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Performance analysis of image reconstruction based on Modified Radon Transform with Wavelet Transform

机译:基于小波变换的Radon变换的图像重建性能分析。

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In many medical imaging modalities, image reconstruction is a key component. Radon Transform is mostly used for reconstruction due to its ability to map from the image space to line parameter space. The goal of this work is to perform another alternative to remove blurring on reconstructed images which is obtained by the Classic Radon Transform. Wavelet Transform, which provides time and frequency representation, allows complex information such as images to be separated into elementary forms at different positions and scales and reconstructed with good precision. In consequence, we have an additional chance to distinguish image content and noise. By combining benefits both Radon Transform and Wavelet Transform, it becomes one of many ways to reconstruct an image. In addition, filters are applied on reconstructed images to improve their performance. The quality of the images is evaluated by Peak Signal Noise to Ratio (PSNR) and Structural Similarity (SSIM) to find the performance of the reconstructed images. Numerical results show that the Modified Radon Transform with Wavelet Transform plus wiener filter is more effective than the Classic Radon Transform.
机译:在许多医学成像方式中,图像重建是关键组成部分。 Radon Transform由于可从图像空间映射到线参数空间,因此主要用于重建。这项工作的目标是执行另一种方法,以消除通过经典Radon变换获得的重建图像上的模糊。提供时间和频率表示的小波变换允许将复杂的信息(例如图像)分离为不同位置和比例的基本形式,并以良好的精度进行重构。因此,我们还有额外的机会来区分图像内容和噪点。通过结合Radon变换和Wavelet变换的优点,它成为重建图像的许多方法之一。另外,将滤镜应用于重构图像以提高其性能。通过峰值信噪比(PSNR)和结构相似度(SSIM)评估图像的质量,以找到重建图像的性能。数值结果表明,带小波变换和维纳滤波器的改进拉顿变换比经典拉顿变换更有效。

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