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首页> 外文期刊>Medical Physics >Performance analysis of a new semiorthogonal spline wavelet compression algorithm for tonal medical images.
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Performance analysis of a new semiorthogonal spline wavelet compression algorithm for tonal medical images.

机译:一种新的用于色调医学图像的半正交样条小波压缩算法的性能分析。

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Lossy image compression is thought to be a necessity as radiology moves toward a filmless environment. Compression algorithms based on the discrete cosine transform (DCT) are limited due to the infinite support of the cosine basis function. Wavelets, basis functions that have compact or nearly compact support, are mathematically better suited for decorrelating medical image data. A lossy compression algorithm based on semiorthogonal cubic spline wavelets has been implemented and tested on six different image modalities (magnetic resonance, x-ray computed tomography, single photon emission tomography, digital fluoroscopy, computed radiography, and ultrasound). The fidelity of the reconstructed wavelet images was compared to images compressed with a DCT algorithm for compression ratios of up to 40:1. The wavelet algorithm was found to have generally lower average error metrics and higher peak-signal-to-noise ratios than the DCT algorithm.
机译:随着放射学走向无胶片环境,有损图像压缩被认为是必要的。由于对余弦基函数的无限支持,基于离散余弦变换(DCT)的压缩算法受到限制。小波是具有紧凑或近乎紧凑支持的基础函数,在数学上更适合于去相关医学图像数据。已经实现了基于半正交三次样条小波的有损压缩算法,并在六种不同的图像模态(磁共振,x射线计算机断层扫描,单光子发射断层扫描,数字荧光检查,计算机射线照相和超声检查)上进行了测试。将重构的小波图像的保真度与使用DCT算法压缩的图像进行比较,压缩率高达40:1。与DCT算法相比,发现小波算法通常具有较低的平均误差度量和较高的峰值信噪比。

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