System design where cyber-physical applications are securely coordinated from the cloud may simplify the development process. However, all private data are then pushed to these remote 'swamps', and human users lose the actual control as compared to when the applications are executed directly on their devices. At the same time, computing at the network edge is still lacking support for such straightforward multi-device development, which is essential for a wide range of dynamic cyber-physical services. In this work, we propose a novel programming model as well as contribute the associated secure connectivity framework for leveraging safe coordinated device proximity as an additional degree of freedom between the remote cloud and the safety-critical network edge, especially under uncertain environment constraints.
The security features of current digital services are mostly defined and dictated by the service provider. A user can always decline to use a service whose terms do not fulfil the expected criteria, but in many cases even a simple negotiation might result in a more satisfying outcome. This article aims at making the building of non-repudiable security service level agreements between a user and a service provider more feasible. The proposed mechanism provides a means to describe security requirements and capabilities in different dimensions, from overall targets and risks to technical specifications, and it also helps in translating between the dimensions. A negotiation protocol and a decision algorithm are then used to let the parties agree upon the security features used in the service. This article demonstrates the feasibility and usability of the mechanism by describing its usage scenario and proof-of-concept implementation, and analyzes its nonrepudiability and security aspects.
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