Incentivized Security-Aware Computation Offloading for Large-Scale Internet of Things Applications

Talal Halabi, Adel Abusitta, Glaucio H. S. Carvalho, B. Fung
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Abstract

With billions of devices already connected to the network's edge, the Internet of Things (IoT) is shaping the future of pervasive computing. Nonetheless, IoT applications still cannot escape the need for the computing resources available at the fog layer. This becomes challenging since the fog nodes are not necessarily secure nor reliable, which widens even further the IoT threat surface. Moreover, the security risk appetite of heterogeneous IoT applications in different domains or deploy-ment contexts should not be assessed similarly. To respond to this challenge, this paper proposes a new approach to optimize the allocation of secure and reliable fog computing resources among IoT applications with varying security risk level. First, the security and reliability levels of fog nodes are quantitatively evaluated, and a security risk assessment methodology is defined for IoT services. Then, an online, incentive-compatible mechanism is designed to allocate secure fog resources to high-risk IoT offloading requests. Compared to the offline Vickrey auction, the proposed mechanism is computationally efficient and yields an acceptable approximation of the social welfare of IoT devices, allowing to attenuate security risk within the edge network.
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大规模物联网应用的激励安全感知计算卸载
随着数十亿设备连接到网络边缘,物联网(IoT)正在塑造普适计算的未来。尽管如此,物联网应用仍然无法摆脱对雾层可用计算资源的需求。这变得具有挑战性,因为雾节点不一定是安全可靠的,这进一步扩大了物联网的威胁面。此外,不同领域或部署环境中异构物联网应用的安全风险偏好不应进行类似评估。为了应对这一挑战,本文提出了一种新的方法来优化安全可靠的雾计算资源在不同安全风险级别的物联网应用中的分配。首先,定量评估了雾节点的安全性和可靠性水平,并定义了物联网服务的安全风险评估方法。然后,设计了一个在线的、激励兼容的机制,为高风险的物联网卸载请求分配安全的雾资源。与离线Vickrey拍卖相比,所提出的机制具有计算效率,并产生可接受的物联网设备社会福利近似值,从而可以降低边缘网络内的安全风险。
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