Wavelet-based, inhomogeneous, near-lossless compression of ultrasound images of the heart

V. Vlahakis, R. Kitney
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引用次数: 11

Abstract

With hospitals switching from film to digital storage of medical images, there is an ever increasing need for efficient image compression techniques. This paper presents a new approach to segmented coding of ultrasound images of the heart for inhomogeneous spatial reconstruction quality. The authors' method employs a geometric modelling technique to detect the useful image area from the background. Based on these results, they make use of a hybrid segmentation technique to isolate the anatomical structures of the heart in the presence of noise. Segmented structures are assigned importance according to their diagnostic content and compression is performed using the wavelet transform and entropy coding. The authors select the most important wavelet coefficients across scales. This involves the rejection of noise related coefficients and emphasizing on those carrying the bulk of the diagnostic information in the original image.
基于小波的,非均匀的,近乎无损的心脏超声图像压缩
随着医院医学图像从胶片存储转向数字存储,对高效图像压缩技术的需求不断增加。针对非均匀空间重构质量问题,提出了一种新的心脏超声图像分割编码方法。该方法采用几何建模技术从背景中检测出有用的图像区域。基于这些结果,他们利用混合分割技术在存在噪声的情况下分离心脏的解剖结构。根据诊断内容对分割结构进行重要性排序,并采用小波变换和熵编码进行压缩。作者选择了跨尺度的最重要的小波系数。这涉及到噪声相关系数的抑制,并强调那些在原始图像中携带大量诊断信息的系数。
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