheduling (LSEOS) metaheuristic model. LSEOS consists of light weight, and secure offloading and scheduling methods whose execution offloading delay is less than that of existing methods. The objective of LSEOS is to run workflow applications on other nodes and minimize the delay and security risk in the system. The metaheuristic LSEOS consists of the following components: adaptive deadlines, sorting, and scheduling with neighborhood search schemes. Compared to current strategies for delay and security validation in a model, computational results revealed that the LSEOS outperformed all available offloading and scheduling methods for process applications by 10% security ratio and by 29% regarding delays.

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