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Fall of Empires: Breaking Byzantine-tolerant SGD by Inner Product Manipulation

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arxiv 1903.03936 v1 pith:AIR22KHF submitted 2019-03-10 cs.LG cs.CRcs.DCstat.ML

classification cs.LGcs.CRcs.DCstat.ML
keywords byzantinebyzantine-tolerantinnermanipulationproducttechniquesworkersaggregation
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Recently, new defense techniques have been developed to tolerate Byzantine failures for distributed machine learning. The Byzantine model captures workers that behave arbitrarily, including malicious and compromised workers. In this paper, we break two prevailing Byzantine-tolerant techniques. Specifically we show robust aggregation methods for synchronous SGD -- coordinate-wise median and Krum -- can be broken using new attack strategies based on inner product manipulation. We prove our results theoretically, as well as show empirical validation.

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Cited by 1 Pith paper

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  1. Decoding FL Defenses: Systemization, Pitfalls, and Remedies

    cs.CR 2025-02 conditional novelty 6.0 of 10

    Many FL defenses are evaluated on overly easy datasets and attacks, and this paper demonstrates with case studies that those easy settings can make weak defenses look strong.

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