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Precomputation Methods for Hash-Based Signatures on Energy-Harvesting Platforms

机译:能量收集平台上基于哈希的签名的预计算方法

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Energy-harvesting techniques can be combined with wireless embedded sensors to obtain battery-free platforms with an extended lifetime. Although energy-harvesting offers a continuous supply of energy, the delivery rate is typically limited to a few Joules per day. This is a severe constraint to the achievable computing throughput on the embedded sensor node, and to the achievable latency obtained from applications running on those nodes. In this paper, we address these constraints with precomputation. The idea is to reduce the amount of computations required in response to application inputs, by partitioning the algorithm in an offline part, computed before the inputs are available, and an online part, computed in response to the actual input. We show that this technique works well on hash-based cryptographic signatures, which have a complex key generation for each new message that requires a signature. By precomputing the key-material, and by storing it as run-time coupons in non-volatile memory, there is a drastic reduction of the run-time energy needs for a signature, and a drastic reduction of the run-time latency to generate it. For a Winternitz hash-based scheme at 84-bit quantum security level on a MSP430 microcontroller, we measured a run-time energy reduction of 11.9 and a run-time latency reduction of 23.5 .
机译:能量收集技术可以与无线嵌入式传感器结合使用,从而获得使用寿命更长的无电池平台。尽管能量收集提供了连续的能量供应,但输送速度通常限制为每天几焦耳。这严重限制了嵌入式传感器节点上可实现的计算吞吐量以及从在这些节点上运行的应用程序获得的可实现延迟。在本文中,我们通过预计算解决了这些约束。想法是通过将算法划分为离线部分(在输入可用之前进行计算)和在线部分(根据实际输入进行计算)来减少响应应用程序输入所需的计算量。我们证明了该技术在基于散列的加密签名上效果很好,对于每个需要签名的新消息,该签名都有复杂的密钥生成。通过预先计算密钥材料,并将其作为运行时优惠券存储在非易失性存储器中,可以大大减少签名的运行时能量需求,并可以大大减少生成签名所需的运行时延迟它。对于MSP430微控制器上处于84位量子安全级别的基于Winternitz哈希的方案,我们测量的运行时能量减少了11.9%,而运行时等待时间减少了23.5%。

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