Machine Learning Applications in Electromagnetics and Antenna Array Processing

Manel Martínez-Ramón, Arjun Gupta, et al.

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This practical resource provides an overview of machine learning (ML) approaches as applied to electromagnetics and antenna array processing. Detailed coverage of the main trends in ML, including uniform and random array processing (beamforming and detection of angle of arrival), antenna optimization, wave propagation, remote sensing, radar, and other aspects of electromagnetic design are explored. An introduction to machine learning principles and the most common machine learning architectures and algorithms used today in electromagnetics and other applications is presented, including basic neural networks, gaussian processes, support vector machines, kernel methods, deep learning, convolutional neural networks, and generative adversarial networks. Applications in electromagnetics and antenna array processing that are solved using machine learning are discussed, including antennas, remote sensing, and target classification.

Subjek

Machine Learning
ANTENNAS,

Katalog

Machine Learning Applications in Electromagnetics and Antenna Array Processing
9781630817763
349p.: pdf file.; 33 MB
English

Sirkulasi

Rp. 0
Rp. 0
Tidak

Pengarang

Manel Martínez-Ramón, Arjun Gupta, et al.
Perorangan
 
 

Penerbit

Artech
New York
2021

Koleksi

Kompetensi

 

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