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Neuro-Wavelet Based Approach for Image Compression

机译:基于神经小波的图像压缩方法

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Images have large data quantity. For storage and transmission of images, high efficiency image compression methods are under wide attention. In this paper we propose a neuro- wavelet based model for image compression which combines the advantage of wavelet transform and neural network. Images are decomposed using wavelet filters into a set of sub bands with different resolution corresponding to different frequency bands. Different quantization and coding schemes are used for different sub bands based on their statistical properties. The coefficients in low frequency band are compressed by differential pulse code modulation (DPCM) and the coefficients in higher frequency bands are compressed using neural network. Using this scheme we can achieve satisfactory reconstructed images with large compression ratios.
机译:图像具有大量数据数量。为了存储和传输图像,高效图像压缩方法受到广泛关注。本文提出了一种基于神经小波的图像压缩模型,其结合了小波变换和神经网络的优点。使用小波滤波器将图像分解成具有与不同频带对应的不同分辨率的一组子带。基于其统计属性,不同的量化和编码方案用于不同的子带。低频带中的系数通过差分脉冲码调制(DPCM)压缩,并且使用神经网络压缩较高频带中的系数。使用该方案,我们可以实现具有大压缩比的令人满意的重建图像。

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