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Structured Vector Quantizers in Image Coding

Structured Vector Quantizers in Image Coding PDF Author: Manijeh Khataie
Publisher:
ISBN:
Category : Data compression (Telecommunication)
Languages : en
Pages : 0

Book Description
Image data compression is concerned with the minimization of the volume of data used to represent an image. In recent years, image compression algorithms using Vector Quantization (VQ) have been receiving considerable attention. Unstructured vector quantizers, i.e., those with no restriction on the geometrical structure of the codebook, suffer from two basic drawbacks, viz., the codebook search complexity and the large storage requirement. This explains the interest in the structured VQ schemes, such as lattice-based VQ and multi-stage VQ. The objective of this thesis is to devise techniques to reduce the complexity of vector quantizers. In order to reduce the codebook search complexity and memory requirement, a universal Gaussian codebook in a residual VQ or a lattice-based VQ is used. To achieve a better performance, a part of work has been done in the frequency domain. Specifically, in order to retain the high-frequency coefficients in transform coding, two methods are suggested. One is developed for moderate to high rate data compression while the other is effective for low to moderate data rate. In the first part of this thesis, a residual VQ using a low rate optimal VQ in the first-stage and a Gaussian codebook in the other stages are introduced. From rate distortion theory, for most memoryless sources and many Gaussian sources with memory, the quantization error under MSE criterion, for small distortion, is memoryless and Gaussian. For VQ with a realistic rate, the error signal has a non-Gaussian distribution. It is shown that the distribution of locally normalized error signals, however, becomes close to a Gaussian distribution. In the second part, a new two-stage quantizer is proposed. The function of the first stage is to encode the more important low-pass components of the image and that of the second is to do the same for the high-frequency components ignored in the first stage. In one scheme, a high-rate lattice-based vector quantizer is used as the quantizer for both stages. In another scheme, the standard JPEG with a low rate is used as the quantizer of the first stage, and a lattice-based VQ is used for the second stage. The resulting bit rate of the two-stage lattice-based VQ in either scheme is found to be considerably better than that of JPEG for moderate to high bit rates. In the third part of the thesis, a method to retain the high-frequency coefficients is proposed by using a relatively huge codebook obtained by truncating the lattices with a large radius. As a result, a large number of points fall inside the boundary of the codebook, and thus, the images are encoded with high quality and low complexity: To reduce the bit rate, a shorter representation is assigned to the more frequently used lattice points. To index the large number of lattice points which fall inside the boundary, two methods that are based on grouping of the lattice points according to their frequencies of occurrence are proposed. For most of the test images, the proposed methods of retaining high-frequency coefficients is found to outperform JPEG.

Structured Vector Quantizers in Image Coding

Structured Vector Quantizers in Image Coding PDF Author: Manijeh Khataie
Publisher:
ISBN:
Category : Data compression (Telecommunication)
Languages : en
Pages : 0

Book Description
Image data compression is concerned with the minimization of the volume of data used to represent an image. In recent years, image compression algorithms using Vector Quantization (VQ) have been receiving considerable attention. Unstructured vector quantizers, i.e., those with no restriction on the geometrical structure of the codebook, suffer from two basic drawbacks, viz., the codebook search complexity and the large storage requirement. This explains the interest in the structured VQ schemes, such as lattice-based VQ and multi-stage VQ. The objective of this thesis is to devise techniques to reduce the complexity of vector quantizers. In order to reduce the codebook search complexity and memory requirement, a universal Gaussian codebook in a residual VQ or a lattice-based VQ is used. To achieve a better performance, a part of work has been done in the frequency domain. Specifically, in order to retain the high-frequency coefficients in transform coding, two methods are suggested. One is developed for moderate to high rate data compression while the other is effective for low to moderate data rate. In the first part of this thesis, a residual VQ using a low rate optimal VQ in the first-stage and a Gaussian codebook in the other stages are introduced. From rate distortion theory, for most memoryless sources and many Gaussian sources with memory, the quantization error under MSE criterion, for small distortion, is memoryless and Gaussian. For VQ with a realistic rate, the error signal has a non-Gaussian distribution. It is shown that the distribution of locally normalized error signals, however, becomes close to a Gaussian distribution. In the second part, a new two-stage quantizer is proposed. The function of the first stage is to encode the more important low-pass components of the image and that of the second is to do the same for the high-frequency components ignored in the first stage. In one scheme, a high-rate lattice-based vector quantizer is used as the quantizer for both stages. In another scheme, the standard JPEG with a low rate is used as the quantizer of the first stage, and a lattice-based VQ is used for the second stage. The resulting bit rate of the two-stage lattice-based VQ in either scheme is found to be considerably better than that of JPEG for moderate to high bit rates. In the third part of the thesis, a method to retain the high-frequency coefficients is proposed by using a relatively huge codebook obtained by truncating the lattices with a large radius. As a result, a large number of points fall inside the boundary of the codebook, and thus, the images are encoded with high quality and low complexity: To reduce the bit rate, a shorter representation is assigned to the more frequently used lattice points. To index the large number of lattice points which fall inside the boundary, two methods that are based on grouping of the lattice points according to their frequencies of occurrence are proposed. For most of the test images, the proposed methods of retaining high-frequency coefficients is found to outperform JPEG.

Variable Rate Structured Vector Quantization and Applications to Multiresolution Image Coding

Variable Rate Structured Vector Quantization and Applications to Multiresolution Image Coding PDF Author: Mahesh Balakrishnan
Publisher:
ISBN:
Category :
Languages : en
Pages : 130

Book Description


Hierarchically Motion Compensated Image Sequence Coding with Tree Structured Vector Quantization

Hierarchically Motion Compensated Image Sequence Coding with Tree Structured Vector Quantization PDF Author: Ulug Bayazit
Publisher:
ISBN:
Category :
Languages : en
Pages : 92

Book Description


Vector Quantization and Signal Compression

Vector Quantization and Signal Compression PDF Author: Allen Gersho
Publisher: Springer Science & Business Media
ISBN: 146153626X
Category : Technology & Engineering
Languages : en
Pages : 737

Book Description
Herb Caen, a popular columnist for the San Francisco Chronicle, recently quoted a Voice of America press release as saying that it was reorganizing in order to "eliminate duplication and redundancy. " This quote both states a goal of data compression and illustrates its common need: the removal of duplication (or redundancy) can provide a more efficient representation of data and the quoted phrase is itself a candidate for such surgery. Not only can the number of words in the quote be reduced without losing informa tion, but the statement would actually be enhanced by such compression since it will no longer exemplify the wrong that the policy is supposed to correct. Here compression can streamline the phrase and minimize the em barassment while improving the English style. Compression in general is intended to provide efficient representations of data while preserving the essential information contained in the data. This book is devoted to the theory and practice of signal compression, i. e. , data compression applied to signals such as speech, audio, images, and video signals (excluding other data types such as financial data or general purpose computer data). The emphasis is on the conversion of analog waveforms into efficient digital representations and on the compression of digital information into the fewest possible bits. Both operations should yield the highest possible reconstruction fidelity subject to constraints on the bit rate and implementation complexity.

Joint source-channel coding using tree-strctured vector quantization for remote sensing images

Joint source-channel coding using tree-strctured vector quantization for remote sensing images PDF Author:
Publisher:
ISBN:
Category :
Languages : pt-BR
Pages :

Book Description
Este trabalho estuda o problema de compressão de imagens de sensoriamento remoto segundo a ótica da codificação conjunta fonte-canal. É analisado o desempenho de métodos baseados em quantização vetorial segundo o algoritmo LBG, principalmente o COVQ (Channel Optimized Vector Quantizer) bem como a quantização vetorial estruturada em árvore. Dentro desse contexto, são propostos 2 novos métodos para a resolução do problema: (1)Uma quantização vetorial estruturada em árvores que leva em conta a transmissão através de canais ruidosos, solução denominada COTSVQ (Channel-Design Tree Strutured Vecotr Quantizer), bem como (2) uma classe de métodos que se utiliza de códigos corretores de erro sobre a estrutura progressiva do TSVQ, de forma a proteger os dados de forma ativa durante a transmissão. Os dois métodos propostos podem ser combinados no mesmo compressor, de forma a originar uma classe ampla de compressores adaptados à transmissão por canais com ruído. São apresentados resultados que comparam os desempenhos dos métodos propostos com aqueles já existentes para uma análise de desempenho, na situação de transmissão via satélite de imagens captadas e comprimidas para uma taxa de 1,5bpp. Os resultados mostram que os métodos propostos são muito menos complexos que os já existentes, porém conseguindo atingir uma qualidade de imagem equivalente, ou, em alguns casos, superior.

Image Wavelet Coding Systems

Image Wavelet Coding Systems PDF Author: William A. Pearlman
Publisher: Now Publishers Inc
ISBN: 1601981805
Category :
Languages : en
Pages : 76

Book Description
Describes various wavelet image coding systems that use set partitioning primarily, such as SBHP (Subband Block Hierarchical Partitioning), SPIHT, and EZBC (Embedded Zero-Block Coder).

Embedded Image Coding Algorithm Using Wavelet and Vector Quantization

Embedded Image Coding Algorithm Using Wavelet and Vector Quantization PDF Author:
Publisher:
ISBN:
Category :
Languages : en
Pages :

Book Description
This thesis presents an evaluation of a new embedded image compression algorithm which is based on the wavelet and the vector quantization techniques. The explanation of wavelet subband coding and vector quantization that can be served in the embedded image compression is provided. The combination of the quadtree structure of wavelet decomposition with the tree-structure vector quantization to from our new image coding algorithm is also presented. Computer simulation of this algorithm is implemented and experiments on eight most commonly used images including Lena, Barbara and Goldhill images under four different compression rates are obtained. Visual evaluations of the resulting compressed images are satisfying with PSNR values varying from 23.2302 at 0.125 bit rate of Fresco image to 41.0793 at 1.0 bit rate of Lena image. Comparisons with other algorithms having the best PSNR results are also given with favorable PSNR values which prove that the new algorithm is reasonably competitive.

Vector Quantization for Image Coding

Vector Quantization for Image Coding PDF Author: Wenjun Zeng
Publisher:
ISBN:
Category :
Languages : en
Pages : 252

Book Description


Vector Quantization in Digital Image Coding

Vector Quantization in Digital Image Coding PDF Author: Theodore Wang
Publisher:
ISBN:
Category : Geometric quantization
Languages : en
Pages : 258

Book Description


Low Rate Image Coding Using Vector Quantization

Low Rate Image Coding Using Vector Quantization PDF Author: Anamitra Makur
Publisher:
ISBN:
Category : Electronic dissertations
Languages : en
Pages : 226

Book Description