ProbFlow : Using Probabilistic Programming in Anonymous Communication Networks
Hussein Darir, Geir E. Dullerud, Nikita Borisov
摘要
—We present ProbFlow , a probabilistic programming approach for estimating relay capacities in the Tor network. We refine previously derived probabilistic model of the network to take into account more of the complexity of the real-world Tor network. We use this model to perform inference in a probabilistic programming language called NumPyro which allows us to overcome the analytical barrier present in purely analytical approach. We integrate the implementation of ProbFlow to the current implementation of capacity estimation algorithms in the Tor network. We demonstrate the practical benefits of ProbFlow by simulating it in flow-based Python simulator and packet-based Shadow simulations, the highest fidelity simulator available for the Tor network. In both simulators, ProbFlow provides significantly more accurate estimates that results in improved user performance, with average download speeds increasing by 25% in the Shadow simulations.
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- Identifying and Characterizing Sybils in the Tor NetworkPhilipp Winter, Roya Ensafi, Karsten Loesing, Nick FeamsterUSENIX Security 2016 · 被引用 53 次
- Point Break: A Study of Bandwidth Denial-of-Service Attacks against TorRob Jansen, Tavish Vaidya, Micah SherrUSENIX Security 2019 · 被引用 49 次
- Once is Never Enough: Foundations for Sound Statistical Inference in Tor Network ExperimentationRob Jansen, Justin Tracey, Ian GoldbergUSENIX Security 2021 · 被引用 21 次
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