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首页> 外文期刊>Journal of visual communication & image representation >VQ Based on a Main Feature Classification in Images
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VQ Based on a Main Feature Classification in Images

机译:基于图像主要特征分类的VQ

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摘要

A number of algorithms have been developed for loose image compression. Among the existing techniques, a bloc-based scheme is widely used because of its tractability even for compelled coding schemes. Fixed block-size coding, which is the simplest implementation of block-based schemes, suffers from the nonstationary nature of images. The formidable blocking artifacts always appear at low bit rates. To suppress this degradation, variable block-size coding is utilized. However, the allowable range of sizes is still limited because of complexity issues. By adaptively representing each region by its feature, input to the coder is transformed to fixed-size (8 x 8) blocks. This capability allows lower cross-correlation among the regions. Input feature is also classified into the proper group so that vector quantization can maximize its strength compatible with human visual sensitivity. Bit rate based on this algorithm is minimized with the new bit allocation algorithm. Simulation results show a similar performance in terms of PSNR over conventional discrete cosine transform in conjunction with classified vector quantization.
机译:已经开发了许多算法来进行松散的图像压缩。在现有技术中,基于块的方案被广泛使用,因为它即使对于强制编码方案也具有易处理性。固定块大小编码是基于块的方案的最简单实现,它具有图像的非平稳性。强大的阻塞伪像总是以低比特率出现。为了抑制这种劣化,利用可变块大小编码。但是,由于复杂性问题,允许的大小范围仍然受到限制。通过以区域的特征自适应地表示每个区域,编码器的输入将转换为固定大小(8 x 8)的块。此功能允许区域之间较低的互相关。输入特征也分为适当的组,以便矢量量化可以最大化其强度,使其与人类的视觉灵敏度兼容。新的比特分配算法可将基于该算法的比特率降至最低。仿真结果表明,结合分类矢量量化,与传统的离散余弦变换相比,PSNR具有相似的性能。

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