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A novel method of micro-tomography geometric angle calibration with random phantom

机译:随机幻像的微断层扫描几何角度校准的一种新方法

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摘要

The objective of this study is to develop and test the feasibility of applying a machine learning method for geometry calibration of angles in micro-tomography systems. Increasing importance of micro-tomography systems are manifested with escalating applications in various scenarios including but not limited to oral and maxillofacial surgery, vascular and intervention radiology, among other specific applications for purposes of diagnosis and treatments planning. There is possibility, however, actual pathology is confused by artifact of tissue structures after volume reconstruction as a result of CT construction errors. A Kernel Ridge Regression algorithm for micro-tomography geometry estimation and its corresponding phantom is developed and tested in this study. Several projection images of a rotating Random Phantom of some steel ball bearings in an unknown geometry with gantry angle information were utilized to calibrate both in-plane and out-plane rotation of the detector. The described method can also be expanded to calibrate other parameters of CT construction effortlessly. Using computer simulation, the study results validated that geometry parameters of micro-tomography system were accurately calibrated.
机译:本研究的目的是开发和测试应用机器学习方法的可行性,用于微型层析术系统中的角度的几何校准。微型层析术系统的重要性表现出各种场景中的升级应用,包括但不限于口腔和颌面外科,血管和干预放射学,以及其他特定应用,用于诊断和治疗计划。然而,存在可能是CT施工误差的体积重建后组织结构的工件混淆的实际病理学。本研究开发并测试了用于微断层扫描几何估计的内核岭回归算法及其对应的幽灵。利用在未知几何形状中的一些钢球轴承的旋转随机幻像的若干投影图像,其具有龙门角度信息,以校准检测器的平面内和外平面旋转。还可以扩展所描述的方法以毫不费力地校准CT施工的其他参数。使用计算机仿真,研究结果验证了微型层析术系统的几何参数被精确校准。

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