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FnF-BFT: Exploring Performance Limits of BFT Protocols

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arxiv 2009.02235 v2 pith:CUTNEVYB submitted 2020-09-04 cs.DC

classification cs.DC
keywords fnf-bftreplicasperformancebyzantineduringintroducenetworkprot
verification ladder T0 review T1 audit T2 compute T3 formal
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We introduce FnF-BFT, a parallel-leader byzantine fault-tolerant state-machine replication protocol for the partially synchronous model with theoretical performance bounds during synchrony. By allowing all replicas to act as leaders and propose requests independently, FnF-BFT parallelizes the execution of requests. Leader parallelization distributes the load over the entire network -- increasing throughput by overcoming the single-leader bottleneck. We further use historical data to ensure that well-performing replicas are in command. FnF-BFT's communication complexity is linear in the number of replicas during synchrony and thus competitive with state-of-the-art protocols. Finally, with FnF-BFT, we introduce a BFT protocol with performance guarantees in stable network conditions under truly byzantine attacks. A prototype implementation of \prot outperforms (state-of-the-art) HotStuff's throughput, especially as replicas increase, showcasing \prot's significantly improved scaling capabilities.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Fides: Secure and Scalable Asynchronous DAG Consensus via Trusted Components

    cs.DC 2025-01 reject novelty 7.0 of 10

    Fides proposes a TEE-assisted asynchronous DAG BFT consensus with n=2f+1 and low commit latency, but its liveness proof relies on an unsupported set-intersection claim.

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