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A self-integration testbed for decentralized socio-technical systems

机译:用于分散的社会技术系统的自整体测试平台

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The Internet of Things (loT) comes along with new challenges for experimenting, testing, and operating decentralized socio-technical systems at large-scale. In such systems, autonomous agents interact locally with their users, and remotely with other agents to make intelligent collective choices. Via these interactions they self-regulate the consumption and production of distributed (common) resources, e.g., self-management of traffic flows and power demand in Smart Cities. While such complex systems are often deployed and operated using centralized computing infrastructures, the socio-technical nature of these decentralized systems requires new value-sensitive design paradigms; empowering trust, transparency, and alignment with citizens' social values, such as privacy preservation, autonomy, and fairness among citizens' choices. Currently, instruments and tools to study such systems and guide the prototyping process from simulation, to live deployment, and ultimately to a robust operation of a high Technology Readiness Level (TRL) are missing, or not practical in this distributed socio-technical context. This paper bridges this gap by introducing a novel testbed architecture for decentralized socio-technical systems running on IoT. This new architecture is designed for a seamless reusability of (ⅰ) application-independent decentralized services by an IoT application, and (ⅱ) different IoT applications by the same decentralized service. This dual self-integration promises IoT applications that are simpler to prototype, and can intemperate with decentralized services during runtime to self-integrate more complex functionality, e.g., data analytics, distributed artificial intelligence. Additionally, such integration provides stronger validation of IoT applications, and improves resource utilization, as computational resources are shared, thus cutting down deployment and operational costs. Pressure and crash tests during continuous operations of several weeks, with more than 80K network joining and leaving of agents, 2.4M parameter changes, and 100M communicated messages, confirm the robustness and practicality of the testbed architecture. This work promises new pathways for managing the prototyping and deployment complexity of decentralized socio-technical systems running on IoT, whose complexity has so far hindered the adoption of value-sensitive self-management approaches in Smart Cities.
机译:事物互联网(很多)与大规模进行实验,测试和经营分散的社会技术系统的新挑战。在这样的系统中,自主代理与他们的用户在本地交互,并远程与其他代理商进行智能集体选择。通过这些互动,他们自我调节分布式(普通)资源的消费和生产,例如,在智能城市的交通流量和电力需求的自我管理。虽然这些复杂的系统通常使用集中计算基础架构部署和操作,但这些分散系统的社会技术性质需要新的价值敏感的设计范式;赋予信任,透明度和与公民的社会价值观的对齐,例如公民选择的隐私保存,自主和公平。目前,学习此类系统的仪器和工具并将原型工艺引导到实况部署,最终缺少高技术准备水平(TRL)的强大操作,或者在这一分布式社会技术背景下缺失。本文通过在IOT上运行的分散的社会技术系统引入一个小说测试平衡架构来弥补这一差距。这种新架构旨在通过IOT应用程序的无缝可重用性(Ⅰ)独立于应用程序独立的分散服务,(Ⅱ)不同的IOT应用程序通过相同的分散服务。这种双重自我整合承诺是一个更简单的原型的IOT应用程序,并且可以在运行时进行分散的服务,以自融整合更复杂的功能,例如数据分析,分布式人工智能。此外,这种集成提供了更强的IOT应用程序验证,并提高资源利用率,因为计算资源被共享,从而减少部署和运营成本。在持续运行期间的压力和碰撞测试数周的连续操作,具有超过80k的网络加入和离开代理,2.4M参数变化和100米的传达消息,确认了测试平架架构的鲁棒性和实用性。这项工作有望管理在物联网上运行的分散的社会技术系统的原型和部署复杂性的新途径,其复杂性妨碍了智能城市的价值敏感自我管理方法的采用。

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