Complex Valued Nonlinear Adaptive Filters: Noncircularity, Widely Linear and Neural Models Book + PRICE WATCH * Amazon pricing is not included in price watch

Complex Valued Nonlinear Adaptive Filters: Noncircularity, Widely Linear and Neural Models Book

The filtering of real world signals requires an adaptive mode of operation to deal with the statistically nonstationary nature of the data. Feedback and nonlinearity...Read More

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  • Product Description

    This book was written in response to the growing demand for a text that provides a unified treatment of linear and nonlinear complex valued adaptive filters, and methods for the processing of general complex signals (circular and noncircular). It brings together adaptive filtering algorithms for feedforward (transversal) and feedback architectures and the recent developments in the statistics of complex variable, under the powerful frameworks of CR (Wirtinger) calculus and augmented complex statistics. This offers a number of theoretical performance gains, which is illustrated on both stochastic gradient algorithms, such as the augmented complex least mean square (ACLMS), and those based on Kalman filters. This work is supported by a number of simulations using synthetic and real world data, including the noncircular and intermittent radar and wind signals.

  • 0470066350
  • 9780470066355
  • Danilo Mandic, Vanessa (Su Lee) Goh
  • 17 April 2009
  • Wiley-Blackwell
  • Hardcover (Book)
  • 344
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