无人值守无线传感器网络的哈希顺序聚合和前向安全签名

A. Yavuz, P. Ning
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引用次数: 18

摘要

在恶劣环境中运行的无人值守无线传感器网络(uwsn)由于发送者(传感器)和接收器(如移动数据收集器、静态接收器)之间缺乏连续的实时通信而面临着巨大的安全和性能挑战。由于缺乏实时通信,传感器可能需要长时间地积累感测数据,以及用于身份验证的相应签名。此外,UWSNs的非实时特性使得传感器尤其容易受到主动攻击者的攻击,这些攻击者会破坏传感器并提取存储在传感器中的所有数据。因此,具有前向安全属性是至关重要的,这样即使攻击者可以破坏当前的密钥材料,她也不能修改或伪造在节点破坏之前生成的经过身份验证的数据。前向安全和聚合签名是为解决这些问题而开发的加密原语。不幸的是,现有的前向安全和聚合签名方案要么增加了大量的计算和存储开销,要么不允许公共可验证性,因此对于资源受限的uwsn来说不切实际。为了解决这些问题,我们提出了一类新的签名方案,我们称之为基于哈希的顺序聚合和前向安全签名(HaSAFSS)。这样的方案允许签名者以几乎最优的计算成本依次生成紧凑、固定大小和可公开验证的签名。我们提出了两种HaSAFSS方案,对称HaSAFSS (symm -HaSAFSS)和基于椭圆曲线密码(ECC)的HaSAFSS (ECC-HaSAFSS)。这两种方案都通过定时释放加密(TRE)来保持前向安全性,从而集成了基于mac的聚合签名的效率和基于双线性映射的签名的公共可验证性。我们证明了在适当的计算假设下,我们的方案是安全的。我们还表明,我们的方案在计算和存储开销方面都比以前的方案更有效,因此即使对于资源高度受限的UWSN应用也非常实用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Hash-Based Sequential Aggregate and Forward Secure Signature for Unattended Wireless Sensor Networks
Unattended Wireless Sensor Networks (UWSNs) operating in hostile environments face great security and performance challenges due to the lack of continuous real-time communication between senders (sensors) and receivers (e.g., mobile data collectors, static sinks). The lack of real-time communication forces sensors to accumulate the sensed data possibly for long time periods, along with the corresponding signatures for authentication purposes. Moreover, non-real-time characteristic of UWSNs makes sensors vulnerable especially to active adversaries, which compromise sensors and extract all data stored in them. Hence, it is critical to have forward security property such that even if the adversary can compromise the current keying materials, she cannot modify or forge authenticated data generated before the node compromise. Forward secure and aggregate signatures are cryptographic primitives developed to address these issues. Unfortunately, existing forward secure and aggregate signature schemes either impose substantial computation and storage overhead, or do not allow public verifiability, thereby impractical for resource-constrained UWSNs. In order to address these problems, we propose a new class of signature schemes, which we refer to as Hash-Based Sequential Aggregate and Forward Secure Signature (HaSAFSS). Such a scheme allows a signer to sequentially generate a compact, fixed-size, and publicly verifiable signature at a nearly optimal computational cost. We propose two HaSAFSS schemes, Symmetric HaSAFSS (Sym-HaSAFSS) and Elliptic Curve Cryptography (ECC) based HaSAFSS (ECC-HaSAFSS). Both schemes integrate the efficiency of MAC-based aggregate signatures and the public verifiability of bilinear map based signatures by preserving forward security via Timed-Release Encryption (TRE). We demonstrate that our schemes are secure under appropriate computational assumptions. We also show that our schemes are significantly more efficient in terms of both computational and storage overheads than previous schemes, and therefore quite practical for even highly resource-constrained UWSN applications.
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