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清华大学材料科学与工程研究院《材料科学论坛》:基于拓扑缺陷理论的轻合金组织设计新...
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报告题目:
清华BBNC创新讲座(第6期) Factor Graphs for Flexible Inference in Robotics and Vision
 报告人:
Prof. Frank Dellaert
Georgia Institute of Technology
报告时间:
2019-06-26 10:00
报告地点:
中央主楼511会议室
主办单位:
清华大学自动化系
  简介:

报告人简介:

Frank Dellaert is a professor in the School of Interactive Computing at the Georgia Institute of Technology. While on leave from Tech in 2016-2018, he served as a technical project lead at Facebook Reality Labs. Before that, he completed a stint as chief scientist at Skydio, a startup founded by MIT grads to create intuitive interfaces for micro-aerial vehicles. Dellaert’s research interests lie in the overlap of robotics and computer vision, and he is particularly interested in graphical model techniques to solve large-scale problems in mapping and 3D reconstruction. The GTSAM toolbox embodies many of the ideas his research group has worked on in the past few years and is available for download at https://gtsam.org

报告摘要:

In robotics and computer vision, simultaneous localization and mapping (SLAM) and structure from motion (SFM) are important and closely related problems. I will review how SLAM, SFM, and other problems in robotics and vision can be posed in terms of factor graphs, which provide a graphical language in which to develop and collaborate on such problems. The theme of the talk will be to emphasize the advantages and intuition that come with analyzing factor graphs. I will show how using these insights we have developed both batch and incremental algorithms defined on graphs in the SLAM/SFM domain, as well as more sophisticated approaches to trajectory optimization. Many of these ideas are embodied in the Skydio R1, a commercially available, fully autonomous drone I helped develop at Skydio, a San Francisco Bay area startup.


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