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Image-based 3D object detection for autonomous driving
PhD Qualifying Examination Title: "Image-based 3D object detection for autonomous driving" by Mr. Qing LIAN Abstract: Image-based 3D object detection aims at identifying and localizing the surrounding obstacles in the 3D space, which plays an essential role in autonomous driving. In this survey, I will provide an overview of recent image-based 3D object detection methods in autonomous driving scenarios. I will first introduce the task definition and the related datasets in 3D object detection. Then I will present various top-performing methods, including direct-regression based, 2D-3d constraint based, pseudo-lidar and BEV based approaches. Next, I will introduce our empirical study on the direct-regression based methods and present the work that integrates the direct-regression and geometry-constraint based approaches. Finally, I will present several promising future research directions for camera-based 3D object detection, including temporal modeling, semi-supervised training, uncertainty quantification and etc. Date: Thursday, 29 September 2022 Time: 2:00pm - 4:00pm Venue: Room 4475 lifts 25-26 Zoom meeting: https://hkust.zoom.us/j/3178158301 Committee Members: Prof. Tong Zhang (Supervisor) Prof. Xiaofang Zhou (Chairperson) Dr. Dan Xu Dr. Yingcong Chen (AI Thrust) **** ALL are Welcome ****