首页> 外文期刊>Medical Physics >Evaluation of z-axis resolution and image noise for nonconstant velocity spiral CT data reconstructed using a weighted 3D filtered backprojection (WFBP) reconstruction algorithm.
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Evaluation of z-axis resolution and image noise for nonconstant velocity spiral CT data reconstructed using a weighted 3D filtered backprojection (WFBP) reconstruction algorithm.

机译:使用加权3D滤波反投影(WFBP)重建算法重建的非恒定速度螺旋CT数据的z轴分辨率和图像噪声的评估。

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PURPOSE: To determine the constancy of z-axis spatial resolution, CT number, image noise, and the potential for image artifacts for nonconstant velocity spiral CT data reconstructed using a flexibly weighted 3D filtered backprojection (WFBP) reconstruction algorithm. METHODS: A WFBP reconstruction algorithm was used to reconstruct stationary (axial, pitch=0), constant velocity spiral (pitch = 0.35-1.5) and nonconstant velocity spiral CT data acquired using a 128 x 0.6 mm acquisition mode (38.4 mm total detector length, z-flying focal spot technique), and a gantry rotation time of 0.30 s. Nonconstant velocity scans used the system's periodic spiral mode, where the table moved in and out of the gantry in a cyclical manner. For all scan types, the volume CTDI was 10 mGy. Measurements of CT number, image noise, and the slice sensitivity profile were made for all scan types as a function of the nominal slice width, table velocity, and position within the scan field of view. A thorax phantom was scanned using all modes and reconstructed transverse and coronal plane images were compared. RESULTS: Negligible differences in slice thickness, CT number, noise, or artifacts were found between scan modes for data taken at two positions within the scan field of view. For nominal slices of 1.0-3.0 mm, FWHM values of the slice sensitivity profiles were essentially independent of the scan type. For periodic spiral scans, FWHM values measured at the center of the scan range were indistinguishable from those taken 5 mm from one end of the scan range. All CT numbers were within +/- 5 HU, and CT number and noise values were similar for all scan modes assessed. A slight increase in noise and artifact level was observed 5 mm from the start of the scan on the first pass of the periodic spiral. On subsequent passes, noise and artifact level in the transverse and coronal plane images were the same for all scan modes. CONCLUSIONS: Nonconstant velocity periodic spiral scans can achieve z-axis spatial resolution, CT number accuracy, image noise and artifact level equivalent to those for stationary (axial), and constant velocity spiral scans. Thus, periodic spiral scans are expected to allow assessment of four-dimensional CT data for scan lengths greater than the detector width without sacrificing image quality.
机译:目的:确定使用灵活加权3D滤波反投影(WFBP)重建算法重建的非恒定速度螺旋CT数据的z轴空间分辨率,CT数量,图像噪声和图像伪影的恒定性。方法:使用WFBP重建算法重建固定(轴向,螺距= 0),等速螺旋(螺距= 0.35-1.5)和使用128 x 0.6 mm采集模式(38.4 mm总检测器长度)采集的非等速螺旋CT数据,z-flying焦点技术)和0.30 s的龙门旋转时间。非恒定速度扫描使用系统的周期性螺旋模式,其中工作台以周期性方式移入和移出机架。对于所有扫描类型,体积CTDI为10 mGy。根据标称切片宽度,工作台速度和扫描视野内位置的函数,对所有扫描类型进行了CT数,图像噪声和切片灵敏度曲线的测量。使用所有模式扫描胸部模型,并比较重建的横断面和冠状面图像。结果:对于在扫描视野内两个位置拍摄的数据,在扫描模式之间发现的切片厚度,CT数量,噪声或伪影差异可忽略不计。对于1.0-3.0 mm的标称切片,切片灵敏度曲线的FWHM值基本上与扫描类型无关。对于周期性螺旋扫描,在扫描范围中心测得的FWHM值与从扫描范围一端5毫米处获得的FWHM值没有区别。所有CT数均在+/- 5 HU以内,并且所有评估的扫描模式的CT数和噪声值均相似。从周期性螺旋的第一次通过扫描开始5毫米处观察到噪声和伪影水平略有增加。在随后的扫描中,所有扫描模式的横断面和冠状面图像中的噪声和伪影水平都相同。结论:非恒定速度周期性螺旋扫描可以获得与固定(轴向)和恒定速度螺旋扫描相同的z轴空间分辨率,CT数精度,图像噪声和伪影水平。因此,期望周期性的螺旋扫描能够在不牺牲图像质量的情况下评估大于检测器宽度的扫描长度的二维CT数据。

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