Buy used Engineering Books online in India
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CMOS VLSI DESIGN by Neil Weste, David, Ayan
The extensively revised 3rd edition of CMOS VLSI Design details modern techniques for the design of complex and high performance CMOS Systems-on-Chip. The authors draw upon extensive industry and classroom experience to explain modern practices of chip design. The introductory chapter covers transistor operation, CMOS gate design, fabrication, and layout at a level accessible to anyone with an elementary knowledge of digital electornics. Later chapters beuild up an in-depth discussion of the design of complex, high performance, low power CMOS Systems-on-Chip.
Digital systems for engineering
Digital Systems: Principles and Applications (10th Edition) by Ronald J. Tocci PearsonDescription:Upgrade your understanding of digital electronics with this trusted textbook! Book Name: Digital Systems: Principles and Applications Edition: 10th Edition Authors: Ronald J. Tocci, Neal S. Widmer, Gregory L. Moss Publisher: Pearson Condition: Gently used no missing pages, perfectly readable and intact binding. Cover: PaperbackPerfect for engineering students and anyone studying electronics, embedded systems, or digital logic design. This book explains complex topics in a simple and practical manner, with numerous examples and illustrations. Ideal for:B.Tech & Diploma ECE/EEE/CSE studentsCompetitive examsProject & viva preparation
Introduction to statistical machine learning
Machine learning allows computers to learn and discern patterns without actually being programmed. When Statistical techniques and machine learning are combined together they are a powerful tool for analysing various kinds of data in many computer science/engineering areas including, image processing, speech processing, natural language processing, robot control, as well as in fundamental sciences such as biology, medicine, astronomy, physics, and materials. Introduction to Statistical Machine Learning provides a general introduction to machine learning that covers a wide range of topics concisely and will help you bridge the gap between theory and practice. Part I discusses the fundamental concepts of statistics and probability that are used in describing machine learning algorithms. Part II and Part III explain the two major approaches of machine learning techniques; generative methods and discriminative methods. While Part III provides an in-depth look at advanced topics that play essential roles in making machine learning algorithms more useful in practice. The accompanying MATLAB/Octave programs provide you with the necessary practical skills needed to accomplish a wide range of data analysis tasks.Provides the necessary background material to understand machine learning such as statistics, probability, linear algebra, and calculus.Complete coverage of the generative approach to statistical pattern recognition and the discriminative approach to statistical machine learning.Includes MATLAB/Octave programs so that readers can test the algorithms numerically and acquire both mathematical and practical skills in a wide range of data analysis tasksDiscusses a wide range of applications in machine learning and statistics and provides examples drawn from image processing, speech processing, natural language processing, robot control, as well as biology, medicine, astronomy, physics, and materials.
