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计算机学院系列讲座菁英论坛第12——Enabling Efficiency Robustness and Security of Deep Learning Systems at The Edge    


报告题目(Title)Enabling Efficiency Robustness and Security of Deep Learning Systems at The Edge

 

时间(Date & Time)2023.6.30     10-11am

 

地点(Location)理科一号楼1131(燕园校区) Room 1131, Science Building #1 (Yanyuan)

主讲人(Speaker)Wei Yang


邀请人(Host)Tao Xie

 

报告摘要(Abstract)

 

Deep Neural Networks (DNNs) have shown potential in many applications. However, the power of using DNNs comes at substantial computational costs. The costs, especially the inference-time cost, can be a concern for deploying DNNs on resource-constrained embedded devices such as mobile phones and IoT devices. To enable deploying DNNs on resource-constrained devices, researchers propose a series of deep learning systems where the amount of inference-time computation varies for different inputs. This talk will present challenges and a series of work to deploy energy-efficient and robust deep learning systems on the Edge systems/devices. This talk first reviews some of my past research and then will discuss a few ongoing work towards enabling the wide-scale deployment of resource-constrained embedded AI systems like UAVs, autonomous vehicles, Robotics, IoT-Healthcare / Wearables, Industrial-IoT, etc.

 

主讲人简介(Bio)

 

Wei Yang is an assistant professor in the Department of Computer Science at the University of Texas at Dallas. He teaches and does research on software engineering and security. He received my Ph.D. in Computer Science from the University of Illinois at Urbana-Champaign, an M.S. in Computer Science from North Carolina State University, and a B.E. in Software Engineering from Shanghai Jiao Tong University. He was a visiting researcher in University of California, Berkeley. He is a recipient of numerous awards including NSF CAREER Award and ACM SIGSOFT Distinguished Paper Award.

 

 

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北京大学计算机学院