迈向高效的分散联邦学习

C. Pappas, D. Papadopoulos, Dimitris Chatzopoulos, Eleni Panagou, S. Lalis, M. Vavalis
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引用次数: 0

摘要

我们专注于在具有多个聚合器的分散设置中有效部署联邦学习训练任务的问题。为此,我们对最近提出的IPLS协议进行了一些改进和修改。特别是,我们放宽了参与者之间直接通信的假设,而是使用分散存储系统上的间接通信,有效地将其转变为部分异步协议。此外,我们通过依赖于有效验证聚合的同态加密承诺来保护它免受恶意聚合器(删除或更改数据)的侵害。我们实现了修改后的IPLS协议,并报告了其性能和潜在的瓶颈。最后,我们确定了这条研究路线的重要下一步。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Towards Efficient Decentralized Federated Learning
We focus on the problem of efficiently deploying a federated learning training task in a decentralized setting with multiple aggregators. To that end, we introduce a number of improvements and modifications to the recently proposed IPLS protocol. In particular, we relax its assumption for di-rect communication across participants, using instead indirect communication over a decentralized storage system, effectively turning it into a partially asynchronous protocol. Moreover, we secure it against malicious aggregators (that drop or alter data) by relying on homomorphic cryptographic commitments for efficient verification of aggregation. We implement the modified IPLS protocol and report on its performance and potential bottlenecks. Finally, we identify important next steps for this line of research.
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