Groove: Flexible Metadata-Private Messaging
Ludovic Barman, Moshe Kol, David Lazar, Yossi Gilad, Nickolai Zeldovich
Abstract
Metadata-private messaging designs that scale to support millions of users are rigid: they limit users to a single device that is online all the time and transmits on short regular intervals, and require users to choose precisely when each of their buddies can message them. These requirements induce high network and energy costs for the clients, restricting users to communicate via one powerful device, like their desktop.
Groove is the first scalable metadata-private messaging system that gives users flexibility: it supports users with multiple devices, allows them to message buddies at any time, even when those buddies are offline, and conserves the user's device bandwidth and energy. Groove offers flexibility by introducing oblivious delegation, where users designate an untrusted service provider to participate in rigid mechanisms of metadata-private communication. It provides differential privacy guarantees on par with rigid systems like Stadium and Karaoke.
An evaluation of a Groove prototype on AWS with 100 servers, distributed across four data centers on two continents, demonstrates that it can achieve 32 s of latency for 1 million users with 50 buddies in their contact lists. Experiments with a client running on a Pixel 4 smartphone show that it uses about 100 MB/month of bandwidth and increases battery consumption by 50 mW (+16%) compared to an idle smartphone. These measurements show that Groove makes it realistic to hide messaging metadata on a mobile device.
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Cited by top-tier papers9
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- Periscoping: Private Key Distribution for Large-Scale MixnetsShuhao Liu, Li Chen, Yuanzhong FuINFOCOM 2024 · 1 citation
- Impact Tracing: Identifying the Culprit of Misinformation in Encrypted Messaging SystemsZhongming Wang, Tao Xiang, Xiaoguo Li, Biwen Chen et al.NDSS 2025
- Powering Privacy: On the Energy Demand and Feasibility of Anonymity Networks on SmartphonesDaniel Hugenroth, Alastair R. BeresfordUSENIX Security 2023
- Sparta: Practical Anonymity with Long-Term Resistance to Traffic AnalysisKyle Fredrickson, Ioannis Demertzis, James P. Hughes, Darrell D. E. LongS&P 2025
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- XRD: Scalable Messaging System with Cryptographic PrivacyAlbert Kwon, David Lu, Srinivas DevadasNSDI 2020 · 87 citations
- Addra: Metadata-private voice communication over fully untrusted infrastructureIshtiyaque Ahmad, Yuntian Yang, Divyakant Agrawal, Amr El Abbadi et al.OSDI 2021 · 79 citations
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