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An improved multimodal signal-image compression scheme with application to natural images and biomedical data

机译:一种改进的多模态信号图像压缩方案,应用于自然图像和生物医学数据

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摘要

In this paper, a new multimodal compression scheme is proposed with the aim of compressing jointly an image and a signal via a single codec. The key idea behind our approach is to insert a wavelet-decomposed signal into a decomposed image and then consider the mixture data as an image for compression with the Set Partitioning In Hierarchical Trees (SPIHT) encoder. The insertion stage is performed in detail wavelet sub-bands using a spiral insertion function. The evaluation process is assessed on both natural and medical images according to an objective and subjective comparison criteria. Moreover, four multimodal compression schemes are provided for the sake of fair assessment. Finally, experimental results demonstrate the effectiveness of the proposed approach to achieve significant gains in terms of Percentage of Root Mean Square Difference (PRD) and Peak Signal to Noise Ratio (PSNR) for both reconstructed signal and image.
机译:本文提出了一种新的多峰压缩方案,旨在通过单个编解码器共同压缩图像和信号。我们方法背后的关键思想是将小波分解后的信号插入分解后的图像中,然后将混合数据视为使用“分层树集划分”(SPIHT)编码器进行压缩的图像。插入阶段是使用螺旋插入函数在小波子带中执行的。根据客观和主观的比较标准,对自然和医学图像均进行评估过程。此外,为了公平评估,提供了四个多模式压缩方案。最后,实验结果证明了该方法在重构信号和图像均方根均方差(PRD)和峰值信噪比(PSNR)方面均取得了显着收益。

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