Unsourced Massive Access-Based Digital Over-the-Air Computation for Efficient Federated Edge Learning

Li Qiao*, Zhen Gao*, Zhongxiang Li*, Deniz Gündüz

*此作品的通讯作者

科研成果: 书/报告/会议事项章节会议稿件同行评审

2 引用 (Scopus)

摘要

Over-the-air computation (OAC) is a promising technique to achieve fast model aggregation across multiple devices in federated edge learning (FEEL). In addition to the analog schemes, one-bit digital aggregation (OBDA) scheme was proposed to adapt OAC to modern digital wireless systems. However, one-bit quantization in OBDA can result in a serious information loss and slower convergence of FEEL. To overcome this limitation, this paper proposes an unsourced massive access (UMA)-based generalized digital OAC (GD-OAC) scheme. Specifically, at the transmitter, all the devices share the same non-orthogonal UMA codebook for uplink transmission. The local model update of each device is quantized based on the same quantization codebook. Then, each device transmits a sequence selected from the UMA codebook based on the quantized elements of its model update. At the receiver, we propose an approximate message passing-based algorithm for efficient UMA detection and model aggregation. Simulation results show that the proposed GD-OAC scheme significantly accelerates the FEEL convergences compared with the state-of-the-art OBDA scheme while using the same uplink communication resources.

源语言英语
主期刊名2023 IEEE International Symposium on Information Theory, ISIT 2023
出版商Institute of Electrical and Electronics Engineers Inc.
2003-2008
页数6
ISBN(电子版)9781665475549
DOI
出版状态已出版 - 2023
活动2023 IEEE International Symposium on Information Theory, ISIT 2023 - Taipei, 中国台湾
期限: 25 6月 202330 6月 2023

出版系列

姓名IEEE International Symposium on Information Theory - Proceedings
2023-June
ISSN(印刷版)2157-8095

会议

会议2023 IEEE International Symposium on Information Theory, ISIT 2023
国家/地区中国台湾
Taipei
时期25/06/2330/06/23

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