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pDCS: Security and Privacy Support for Data-Centric Sensor Networks

机译:PDCS:用于数据中心传感器网络的安全性和隐私支持

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The demand for efficient data dissemination/access techniques to find the relevant data from within a sensor network has led to the development of data-centric sensor networks (DCS), where the sensor data as contrast to sensor nodes are named based on attributes such as event type or geographic location. However, saving data inside a network also creates security problems due to the lack of tamper-resistance of the sensor nodes and the unattended nature of the sensor network. For example, an attacker may simply locate and compromise the node storing the event of his interest. To address these security problems, we present pDCS, a privacy-enhanced DCS network which offers different levels of data privacy based on different cryptographic keys. In addition, we propose several query optimization techniques based on Euclidean Steiner Tree and Keyed Bloom Filter to minimize the query overhead while providing certain query privacy. Finally, detailed analysis and simulations show that the Keyed Bloom Filter scheme can significantly reduce the message overhead with the same level of query delay and maintain a very high level of query privacy.
机译:对来自传感器网络中的有效数据传播/访问技术的需求已经导致数据中心传感器网络(DCS)的开发,其中传感器数据与传感器节点的对比度基于诸如的属性命名事件类型或地理位置。然而,由于传感器节点的篡改阻力和传感器网络的无人看管的性质,保存网络内的数据也会产生安全问题。例如,攻击者可以简单地定位和危及存储他兴趣事件的节点。为了解决这些安全问题,我们提出了PDC,一种隐私增强的DCS网络,基于不同的加密密钥提供不同级别的数据隐私。此外,我们提出了基于Euclidean Steiner树的几种查询优化技术,并键入绽放过滤器,以最小化查询开销,同时提供某些查询隐私。最后,详细的分析和仿真表明,键控的绽放过滤器方案可以显着减少具有相同级别的查询延迟级别的消息开销,并保持非常高的查询隐私。

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