Adaptive Radar Detection: Model-Based, Data-Driven and Hybrid Approaches

Adaptive Radar Detection: Model-Based, Data-Driven and Hybrid Approaches

  • Angelo Coluccia
Publisher:Artech HouseISBN 13: 9781630819019ISBN 10: 1630819018

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Know about the book -

Adaptive Radar Detection: Model-Based, Data-Driven and Hybrid Approaches is written by Angelo Coluccia and published by Artech House. It's available with International Standard Book Number or ISBN identification 1630819018 (ISBN 10) and 9781630819019 (ISBN 13).

This book shows you how to adopt data-driven techniques for the problem of radar detection, both per se and in combination with model-based approaches. In particular, the focus is on space-time adaptive target detection against a background of interference consisting of clutter, possible jammers, and noise. It is a handy, concise reference for many classic (model-based) adaptive radar detection schemes as well as the most popular machine learning techniques (including deep neural networks) and helps you identify suitable data-driven approaches for radar detection and the main related issues. You’ll learn how data-driven tools relate to, and can be coupled or hybridized with, traditional adaptive detection statistics; understand fundamental concepts, schemes, and algorithms from statistical learning, classification, and neural networks domains. The book also walks you through how these concepts and schemes have been adapted for the problem of radar detection in the literature and provides you with a methodological guide for the design, illustrating different possible strategies. You’ll be equipped to develop a unified view, under which you can exploit the new possibilities of the data-driven approach even using simulated data. This book is an excellent resource for Radar professionals and industrial researchers, postgraduate students in electrical engineering and the academic community.