Toward an execution system for self-healing workflows in cyber-physical systems

被引:0
作者
Ronny Seiger
Steffen Huber
Thomas Schlegel
机构
[1] Technische Universität Dresden,Software Technology Group
[2] Technische Universität Dresden,Software Engineering of Ubiquitous Systems Group
[3] Karlsruhe University of Applied Sciences,Institute of Ubiquitous Mobility Systems
来源
Software & Systems Modeling | 2018年 / 17卷
关键词
Process execution; Cyber-physical systems; Workflow system; Internet of things; System architecture; Middleware; Event processing;
D O I
暂无
中图分类号
学科分类号
摘要
Cyber-physical systems (CPS) represent a new class of information system that also takes real-world data and effects into account. Software-controlled sensors, actuators and smart objects enable a close coupling of the cyber and physical worlds. Introducing processes into CPS to automate repetitive tasks promises advantages regarding resource utilization and flexibility of control systems for smart spaces. However, process execution systems face new challenges when being adapted for process execution in CPS: the automated processing of sensor events and data, the dynamic invocation of services, the integration of human interaction, and the synchronization of the cyber and physical worlds. Current workflow engines fulfill these requirements only to a certain degree. In this work, we present PROtEUS—an integrated system for process execution in CPS. PROtEUS integrates components for event processing, data routing, dynamic service selection and human interaction on the modeling and execution level. It is the basis for executing self-healing model-based workflows in CPS. We demonstrate the applicability of PROtEUS within two case studies from the Smart Home domain and discuss its feasibility for introducing workflows into cyber-physical systems.
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页码:551 / 572
页数:21
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