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Advanced Signal Processing: A Concise Guide

About Advanced Signal Processing: A Concise Guide

Publisher's Note: Products purchased from Third Party sellers are not guaranteed by the publisher for quality, authenticity, or access to any online entitlements included with the product.A no-nonsense guide to the fundamentals and applications of statistical signal processingIdeal for upper-undergraduate and graduate courses, this engineering textbook offers key signal analysis principles and uses and explains the necessary underlying mathematics. Coverage includes representation and approximation theory in vector spaces, the orthogonality principle, the least squares problem, minimum mean square estimation, and the Wiener-Hopf equation.Signal Analysis: A Concise Guide clearly explains linear systems and signals and the concepts behind them. The book covers matrix factorizations, optimal linear filter theory, classical and modern spectral estimation, adaptive filters, and processing of spatial arrays. You will also explore linear optima filters, eigrn decomposition methods, the singular value decomposition, adaptive linear filters, noise cancellation, and spectral estimation. . Includes exercises for computer implementation using MATLAB . Presents the core material in a succinct format . Written by a team of renowned academics with multiple teaching awards

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  • Language:
  • English
  • ISBN:
  • 9781260458930
  • Binding:
  • Paperback
  • Pages:
  • 352
  • Published:
  • September 28, 2020
  • Dimensions:
  • 242x193x24 mm.
  • Weight:
  • 708 g.
  In stock
Delivery: 3-5 business days
Expected delivery: August 20, 2025

Description of Advanced Signal Processing: A Concise Guide

Publisher's Note: Products purchased from Third Party sellers are not guaranteed by the publisher for quality, authenticity, or access to any online entitlements included with the product.A no-nonsense guide to the fundamentals and applications of statistical signal processingIdeal for upper-undergraduate and graduate courses, this engineering textbook offers key signal analysis principles and uses and explains the necessary underlying mathematics. Coverage includes representation and approximation theory in vector spaces, the orthogonality principle, the least squares problem, minimum mean square estimation, and the Wiener-Hopf equation.Signal Analysis: A Concise Guide clearly explains linear systems and signals and the concepts behind them. The book covers matrix factorizations, optimal linear filter theory, classical and modern spectral estimation, adaptive filters, and processing of spatial arrays. You will also explore linear optima filters, eigrn decomposition methods, the singular value decomposition, adaptive linear filters, noise cancellation, and spectral estimation. . Includes exercises for computer implementation using MATLAB
. Presents the core material in a succinct format
. Written by a team of renowned academics with multiple teaching awards

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