传感器内隐私的随机混合信号电路设计(特邀论文)

N. Cao, Jianbo Liu, Boyang Cheng, Muya Chang
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引用次数: 0

摘要

传感器无处不在的数据采集和广泛的数据交换给最终用户和公众带来了严重的安全和隐私问题。为了实现对原始数据的实时保护,需要在数据生成或感知隐私时促进隐私保护算法。然而,由于严重的传感器资源限制和密集的计算/安全成本,如何使用高效的c电路技术实现数据保护算法仍然是一个悬而未决的问题。为了回答这个问题,本文讨论了随机混合信号(SMS)电路在超低功耗、小足迹数据安全方面的潜力。本文特别讨论了数字控制振荡器(DCO)及其在(1)无缝模拟接口,(2)随机计算效率和(3)与传统数字电路基线相比统一熵产生方面的优势。以DCO为例,我们的目标是(1)SMS隐私保护架构定义和系统的SMS分析其在各种硬件/软件配置下的性能增益,以及(2)在基于熵的数据保护背景下重新审视模拟/混合信号电压/晶体管缩放。
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Stochastic Mixed-Signal Circuit Design for In-sensor Privacy : (Invited Paper)
The ubiquitous data acquisition and extensive data exchange of sensors pose severe security and privacy concerns for the end-users and the public. To enable real-time protection of raw data, it is demanding to facilitate privacy-preserving algorithms at data generation, or in-sensory privacy. However, due to the severe sensor resource constraints and intensive computation/security cost, it remains an open question of how to enable data protection algorithms with efficient c ircuit techniques. To answer this question, this paper discusses the potential of a stochastic mixed-signal (SMS) circuit for ultra-low-power, small-foot-print data security. In particular, this paper discusses digitally-controlled-oscillators (DCO) and their advantages in (1) seamless analog interface, (2) stochastic computation efficiency, and (3) unified entropy generation over conventional digital circuit baselines. With DCO as an illustrative case, we target (1) SMS privacy-preserving architecture definition and systematic SMS analysis on its performance gains across various hardware/software configurations, and (2) revisit analog/mixed-signal voltage/transistor scaling in the context of entropy-based data protection.
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