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Signal Processing and Machine Learning Theory (Paperback): Paulo S.R. Diniz Signal Processing and Machine Learning Theory (Paperback)
Paulo S.R. Diniz
R3,489 Discovery Miles 34 890 Ships in 12 - 17 working days

Signal Processing and Machine Learning Theory, authored by world-leading experts, reviews the principles, methods and techniques of essential and advanced signal processing theory. These theories and tools are the driving engines of many current and emerging research topics and technologies, such as machine learning, autonomous vehicles, the internet of things, future wireless communications, medical imaging, etc.

Adaptive Filtering - Algorithms and Practical Implementation (Paperback, Softcover reprint of the original 1st ed. 1997): Paulo... Adaptive Filtering - Algorithms and Practical Implementation (Paperback, Softcover reprint of the original 1st ed. 1997)
Paulo S.R. Diniz
R3,011 Discovery Miles 30 110 Ships in 10 - 15 working days

The field of Digital Signal Processing has developed so fast in the last two decades that it can be found in the graduate and undergraduate programs of most universities. This development is related to the growing available techno logies for implementing digital signal processing algorithms. The tremendous growth of development in the digital signal processing area has turned some of its specialized areas into fields themselves. If accurate information of the signals to be processed is available, the designer can easily choose the most appropriate algorithm to process the signal. When dealing with signals whose statistical properties are unknown, fixed algorithms do not process these signals efficiently. The solution is to use an adaptive filter that automatically changes its characteristics by optimizing the internal parameters. The adaptive filtering algorithms are essential in many statistical signal processing applications. Although the field of adaptive signal processing has been subject of research for over three decades, it was in the eighties that a major growth occurred in research and applications. Two main reasons can be credited to this growth, the availability of implementation tools and the appearance of early textbooks exposing the subject in an organized form. Presently, there is still a lot of activities going on in the area of adaptive filtering. In spite of that, the theor etical development in the linear-adaptive-filtering area reached a maturity that justifies a text treating the various methods in a unified way, emphasizing the algorithms that work well in practical implementation.

Adaptive Filtering - Algorithms and Practical Implementation (Hardcover, 1997 ed.): Paulo S.R. Diniz Adaptive Filtering - Algorithms and Practical Implementation (Hardcover, 1997 ed.)
Paulo S.R. Diniz
R3,247 Discovery Miles 32 470 Ships in 10 - 15 working days

The field of Digital Signal Processing has developed so fast in the last two decades that it can be found in the graduate and undergraduate programs of most universities. This development is related to the growing available techno logies for implementing digital signal processing algorithms. The tremendous growth of development in the digital signal processing area has turned some of its specialized areas into fields themselves. If accurate information of the signals to be processed is available, the designer can easily choose the most appropriate algorithm to process the signal. When dealing with signals whose statistical properties are unknown, fixed algorithms do not process these signals efficiently. The solution is to use an adaptive filter that automatically changes its characteristics by optimizing the internal parameters. The adaptive filtering algorithms are essential in many statistical signal processing applications. Although the field of adaptive signal processing has been subject of research for over three decades, it was in the eighties that a major growth occurred in research and applications. Two main reasons can be credited to this growth, the availability of implementation tools and the appearance of early textbooks exposing the subject in an organized form. Presently, there is still a lot of activities going on in the area of adaptive filtering. In spite of that, the theor etical development in the linear-adaptive-filtering area reached a maturity that justifies a text treating the various methods in a unified way, emphasizing the algorithms that work well in practical implementation."

Adaptive Filtering - Algorithms and Practical Implementation (Paperback, 5th ed. 2020): Paulo S.R. Diniz Adaptive Filtering - Algorithms and Practical Implementation (Paperback, 5th ed. 2020)
Paulo S.R. Diniz
R2,619 Discovery Miles 26 190 Ships in 10 - 15 working days

In the fifth edition of this textbook, author Paulo S.R. Diniz presents updated text on the basic concepts of adaptive signal processing and adaptive filtering. He first introduces the main classes of adaptive filtering algorithms in a unified framework, using clear notations that facilitate actual implementation. Algorithms are described in tables, which are detailed enough to allow the reader to verify the covered concepts. Examples address up-to-date problems drawn from actual applications. Several chapters are expanded and a new chapter 'Kalman Filtering' is included. The book provides a concise background on adaptive filtering, including the family of LMS, affine projection, RLS, set-membership algorithms and Kalman filters, as well as nonlinear, sub-band, blind, IIR adaptive filtering, and more. Problems are included at the end of chapters. A MATLAB package is provided so the reader can solve new problems and test algorithms. The book also offers easy access to working algorithms for practicing engineers.

Adaptive Filtering - Algorithms and Practical Implementation (Hardcover, 4th ed. 2013): Paulo S.R. Diniz Adaptive Filtering - Algorithms and Practical Implementation (Hardcover, 4th ed. 2013)
Paulo S.R. Diniz
R3,608 Discovery Miles 36 080 Ships in 10 - 15 working days

In the fourth edition of "Adaptive Filtering: Algorithms and Practical Implementation," author Paulo S.R. Dinizpresents the basic concepts of adaptive signal processing and adaptive filtering in a concise and straightforward manner. The main classes of adaptive filtering algorithms are presented in a unified framework, using clear notations that facilitate actual implementation.
The main algorithms are described in tables, which are detailed enough to allow the reader to verify the covered concepts. Many examples address problems drawn from actual applications. New material to this edition includes: Analytical and simulation examples in Chapters 4, 5, 6 and 10
Appendix E, which summarizes the analysis of set-membership algorithm
Updated problems and references

Providinga concise background on adaptive filtering, this book covers the family of LMS, affine projection, RLS and data-selective set-membership algorithms as well as nonlinear, sub-band, blind, IIR adaptive filtering, and more.

Several problems are included at the end of chapters, and some of these problems address applications. A user-friendly MATLAB package is provided where the reader can easily solve new problems and test algorithms in a quick manner. Additionally, the book provides easy access to working algorithms for practicing engineers. "

Online Component Analysis, Architectures and Applications (Paperback): Joao B. O. Souza Filho, Lan-Da Van, Tzyy-Ping Jung,... Online Component Analysis, Architectures and Applications (Paperback)
Joao B. O. Souza Filho, Lan-Da Van, Tzyy-Ping Jung, Paulo S.R. Diniz
R2,368 Discovery Miles 23 680 Ships in 10 - 15 working days

This monograph deals with principal component analysis (PCA), kernel component analysis (KPCA), and independent component analysis (ICA), highlighting their applications to streaming-data implementations. The basic concepts related to PCA, KPCA, and ICA are widely available in the literature; however, very few texts deal with their practical implementation in computationally limited resources. This monograph discusses the state-of-the-art online PCA and KPCA techniques in a unified and principled manner, presenting solutions that achieve a higher convergence speed and accuracy in many applications, particularly image processing. Besides, this work also explains how to remove various artifacts from data records based on blind source separation by independent component analysis implemented with ICA, splitting feature identification from feature separation. Herein, three FastICA online hardware architectures and implementation for biomedical signal processing are addressed. The main features are summarized as follows: 1) energy-efficient FastICA using the proposed early determination scheme; 2) cost-effective variable-channel FastICA using the Gram-Schmidt-based whitening algorithm; and 3) moving-window-based online FastICA algorithm with limited memory. The post-layout simulation results with artificial and EEG data validate the design concepts.

Online Learning and Adaptive Filters (Hardcover): Paulo S.R. Diniz, Marcello L. R. de Campos, Wallace A. Martins, Markus V.S.... Online Learning and Adaptive Filters (Hardcover)
Paulo S.R. Diniz, Marcello L. R. de Campos, Wallace A. Martins, Markus V.S. Lima, Jose A. Apolinario, Jr
R2,724 Discovery Miles 27 240 Ships in 10 - 15 working days

Learn to solve the unprecedented challenges facing Online Learning and Adaptive Signal Processing in this concise, intuitive text. The ever-increasing amount of data generated every day requires new strategies to tackle issues such as: combining data from a large number of sensors; improving spectral usage, utilizing multiple-antennas with adaptive capabilities; or learning from signals placed on graphs, generating unstructured data. Solutions to all of these and more are described in a condensed and unified way, enabling you to expose valuable information from data and signals in a fast and economical way. The up-to-date techniques explained here can be implemented in simple electronic hardware, or as part of multi-purpose systems. Also featuring alternative explanations for online learning, including newly developed methods and data selection, and several easily implemented algorithms, this one-of-a-kind book is an ideal resource for graduate students, researchers, and professionals in online learning and adaptive filtering.

Digital Signal Processing - System Analysis and Design (Hardcover, 2nd Revised edition): Paulo S.R. Diniz, Eduardo A. B. Da... Digital Signal Processing - System Analysis and Design (Hardcover, 2nd Revised edition)
Paulo S.R. Diniz, Eduardo A. B. Da Silva, Sergio L Netto
R2,646 Discovery Miles 26 460 Ships in 10 - 15 working days

This new, fully-revised edition covers all the major topics of digital signal processing (DSP) design and analysis in a single, all-inclusive volume, interweaving theory with real-world examples and design trade-offs. Building on the success of the original, this edition includes new material on random signal processing, a new chapter on spectral estimation, greatly expanded coverage of filter banks and wavelets, and new material on the solution of difference equations. Additional steps in mathematical derivations make them easier to follow, and an important new feature is the do-it-yourself section at the end of each chapter, where readers get hands-on experience of solving practical signal processing problems in a range of MATLAB experiments. With 120 worked examples, 20 case studies, and almost 400 homework exercises, the book is essential reading for anyone taking DSP courses. Its unique blend of theory and real-world practical examples also makes it an ideal reference for practitioners.

Adaptive Filtering - Algorithms and Practical Implementation (Paperback, 4th ed. 2013): Paulo S.R. Diniz Adaptive Filtering - Algorithms and Practical Implementation (Paperback, 4th ed. 2013)
Paulo S.R. Diniz
R2,695 R2,554 Discovery Miles 25 540 Save R141 (5%) Out of stock

In the fourth edition of Adaptive Filtering: Algorithms and Practical Implementation, author Paulo S.R. Diniz presents the basic concepts of adaptive signal processing and adaptive filtering in a concise and straightforward manner. The main classes of adaptive filtering algorithms are presented in a unified framework, using clear notations that facilitate actual implementation. The main algorithms are described in tables, which are detailed enough to allow the reader to verify the covered concepts. Many examples address problems drawn from actual applications. New material to this edition includes: Analytical and simulation examples in Chapters 4, 5, 6 and 10 Appendix E, which summarizes the analysis of set-membership algorithm Updated problems and references Providing a concise background on adaptive filtering, this book covers the family of LMS, affine projection, RLS and data-selective set-membership algorithms as well as nonlinear, sub-band, blind, IIR adaptive filtering, and more. Several problems are included at the end of chapters, and some of these problems address applications. A user-friendly MATLAB package is provided where the reader can easily solve new problems and test algorithms in a quick manner. Additionally, the book provides easy access to working algorithms for practicing engineers.

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