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A Polynomial Subset-Based Efficient Multi-Party Key Management System for Lightweight Device Networks

机译:基于多项式子集的轻型设备网络高效多方密钥管理系统

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Wireless Sensor Networks (WSNs) consist of lightweight devices to measure sensitive data that are highly vulnerable to security attacks due to their constrained resources. In a similar manner, the internet-based lightweight devices used in the Internet of Things (IoT) are facing severe security and privacy issues because of the direct accessibility of devices due to their connection to the internet. Complex and resource-intensive security schemes are infeasible and reduce the network lifetime. In this regard, we have explored the polynomial distribution-based key establishment schemes and identified an issue that the resultant polynomial value is either storage intensive or infeasible when large values are multiplied. It becomes more costly when these polynomials are regenerated dynamically after each node join or leave operation and whenever key is refreshed. To reduce the computation, we have proposed an Efficient Key Management (EKM) scheme for multiparty communication-based scenarios. The proposed session key management protocol is established by applying a symmetric polynomial for group members, and the group head acts as a responsible node. The polynomial generation method uses security credentials and secure hash function. Symmetric cryptographic parameters are efficient in computation, communication, and the storage required. The security justification of the proposed scheme has been completed by using Rubin logic, which guarantees that the protocol attains mutual validation and session key agreement property strongly among the participating entities. Simulation scenarios are performed using NS 2.35 to validate the results for storage, communication, latency, energy, and polynomial calculation costs during authentication, session key generation, node migration, secure joining, and leaving phases. EKM is efficient regarding storage, computation, and communication overhead and can protect WSN-based IoT infrastructure.
机译:无线传感器网络(WSN)由轻型设备组成,用于测量敏感数据,这些敏感数据由于资源受限而极易受到安全攻击。以类似的方式,由于设备与互联网的连接可直接访问,因此物联网(IoT)中使用的基于互联网的轻型设备面临严重的安全性和隐私问题。复杂且占用大量资源的安全方案不可行,并且会缩短网络寿命。在这方面,我们探索了基于多项式分布的密钥建立方案,并确定了一个问题,即当乘以大值时,所得多项式值要么是存储密集型的,要么是不可行的。在每个节点加入或离开操作之后以及每当刷新键时动态地重新生成这些多项式时,开销会更大。为了减少计算量,我们针对基于多方通信的方案提出了一种有效密钥管理(EKM)方案。通过为组成员应用对称多项式来建立建议的会话密钥管理协议,并且组头充当负责节点。多项式生成方法使用安全凭证和安全哈希函数。对称密码参数在计算,通信和所需存储方面非常有效。通过使用鲁宾逻辑已经完成了所提出的方案的安全性证明,该鲁宾逻辑保证了协议在参与实体之间强烈地获得了相互验证和会话密钥协议的特性。使用NS 2.35执行仿真方案,以验证身份验证,会话密钥生成,节点迁移,安全加入和离开阶段期间的存储,通信,延迟,能源和多项式计算成本的结果。 EKM在存储,计算和通信开销方面非常有效,并且可以保护基于WSN的IoT基础架构。

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