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Noise reduction of parametric images of myocardial blood flow by filtering H/sub 2//sup 15/O dynamic PET images using wavelet transform

机译:通过使用小波变换过滤H / sub 2 // sup 15 / O动态PET图像来减少心肌血流参数化图像的噪声

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Dynamic PET images are useful for the measurement of physiological functions. However, signal to noise ratio of H/sub 2//sup 15/O dynamic PET images is poor, thus filtering is necessary. It is well known that discrete wavelet transform saves detailed information in high frequency while diminishing noise. Recently, two methods to generate parametric images of myocardial blood flow using H/sub 2//sup 15/O dynamic PET images have been suggested by our group, but the signal to noise ratio of the suggested parametric images has a room for improvement by applying appropriate temporal or spatial filters to raw dynamic images. Thus, in this study, we applied wavelet transform to reduce the statistical noise in time-activity curve in each pixel prior to generating parametric images of myocardial blood flow and related parameters, and compared the image quality of parametric images with and without wavelet filtering. Wavelet denoising applied to raw dynamic images prior to generating parametric images, removed noise in time-activity curves and, as a result, increased image quality of parametric images without the degradation of spatial resolution.
机译:动态PET图像对于测量生理功能是有用的。然而,H / SUB 2 // SUP 15 / O动态PET图像的信噪比差,因此需要滤波。众所周知,离散小波变换在缩小噪声的同时节省高频的详细信息。最近,我们的组已经提出了使用H / SUP 2 // SUP 15 / O动态PET图像生成心肌血流参数图像的两种方法,但建议的参数图像的信噪比具有改进的空间将适当的时间或空间滤波器应用于原始动态图像。因此,在本研究中,我们在生成心肌血流和相关参数的参数图像之前,应用小波变换以减少每个像素中的时间活曲线中的统计噪声,并将参数图像的图像质量与并且没有小波滤波比较。在生成参数图像之前应用于原始动态图像的小波去噪,在时间 - 活动曲线上移除噪声,结果增加了参数图像的图像质量而不降低空间分辨率。

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