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A hybrid contextual compression technique using wavelet and contourlet transforms with PSO optimized prediction

机译:小波和轮廓波变换结合PSO优化预测的混合上下文压缩技术

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Contextual compression is an essential part of any medical image compression since it facilitates no loss of diagnostic information. Although there are many techniques available for contextual image compression still there is a need for developing an efficient and optimized technique which would produce good quality images at lower bit rates. This article presents an efficient contextual compression algorithm using wavelet and contourlet transforms to capture the fine details of the image, along with directional information to produce good quality at high Compression Ratio (CR). The 2D discrete wavelet transform, which uses the simplest Daubechies wavelets, db1, or haar wavelet, is chosen and used to get the subband coefficients. The approximate coefficients of the higher subbands undergo contourlet transform employing length N ladder filters for capturing the directional information of the subbands at different scale and orientations. An optimized approach is used for predicting the quantized and the normalized subband coefficients resulting in improved compression performance. The proposed contextual compression approach was evaluated for its performance in terms of CR, Peak Signal to Noise Ratio, Feature SIMilarity index, Structure SIMilarity Index, and Universal quality (Q) after reconstruction. The results clarify the efficiency of the proposed method over other compression techniques.
机译:上下文压缩是任何医学图像压缩的重要组成部分,因为它不会造成诊断信息的丢失。尽管有许多可用于上下文图像压缩的技术,但仍需要开发一种有效且优化的技术,该技术将以较低的比特率产生高质量的图像。本文提出了一种有效的上下文压缩算法,该算法使用小波和Contourlet变换捕获图像的精细细节,并结合方向信息以在高压缩比(CR)下产生良好的质量。选择使用最简单的Daubechies小波db1或haar小波的2D离散小波变换,并将其用于获得子带系数。较高子带的近似系数通过使用长度为N的梯形滤波器进行等高线变换,以捕获不同比例和方向的子带的方向信息。一种优化的方法用于预测量化和归一化的子带系数,从而提高了压缩性能。评估了拟议的上下文压缩方法的性能,包括CR,峰值信噪比,特征相似性指数,结构相似性指数和重建后的通用质量(Q)。结果阐明了所提方法相对于其他压缩技术的效率。

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