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学术报告《Byzantine-tolerant distributed machine learning: trends and recent progress》
2020-10-23

南京大学计算机科学与技术系

软件新技术与产业化协同创新中心

摘 要:

Recently, the security in distributed machine-learning systems has drawn wide attention in the community. Especially, an increasing amount of work has been conducted on the problem of Byzantine attacks/failures, which assume the worst cases for the distributed systems.

In this talk, Xie is going to introduce the recent progress in Byzantine-tolerant distributed machine learning. He will briefly survey the 2 categories: robust statistics and score-based approaches, and focus on his recent publications in this field.

报告人简介:

Cong Xie is a Ph.D. candidate in University of Illinois Urbana Champaign, who expects to graduate in 2021, advised by Prof. Indranil Gupta and Prof. Oluwasanmi Koyejo. His research focuses on protecting distributed learning algorithms from malicious attacks, and designing communication-efficient distributed optimization algorithms. He has presented his research results at leading conferences such as ICML, NeurIPS, UAI, ECML, etc. Xie was selected as a J.P. Morgan Fellow (2020) for his work in secure distributed machine learning

时间:10月30日  10:00-11:30

腾讯会议平台ID: 266 171 407

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