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Frequency-Domain Distributed Multitask Learning Over Networks

delete2024-10-01
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PRE
AI
Z
Zefeng Chen
刘英 cover
刘英 (Ying Liu) *
DOI:10.1109/JIOT.2024.3419160delete
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Abstract

Abstract

En 中文
Distributed multitask learning, which aims to estimate multiple parameter vectors in a distributed and collaborative manner, has been applied to a wide range of Internet of Things (IoT). However, in many practical applications, such as channel impulse responses (CIRs) estimation and adaptive line enhancer (ALE), the parameter vectors of interest can be of large size, resulting in high computational cost. Frequency-domain (FD) learning that utilizes efficient fast Fourier transform (FFT) may be a good candidate to reduce computational complexity. Moreover, benefited from the prewhitening effect caused by the orthogonality property of FFT, the estimation performance can be improved. However, the existing research on FD learning mainly focuses on the single-task scenarios, which is not applicable to multitask scenarios. Considering this, in this article, we first formulate the FD distributed multitask learning (FD-DMTL) problem, and then propose a FD-DMTL algorithm. Through performing numerical simulations and practical applications to the CIRs estimation and smart grid state estimation, it is observed that the proposed algorithm exhibits lower computational complexity and better estimation performance compared with the existing time-domain distributed algorithms.
Keywords:
Distributed optimization
frequency domain
Internet of Things (IoT)
multitask learning
Distributed optimization
frequency domain
Internet of Things (IoT)
multitask learning

Journal

IEEE Internet of Things Journal cover
IEEE Internet of Things Journal
IF:
8.9
Papers:
1.4W
Citations:
7.8W

Organization

Z
zhejiang university
Scholars:
17.7W
Papers: 12.1W
Citations: 152
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