Digital Signal Processing

Digital Signal Processing
Author: Lizhe Tan,Jean Jiang
Publsiher: Academic Press
Total Pages: 896
Release: 2013-01-21
Genre: Technology & Engineering
ISBN: 9780124159822

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Digital Signal Processing, Second Edition enables electrical engineers and technicians in the fields of biomedical, computer, and electronics engineering to master the essential fundamentals of DSP principles and practice. Many instructive worked examples are used to illustrate the material, and the use of mathematics is minimized for easier grasp of concepts. As such, this title is also useful to undergraduates in electrical engineering, and as a reference for science students and practicing engineers. The book goes beyond DSP theory, to show implementation of algorithms in hardware and software. Additional topics covered include adaptive filtering with noise reduction and echo cancellations, speech compression, signal sampling, digital filter realizations, filter design, multimedia applications, over-sampling, etc. More advanced topics are also covered, such as adaptive filters, speech compression such as PCM, u-law, ADPCM, and multi-rate DSP and over-sampling ADC. New to this edition: MATLAB projects dealing with practical applications added throughout the book New chapter (chapter 13) covering sub-band coding and wavelet transforms, methods that have become popular in the DSP field New applications included in many chapters, including applications of DFT to seismic signals, electrocardiography data, and vibration signals All real-time C programs revised for the TMS320C6713 DSK Covers DSP principles with emphasis on communications and control applications Chapter objectives, worked examples, and end-of-chapter exercises aid the reader in grasping key concepts and solving related problems Website with MATLAB programs for simulation and C programs for real-time DSP

Noise and Vibration Analysis

Noise and Vibration Analysis
Author: Anders Brandt
Publsiher: John Wiley & Sons
Total Pages: 481
Release: 2011-03-29
Genre: Technology & Engineering
ISBN: 9780470978115

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Noise and Vibration Analysis is a complete and practical guide that combines both signal processing and modal analysis theory with their practical application in noise and vibration analysis. It provides an invaluable, integrated guide for practicing engineers as well as a suitable introduction for students new to the topic of noise and vibration. Taking a practical learning approach, Brandt includes exercises that allow the content to be developed in an academic course framework or as supplementary material for private and further study. Addresses the theory and application of signal analysis procedures as they are applied in modern instruments and software for noise and vibration analysis Features numerous line diagrams and illustrations Accompanied by a web site at www.wiley.com/go/brandt with numerous MATLAB tools and examples. Noise and Vibration Analysis provides an excellent resource for researchers and engineers from automotive, aerospace, mechanical, or electronics industries who work with experimental or analytical vibration analysis and/or acoustics. It will also appeal to graduate students enrolled in vibration analysis, experimental structural dynamics, or applied signal analysis courses.

Signal Processing Toolbox for Use with MATLAB

Signal Processing Toolbox for Use with MATLAB
Author: Thomas P. Krauss,Loren Shure,John Little
Publsiher: Unknown
Total Pages: 384
Release: 1994
Genre: Algebras, Linear
ISBN: CORNELL:31924096682228

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Conceptual Digital Signal Processing with MATLAB

Conceptual Digital Signal Processing with MATLAB
Author: Keonwook Kim
Publsiher: Springer Nature
Total Pages: 684
Release: 2021
Genre: Digital filters (Mathematics)
ISBN: 9789811525841

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This textbook provides an introduction to the study of digital signal processing, employing a top-to-bottom structure to motivate the reader, a graphical approach to the solution of the signal processing mathematics, and extensive use of MATLAB. In contrast to the conventional teaching approach, the book offers a top-down approach which first introduces students to digital filter design, provoking questions about the mathematical tools required. The following chapters provide answers to these questions, introducing signals in the discrete domain, Fourier analysis, filters in the time domain and the Z-transform. The author introduces the mathematics in a conceptual manner with figures to illustrate the physical meaning of the equations involved. Chapter six builds on these concepts and discusses advanced filter design, and chapter seven discusses matters of practical implementation. This book introduces the corresponding MATLAB functions and programs in every chapter with examples, and the final chapter introduces the actual real-time filter from MATLAB. Aimed primarily at undergraduate students in electrical and electronic engineering, this book enables the reader to implement a digital filter using MATLAB.

Digital Signal Processing Using MATLAB Wavelets

Digital Signal Processing Using MATLAB   Wavelets
Author: Michael Weeks
Publsiher: Jones & Bartlett Publishers
Total Pages: 513
Release: 2011
Genre: Computers
ISBN: 9780763784225

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Although Digital Signal Processing (DSP) has long been considered an electrical engineering topic, recent developments have also generated significant interest from the computer science community. DSP applications in the consumer market, such as bioinformatics, the MP3 audio format, and MPEG-based cable/satellite television have fueled a desire to understand this technology outside of hardware circles. Designed for upper division engineering and computer science students as well as practicing engineers and scientists, Digital Signal Processing Using MATLAB & Wavelets, Second Edition emphasizes the practical applications of signal processing. Over 100 MATLAB examples and wavelet techniques provide the latest applications of DSP, including image processing, games, filters, transforms, networking, parallel processing, and sound. This Second Edition also provides the mathematical processes and techniques needed to ensure an understanding of DSP theory. Designed to be incremental in difficulty, the book will benefit readers who are unfamiliar with complex mathematical topics or those limited in programming experience. Beginning with an introduction to MATLAB programming, it moves through filters, sinusoids, sampling, the Fourier transform, the z-transform and other key topics. Two chapters are dedicated to the discussion of wavelets and their applications. A CD-ROM (platform independent) accompanies the book and contains source code, projects for each chapter, and the figures from the book.

Digital Signal Processing Using MATLAB

Digital Signal Processing Using MATLAB
Author: Vinay K. Ingle,John G. Proakis
Publsiher: Unknown
Total Pages: 555
Release: 2012
Genre: MATLAB.
ISBN: 9814410888

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Signal Processing for Neuroscientists

Signal Processing for Neuroscientists
Author: Wim van Drongelen
Publsiher: Elsevier
Total Pages: 319
Release: 2006-12-18
Genre: Science
ISBN: 9780080467757

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Signal Processing for Neuroscientists introduces analysis techniques primarily aimed at neuroscientists and biomedical engineering students with a reasonable but modest background in mathematics, physics, and computer programming. The focus of this text is on what can be considered the ‘golden trio’ in the signal processing field: averaging, Fourier analysis, and filtering. Techniques such as convolution, correlation, coherence, and wavelet analysis are considered in the context of time and frequency domain analysis. The whole spectrum of signal analysis is covered, ranging from data acquisition to data processing; and from the mathematical background of the analysis to the practical application of processing algorithms. Overall, the approach to the mathematics is informal with a focus on basic understanding of the methods and their interrelationships rather than detailed proofs or derivations. One of the principle goals is to provide the reader with the background required to understand the principles of commercially available analyses software, and to allow him/her to construct his/her own analysis tools in an environment such as MATLAB®. Multiple color illustrations are integrated in the text Includes an introduction to biomedical signals, noise characteristics, and recording techniques Basics and background for more advanced topics can be found in extensive notes and appendices A Companion Website hosts the MATLAB scripts and several data files: http://www.elsevierdirect.com/companion.jsp?ISBN=9780123708670

Signal Processing With Matlab

Signal Processing With Matlab
Author: Godfrey H.
Publsiher: Createspace Independent Publishing Platform
Total Pages: 350
Release: 2016-10-10
Genre: Electronic Book
ISBN: 1539443787

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MATLAB Signal Processing Toolbox provides industry-standard algorithms for analog and digital signal processing (DSP). You can use the toolbox to visualize signals in time and frequency domains, compute FFTs for spectral analysis, design FIR and IIR filters, and implement convolution, modulation, resampling, and other signal processing techniques. Algorithms in the toolboxcan be used as a basis for developing custom algorithms for audio and speech processing, instrumentation, and baseband wireless communications.The more important topics are the following:Filter Implementation and AnalysisThe filter FunctionOther Functions for FilteringImpulse ResponseFrequency ResponseZero-Pole AnalysisLinear System ModelsDiscrete-Time System ModelsContinuous-Time System ModelsLinear System TransformationsDiscrete Fourier TransformFilter Design and ImplementationFilter Requirements and SpecificationIIR Filter DesignFIR Filter DesignSpecial Topics in IIR Filter DesignClassic IIR Filter DesignAnalog Prototype DesignFrequency TransformationFilter DiscretizationFiltering Data With Signal Processing ToolboxProcess Flow Diagram and Filter DesignDesign a Filter Using FilterbuilderFDATool: A Filter Design and Analysis GUIStatistical Signal ProcessingCorrelation and CovarianceSpectral AnalysisWindowsParametric ModelingResamplingCepstrum AnalysisFFT-Based Time-Frequency AnalysisMedian FilteringCommunications Applications