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学堂班系列讲座:“Towards Energy Efficient Information Processing withIntelli...
Sculpting quantum phases of matter with measurements
吉林大学化学学院-清华大学化学系双边学术研讨会(2024)
纳米结构工程与纳米压印
报告题目:
工物学术论坛(第89期):医学影像重建中的压缩感知:稀疏化、算法、应用
 报告人:
高浩
上海交通大学研究员, 博士生导师
报告时间:
2014-04-28 14:00
报告地点:
清华大学工物系刘卿楼402
主办单位:
工程物理系
  简介:

Compressive sensing (CS) studies the minimal utility of the data for accurate image reconstruction under the proper sensing scheme. Although the assumptions of CS theories are rarely strictly satisfied in medical imaging, CS has inspired numerous sparsity-based new imaging methodologies and algorithms to enable faster and better imaging for various applications. This tutorial starts with a brief overview of CS and its recent developments, and then introduces various sparsity transforms for static and dynamic images, followed by a few representative optimization algorithms for solving the formulated sparsity-based models, which cover several imaging applications in MRI, CT, and optical molecular imaging.

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