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AGREE: exploiting energy harvesting to support data-centric access control in WSNs

机译:同意:利用能量收集来支持WSN中以数据为中心的访问控制

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This work is motivated by a general question: can energy harvesting capabilities embedded in modern sensor nodes be exploited so as to support security mechanisms which otherwise would be too demanding and hardly viable? More specifically, in this work we focus on the support of extremely powerful, but complex, fine-grained data-centric access control mechanisms based on multi-authority Ciphertext Policy Attribute Based Encryption (CP-ABE). By integrating access control policies into the (encrypted) data, such mechanisms do not require any server-based access control infrastructure and are thus highly desirable in many wireless sensor network scenarios. However, as concretely shown by a proof-of-concept implementation first carried out in this paper on TelosB and MicaZ motes, computational complexity and energy toll of state-of-the-art multi-authority CP-ABE schemes is still critical. We thus show how to mitigate the relatively large energy consumption of the CP-ABE cryptographic operations by proposing AGREE (Access control for GREEn wireless sensor networks), a framework that exploits energy harvesting opportunities to pre-com-pute and cache suitably chosen CP-ABE-encrypted keys, so as to minimize the need to perform CP-ABE encryptions when no energy from harvesting is available. We assess the performance of AGREE by means of simulation and actual implementation, validating its operation with real-world energy-harvesting traces collected indoors by TelosB motes equipped with photovoltaic cells, as well as public available traces of radiant light energy. Our results show that complex security mechanisms may become significantly less demanding when implemented so as to take advantage of energy harvesting opportunities.
机译:这项工作的动机是一个普遍的问题:是否可以利用嵌入现代传感器节点中的能量收集功能来支持安全机制,否则这些机制将过于苛刻且几乎不可行?更具体地说,在这项工作中,我们着重于基于强大的,但复杂的,以细粒度为中心的基于数据的访问控制机制的支持,该机制基于多权限基于密文的策略属性加密(CP-ABE)。通过将访问控制策略集成到(加密的)数据中,此类机制不需要任何基于服务器的访问控制基础结构,因此在许多无线传感器网络方案中都是非常需要的。但是,正如本文首先在TelosB和MicaZ节点上进行的概念验证实现所具体显示的那样,最新的多权限CP-ABE方案的计算复杂性和能源消耗仍然至关重要。因此,我们展示了如何通过提出AGREE(GREEn无线传感器网络的访问控制)来减轻CP-ABE加密操作相对较大的能耗,该框架利用能量收集机会来预先计算和缓存适当选择的CP-A。 ABE加密的密钥,以便在没有可用能量收集时,最大程度地减少执行CP-ABE加密的需要。我们通过仿真和实际实施来评估AGREE的性能,并通过配备有光伏电池的TelosB微粒在室内收集的真实世界的能量收集迹线以及公共可用的辐射光能迹来验证其运行情况。我们的结果表明,复杂的安全机制在实施时可能会大大降低要求,以利用能量收集机会。

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