首页> 外文期刊>Journal of digital imaging: the official journal of the Society for Computer Applications in Radiology >A Compressed-Sensing Based Blind Deconvolution Method for Image Deblurring in Dental Cone-Beam Computed Tomography
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A Compressed-Sensing Based Blind Deconvolution Method for Image Deblurring in Dental Cone-Beam Computed Tomography

机译:一种基于压缩的基于盲肠锥形束图像断层扫描图像去纹理的盲折叠解卷积方法

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摘要

In cone-beam computed tomography (CBCT), reconstructed images are inherently degraded, restricting its image performance, due mainly to imperfections in the imaging process resulting from detector resolution, noise, X-ray tube's focal spot, and reconstruction procedure as well. Thus, the recovery of CBCT images from their degraded version is essential for improving image quality. In this study, we investigated a compressed-sensing (CS)-based blind deconvolution method to solve the blurring problem in CBCT where both the image to be recovered and the blur kernel (or point-spread function) of the imaging system are simultaneously recursively identified. We implemented the proposed algorithm and performed a systematic simulation and experiment to demonstrate the feasibility of using the algorithm for image deblurring in dental CBCT. In the experiment, we used a commercially available dental CBCT system that consisted of an X-ray tube, which was operated at 90kV(p) and 5mA, and a CMOS flat-panel detector with a 200-m pixel size. The image characteristics were quantitatively investigated in terms of the image intensity, the root-mean-square error, the contrast-to-noise ratio, and the noise power spectrum. The results indicate that our proposed method effectively reduced the image blur in dental CBCT, excluding repetitious measurement of the system's blur kernel.
机译:在锥形光束计算机断层扫描(CBCT)中,重建的图像固有地降低,限制其图像性能,主要是由于探测器分辨率,噪声,X射线管的焦点和重建过程产生的成像过程中的缺陷。因此,来自其降级版本的CBCT图像的恢复对于提高图像质量至关重要。在这项研究中,我们研究了一种压缩感测(CS)基于CS的盲卷积方法,以解决CBCT中的模糊问题,其中待恢复的图像和成像系统的模糊内核(或点扩展功能)同时递归地确定。我们实现了所提出的算法,并进行了系统的模拟和实验,以证明使用牙科CBCT算法去掩模算法的可行性。在实验中,我们使用了由X射线管组成的市售牙科CBCT系统,其在90kV(P)和5mA,以及具有200m像素尺寸的CMOS平板检测器。在图像强度,根均方误差,对比度对比度和噪声功率谱方面定量地研究了图像特性。结果表明,我们所提出的方法有效地降低了牙科CBCT中的图像模糊,不包括系统模糊内核的重复测量。

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