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Multi-Agent Lifelong Implicit Neural Learning

delete2023-01-01
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PRE
AI
S
Soheil Kolouri *
A
Ali Abbasi
S
Soroush Abbasi Koohpayegani
P
Parsa Nooralinejad
H
Hamed Pirsiavash
DOI:10.1109/LSP.2023.3338092delete
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摘要

摘要

En 中文
Implicit neural representations (INRs) have emerged as powerful tools for the continuous representation of signals, finding applications in imaging, computer graphics, and signal compression. Additionally, decentralized multi-agent systems are crucial in various applications, frequently leading to enhanced reliability and efficiencies in computation and communication. In this letter, we explore using multi-agent Lifelong Learning (LL) systems for learning INRs. We propose a rigorous problem setup and evaluation plan to investigate the efficacy of such systems compared to single-agent and multi-task learning baselines. Our research, conducted across varied dimensions, demonstrates promising results, thereby contributing a novel perspective to the realm of continual learning.
Keyword:
Continual learning
implicit neural representations
lifelong learning
multi-agent systems

期刊

IEEE Signal Processing Magazine 封面图
IEEE Signal Processing Magazine
IF:
9.6
论文数:
1.1W
被引数:
1.7W

机构

V
vanderbilt university
学者数:
5.1W
论文数: 4.1W
被引数: 59
University of California System 封面图
University of California System
学者数:
37.5W
论文数: 33.7W
被引数: 6.6K
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