Search arXivSearch

arXiv · 2609.00837

Breaking Cycles for Scalable Fair Ordering in Blockchain Systems

Abstract

In blockchain systems, transaction order directly determines financial outcomes: unfair ordering enables front-running and sandwich attacks that have extracted over \$686M from Ethereum users. Current fair-ordering protocols aggregate pairwise receive-order evidence from replicas. Under contention or adversarial manipulation, however, Condorcet cycles force them into global strongly connected component (SCC) condensation, causing delays, coarse batches, and scaling failures. We present FlashOrder, a deterministic fair-ordering engine that localizes cyclic ambiguity before it propagates across the batch. FlashOrder embeds pairwise preferences into one-dimensional canonical positions, clusters nearby transactions with a partition hypergraph, and performs hierarchical inter- and intra-cluster serialization, replacing batch-wide SCC condensation with localized sorting and aggregation. Evaluated against Themis (CCS '23) and Rashnu (VLDB '24) on a libhotstuff-based prototype, FlashOrder achieves up to 10.5$\times$ higher throughput than Themis and 4.8$\times$ higher than Rashnu, with the latency gap widening as network scales. In controlled adversarial simulation, it reduces maximum rank displacement by 88.7\%, and under Condorcet attacks it sustains 12.0$\times$ and 9.7$\times$ higher throughput than Themis and Rashnu on average. These results show that localizing cyclic ambiguity yields stronger fairness at substantially higher throughput.

Explore related subjects

Keep this discovery

BibTeXRIS

Jinchun He, Wangjie Qiu, Yizhong Liu, Shengda Zhuo, Kwok-Yan Lam. 2026-09-01. Breaking Cycles for Scalable Fair Ordering in Blockchain Systems. https://arxiv.org/abs/2609.00837

Cite the original work for its findings. Save a collection to share your selection of sources.

Discover connections

Connections use source metadata and explicit phrase matches, not verified experimental comparisons.

KEEP EXPLORING

Related papers

Beyond Lemma Sharing -- Novel Parallelization Strategies for Property Directed Reachability

Property Directed Reachability (PDR) is a commonly used technique for automated hardware model checking, yet efficiently parallelizing it remains a significant challenge. Existing approaches, such as lemma sharing, often suffer from limited scalability as processor counts increase. In this work, we present two novel sharing-based parallelization strategies, preemptive propagation and ARPOS, and compare their performance with classical lemma sharing. To this end, we develop an asynchronous MPI-based message passing framework for the state-of-the-art rIC3 hardware model checker. Experimental results on the 2025 Hardware Model Checking competition benchmark demonstrate that our preemptive propagation strategy yields a significant performance boost over classical lemma sharing.

cs.DC

Towards Decentralized Registries for Assets Metadata Information

The effort to tokenize non-currency assets faces several hurdles, including the lack of a scalable decentralized computing infrastructure to manage asset-related metadata. While the centralized securities depository model has served the financial industry well for several decades, the vision of tokenization at a global scale requires new infrastructure that enables distributed control while protecting the integrity of asset-related metadata, regardless of where it is stored. In this paper, we discuss the decentralized artifacts metadata registry model for tokenized assets as a possible direction for the financial industry seeking to embrace tokenization. The artifacts metadata registries extend the function of the traditional CSD, and could in fact be a new type of service offered by CSDs around the world.

cs.DC

JAXMg: A multi-GPU linear solver in JAX

Solving large dense linear systems and eigenvalue problems is a core requirement in many areas of scientific computing, but scaling these operations beyond a single GPU remains challenging within modern programming frameworks. While highly optimized multi-GPU solver libraries exist, they are typically difficult to integrate into composable, just-in-time (JIT) compiled Python workflows. JAXMg provides distributed dense linear algebra for JAX, enabling linear solves and decompositions for matrices that exceed single-GPU memory limits. By interfacing JAX with NVIDIA's cuSOLVERMp through an XLA Foreign Function Interface, JAXMg exposes distributed GPU routines as JIT-compatible JAX primitives. This design allows scalable linear algebra to be embedded directly within JAX programs, preserving composability with JAX transformations and enabling multi-GPU and multi-node execution in end-to-end scientific workflows.

cs.DC