Multiresolution codebook design for wavelet/VQ image coding

Francisco Madeiro, Madhavan Vajapeyam, M. Ronan Morais, Benedito G. Aguiar Neto, Marcelo Sampaio de Alencar · 2002

Image compression using the combination of the discrete wavelet transform (DWT) with vector quantization (VQ) has been considered in many works. Most of the studies have been dedicated to evaluating the choice of the wavelet filters employed in the multiresolution wavelet image decomposition or to developing bit-allocation schemes. It is worth mentioning, however, that the VQ codebook design plays a crucial role in the quality of the reconstructed image. A competitive neural network algorithm (synaptic space competitive algorithm, SSC) has already been successfully applied for voice waveform VQ codebook design (Vilar Franca and Aguiar Neto, 1994). In the present work, the SSC algorithm is applied in a wavelet/VQ image coding framework. The SSC codebooks are used to code the image subbands that result from the multiresolution decomposition. The coding results show that the SSC multiresolution codebooks lead to better reconstructed image quality than that obtained by using JPEG and conventional (spatial domain) VQ.

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