论文标题

Amadeus:可扩展的,隐私的实时视频分析

Amadeus: Scalable, Privacy-Preserving Live Video Analytics

论文作者

Dsouza, Sandeep, Bahl, Victor, Ao, Lixiang, Cox, Landon P.

论文摘要

从交通管理到公共安全警报的智能城市应用程序依赖于公共空间监视摄像机的视频的实时分析。但是,越来越多的政府法规规定,必须处理如何从这些摄像机中收集的数据,以保护公民的隐私。本文描述了Amadeus,该文章通过将视频在接近实时的智能应用程序中编辑视频来平衡隐私和实用程序。我们的主要见解是,白名单对象或默认情况下阻止,对于可扩展的,隐私的视频分析至关重要。在现代对象探测器的背景下,我们证明白名单降低了导致侵犯隐私的对象检测错误的风险,并帮助Amadeus扩展到大型多样的应用程序集。特别是,Amadeus利用白名单来生成可加密的对象特定的实时流,这些直播同时满足了以隐私性的方式满足多个应用程序的要求,同时降低了边缘的计算和流式带宽要求。我们的Amadeus原型的实验表明,与黑名单对象相比,白名单的隐私(最高约为28倍)和带宽节省(最高约为5.5倍)。此外,我们的实验还表明,由Amadeus生成的可组合活流是可通过具有最小实用性损失的现实世界应用程序使用的。

Smart-city applications ranging from traffic management to public-safety alerts rely on live analytics of video from surveillance cameras in public spaces. However, a growing number of government regulations stipulate how data collected from these cameras must be handled in order to protect citizens' privacy. This paper describes Amadeus, which balances privacy and utility by redacting video in near realtime for smart-city applications. Our main insight is that whitelisting objects, or blocking by default, is crucial for scalable, privacy-preserving video analytics. In the context of modern object detectors, we prove that whitelisting reduces the risk of an object-detection error leading to a privacy violation, and helps Amadeus scale to a large and diverse set of applications. In particular, Amadeus utilizes whitelisting to generate composable encrypted object-specific live streams, which simultaneously meet the requirements of multiple applications in a privacy-preserving fashion, while reducing the compute and streaming-bandwidth requirements at the edge. Experiments with our Amadeus prototype show that compared to blacklisting objects, whitelisting yields significantly better privacy (up to ~28x) and bandwidth savings (up to ~5.5x). Additionally, our experiments also indicate that the composable live streams generated by Amadeus are usable by real-world applications with minimum utility loss.

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