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Intelligent Feature Selection for Machine Learning Using the Dynamic Wavelet Fingerprint (Hardcover, 1st ed. 2020): Mark K... Intelligent Feature Selection for Machine Learning Using the Dynamic Wavelet Fingerprint (Hardcover, 1st ed. 2020)
Mark K Hinders
R4,559 Discovery Miles 45 590 Ships in 12 - 17 working days

This book discusses various applications of machine learning using a new approach, the dynamic wavelet fingerprint technique, to identify features for machine learning and pattern classification in time-domain signals. Whether for medical imaging or structural health monitoring, it develops analysis techniques and measurement technologies for the quantitative characterization of materials, tissues and structures by non-invasive means. Intelligent Feature Selection for Machine Learning using the Dynamic Wavelet Fingerprint begins by providing background information on machine learning and the wavelet fingerprint technique. It then progresses through six technical chapters, applying the methods discussed to particular real-world problems. Theses chapters are presented in such a way that they can be read on their own, depending on the reader's area of interest, or read together to provide a comprehensive overview of the topic. Given its scope, the book will be of interest to practitioners, engineers and researchers seeking to leverage the latest advances in machine learning in order to develop solutions to practical problems in structural health monitoring, medical imaging, autonomous vehicles, wireless technology, and historical conservation.

Intelligent Feature Selection for Machine Learning Using the Dynamic Wavelet Fingerprint (Paperback, 1st ed. 2020): Mark K... Intelligent Feature Selection for Machine Learning Using the Dynamic Wavelet Fingerprint (Paperback, 1st ed. 2020)
Mark K Hinders
R4,313 Discovery Miles 43 130 Out of stock

This book discusses various applications of machine learning using a new approach, the dynamic wavelet fingerprint technique, to identify features for machine learning and pattern classification in time-domain signals. Whether for medical imaging or structural health monitoring, it develops analysis techniques and measurement technologies for the quantitative characterization of materials, tissues and structures by non-invasive means. Intelligent Feature Selection for Machine Learning using the Dynamic Wavelet Fingerprint begins by providing background information on machine learning and the wavelet fingerprint technique. It then progresses through six technical chapters, applying the methods discussed to particular real-world problems. Theses chapters are presented in such a way that they can be read on their own, depending on the reader's area of interest, or read together to provide a comprehensive overview of the topic. Given its scope, the book will be of interest to practitioners, engineers and researchers seeking to leverage the latest advances in machine learning in order to develop solutions to practical problems in structural health monitoring, medical imaging, autonomous vehicles, wireless technology, and historical conservation.

Mobile Robot Navigation with Intelligent Infrared Image Interpretation (Paperback, 2009 ed.): William L. Fehlman, Mark K Hinders Mobile Robot Navigation with Intelligent Infrared Image Interpretation (Paperback, 2009 ed.)
William L. Fehlman, Mark K Hinders
R3,795 Discovery Miles 37 950 Out of stock

Mobile robots require the ability to make decisions such as "go through the hedges" or "go around the brick wall." Mobile Robot Navigation with Intelligent Infrared Image Interpretation describes in detail an alternative to GPS navigation: a physics-based adaptive Bayesian pattern classification model that uses a passive thermal infrared imaging system to automatically characterize non-heat generating objects in unstructured outdoor environments for mobile robots. The resulting classification model complements an autonomous robot's situational awareness by providing the ability to classify smaller structures commonly found in the immediate operational environment.

Mobile Robot Navigation with Intelligent Infrared Image Interpretation (Hardcover, 2009 Ed.): William L. Fehlman, Mark K Hinders Mobile Robot Navigation with Intelligent Infrared Image Interpretation (Hardcover, 2009 Ed.)
William L. Fehlman, Mark K Hinders
R4,557 Discovery Miles 45 570 Ships in 12 - 17 working days

Mobile robots require the ability to make decisions such as "go through the hedges" or "go around the brick wall." Mobile Robot Navigation with Intelligent Infrared Image Interpretation describes in detail an alternative to GPS navigation: a physics-based adaptive Bayesian pattern classification model that uses a passive thermal infrared imaging system to automatically characterize non-heat generating objects in unstructured outdoor environments for mobile robots. The resulting classification model complements an autonomous robot s situational awareness by providing the ability to classify smaller structures commonly found in the immediate operational environment."

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