Collaborative City Digital Twin For Covid-19 Pandemic: A Federated Learning Solution
November 05, 2020 ยท Declared Dead ยท ๐ arXiv.org
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Authors
Junjie Pang, Jianbo Li, Zhenzhen Xie, Yan Huang, Zhipeng Cai
arXiv ID
2011.02883
Category
cs.LG: Machine Learning
Cross-listed
cs.AI,
cs.CY
Citations
140
Venue
arXiv.org
Last Checked
4 months ago
Abstract
In this work, we propose a collaborative city digital twin based on FL, a novel paradigm that allowing multiple city DT to share the local strategy and status in a timely manner. In particular, an FL central server manages the local updates of multiple collaborators (city DT), provides a global model which is trained in multiple iterations at different city DT systems, until the model gains the correlations between various response plan and infection trend. That means, a collaborative city DT paradigm based on FL techniques can obtain knowledge and patterns from multiple DTs, and eventually establish a `global view' for city crisis management. Meanwhile, it also helps to improve each city digital twin selves by consolidating other DT's respective data without violating privacy rules. To validate the proposed solution, we take COVID-19 pandemic as a case study. The experimental results on the real dataset with various response plan validate our proposed solution and demonstrate the superior performance.
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