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Enhancing Data Provenance and Model Transparency in Federated Learning Systems - A Database Approach
March 5, 2024, 3:11 p.m. | Michael Gu, Ramasoumya Naraparaju, Dongfang Zhao
cs.CR updates on arXiv.org arxiv.org
Abstract: Federated Learning (FL) presents a promising paradigm for training machine learning models across decentralized edge devices while preserving data privacy. Ensuring the integrity and traceability of data across these distributed environments, however, remains a critical challenge. The ability to create transparent artificial intelligence, such as detailing the training process of a machine learning model, has become an increasingly prominent concern due to the large number of sensitive (hyper)parameters it utilizes; thus, it is imperative to …
arxiv challenge critical cs.cr cs.db cs.lg data database data privacy data provenance decentralized devices distributed edge edge devices environments federated federated learning integrity machine machine learning machine learning models paradigm privacy provenance systems traceability training transparency
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