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Combining Trust and Aggregate Computing

机译:结合信任和聚合计算

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Recent trends such as the Internet of Things and pervasive computing demand for novel engineering approaches able to support the specification and scalable runtime execution of adaptive behaviour of large collections of interacting devices. Aggregate computing is one such approach, formally founded in the field calculus, which enables programming of device aggregates by a global stance, through a functional composition of self-organisation patterns that is turned automatically into repetitive local computations and gossip-like interactions. However, the logically decentralised and open nature of such algorithms and systems presumes a fundamental cooperation of the devices involved: an error in a device or a focused attack may significantly compromise the computation outcome and hence the algorithms built on top of it. We propose trust as a framework to detect, ponder or isolate voluntary/involuntary misbehaviours, with the goal of mitigating the influence on the overall computation. To better understand the fragility of aggregate systems in face of attacks and investigate possible countermeasures, in this paper we consider the paradigmatic case of the gradient algorithm, analysing the impact of offences and the mitigation afforded by the adoption of trust mechanisms.
机译:诸如物联网和普及计算之类的最新趋势对能够支持规范和可扩展运行时执行的交互设备大集合的自适应行为的新颖工程方法的需求。聚合计算是一种正式在现场演算中建立的方法,它可以通过自组织模式的功能组合以全局立场对设备聚合进行编程,这些自组织模式会自动转换为重复的局部计算和类似八卦的交互。但是,此类算法和系统的逻辑分散和开放性质假定所涉及设备的基本协作:设备中的错误或有针对性的攻击可能会严重损害计算结果,并因此损害基于其构建的算法。我们建议将信任作为检测,思考或隔离自愿/非自愿行为的框架,以减轻对整体计算的影响。为了更好地理解聚合系统在遭受攻击时的脆弱性并研究可能的对策,在本文中,我们考虑了梯度算法的典型案例,分析了犯罪的影响和采用信任机制所带来的缓解。

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