首页> 外文期刊>EURASIP journal on advances in signal processing >Multilevel Wavelet Feature Statistics for Efficient Retrieval, Transmission, and Display of Medical Images by Hybrid Encoding
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Multilevel Wavelet Feature Statistics for Efficient Retrieval, Transmission, and Display of Medical Images by Hybrid Encoding

机译:通过混合编码实现医学图像的有效检索,传输和显示的多级小波特征统计

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Many common modalities of medical images acquire high-resolution and multispectral images, which are subsequently processed, visualized, and transmitted by subsampling. These subsampled images compromise resolution for processing ability, thus risking loss of significant diagnostic information. A hybrid multiresolution vector quantizer (HMVQ) has been developed exploiting the statistical characteristics of the features in a multiresolution wavelet-transformed domain. The global codebook generated by HMVQ, using a combination of multiresolution vector quantization and residual scalar encoding, retains edge information better and avoids significant blurring observed in reconstructed medical images by other well-known encoding schemes at low bit rates. Two specific image modalities, namely, X-ray radiographic and magnetic resonance imaging (MRI), have been considered as examples. The ability of HMVQ in reconstructing high-fidelity images at low bit rates makes it particularly desirable for medical image encoding and fast transmission of 3D medical images generated from multiview stereo pairs for visual communications.
机译:医学图像的许多常见形式都可以获取高分辨率和多光谱图像,这些图像随后通过子采样进行处理,可视化和传输。这些二次采样的图像会损害分辨率的处理能力,从而有可能丢失大量诊断信息。利用多分辨率小波变换域中特征的统计特性,已经开发了一种混合多分辨率矢量量化器(HMVQ)。由HMVQ生成的全局码本,结合了多分辨率矢量量化和残量标量编码,可以更好地保留边缘信息,并避免在低位速率下通过其他众所周知的编码方案在重建的医学图像中观察到明显的模糊。已经考虑了两个特定的图像模态,即X射线照相和磁共振成像(MRI)。 HMVQ以低比特率重建高保真图像的能力使得它特别需要用于医学图像编码和从多视图立体对生成的3D医学图像的快速传输以进行视觉通信。

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