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Phase transition of random plaquette models
Tiling with Electrons: fractionalization and emergent symmetry
Pyroptosis & Innate Immunity: Mechanisms & Therapeutics Potentials
【数学之美-杰出学者讲坛】2024年第6期 || Some recent results on conformally in...
报告题目:
New opportunities and challenges in Medical Physics in the Artificial Intelligence era
 报告人:
贾珣
Ph.D., Associate Professor, Department of Radiation Oncology, 
University of Texas Southwestern Medical Center (UTSW)
报告时间:
2019-10-17 10:30
报告地点:
医学科学楼C301
主办单位:
医学院生物医学工程系
  简介:

摘要:Artificial intelligence (AI) has progressed rapidly in a variety of areas and achieved remarkable successes, ranging from autopiloting car to face recognition. Its applications in medicine have also attracted a lot of attentions. At the University of Texas Southwestern Medical Center, a group of researchers are dedicated to the development and application of deep learning (DL), the most common tool for AI nowadays, to solve problems in medical physics. This presentation will first give an overview of AI and DL. It will then present three example problems illustrating how we solve clinical medical physics problems with different complexities in cancer radiotherapy by employing DL and adapting it to the specific contexts to achieve different levels of machine intelligence. Examples will include 1) supervised learning using a deep neural network for applicator digitization in interstitial brachytherapy, 2) iterative DL for automatic sigmoid colon segmentation, and 3) deep-reinforcement learning for human-like automatic treatment planning. The last section of this presentation will discuss practical challenges when using DL to solve clinical problems. We will present the requirements to train the underlying deep neural networks, challenges to meet these requirements, and other mathematical and practical issues to consider.


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