cs.AI updates on arXiv.org 08月12日 12:02
DSperse: A Framework for Targeted Verification in Zero-Knowledge Machine Learning
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DSperse是一种基于战略加密验证的分布式机器学习推理模块化框架,通过选择子计算进行针对性验证,降低全模型电路化成本,支持可扩展的针对性验证策略。

arXiv:2508.06972v1 Announce Type: new Abstract: DSperse is a modular framework for distributed machine learning inference with strategic cryptographic verification. Operating within the emerging paradigm of distributed zero-knowledge machine learning, DSperse avoids the high cost and rigidity of full-model circuitization by enabling targeted verification of strategically chosen subcomputations. These verifiable segments, or "slices", may cover part or all of the inference pipeline, with global consistency enforced through audit, replication, or economic incentives. This architecture supports a pragmatic form of trust minimization, localizing zero-knowledge proofs to the components where they provide the greatest value. We evaluate DSperse using multiple proving systems and report empirical results on memory usage, runtime, and circuit behavior under sliced and unsliced configurations. By allowing proof boundaries to align flexibly with the model's logical structure, DSperse supports scalable, targeted verification strategies suited to diverse deployment needs.

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分布式机器学习 加密验证 DSperse框架
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