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Stingray: Fast Concurrent Transactions Without Consensus

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arxiv 2501.06531 v1 pith:X7QR7S5W submitted 2025-01-11 cs.CR cs.DC

classification cs.CRcs.DC
keywords transactionsstingraycommutativeconcurrentlyaccessingalmostconsensuscontention
verification ladder T0 review T1 audit T2 compute T3 formal
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Recent advances have improved the throughput and latency of blockchains by processing transactions accessing different parts of the state concurrently. However, these systems are unable to concurrently process (a) transactions accessing the same state, even if they are (almost) commutative, e.g., payments much smaller than an account's balance, and (b) multi-party transactions, e.g., asset swaps. Moreover, they are slow to recover from contention, requiring once-in-a-day synchronization. We present Stingray, a novel blockchain architecture that addresses these limitations. The key conceptual contributions are a replicated bounded counter that processes (almost) commutative transactions concurrently, and a FastUnlock protocol that uses a fallback consensus protocol for fast contention recovery. We prove Stingray's security in an asynchronous network with Byzantine faults and demonstrate on a global testbed that Stingray achieves 10,000 times the throughput of prior systems for commutative workloads.

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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. Orcaella: Hybrid Fault Tolerance with Client-Selectable Finality Latency

    cs.DC 2026-07 accept novelty 7.0 of 10

    Vote-counting 2-delay BFT under hybrid faults requires n ≥ 5f + 3c + 1; Orcaella adds a 4-delay path safe against extra alive-but-corrupt faults.

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