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Deep Learning for Autonomous Vehicle Control: Algorithms, State-of-the-Art, and Future Prospects, Kuutti Sampo, Fallah Saber, Bowden Richard


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Автор: Kuutti Sampo, Fallah Saber, Bowden Richard
Название:  Deep Learning for Autonomous Vehicle Control: Algorithms, State-of-the-Art, and Future Prospects
ISBN: 9781681736167
Издательство: Mare Nostrum (Eurospan)
Классификация:






ISBN-10: 1681736160
Обложка/Формат: Hardback
Страницы: 80
Вес: 0.36 кг.
Дата издания: 30.01.2020
Серия: Engineering
Язык: English
Размер: 23.50 x 19.05 x 0.36 cm
Читательская аудитория: Professional and scholarly
Ключевые слова: Artificial intelligence,Automatic control engineering,Automotive technology & trades, COMPUTERS / Intelligence (AI) & Semantics,TECHNOLOGY & ENGINEERING / Automation,TECHNOLOGY & ENGINEERING / Automotive
Подзаголовок: Algorithms, state-of-the-art, and future prospects
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Поставляется из: Англии
Описание: The CAFE system has changed the way teachers assess, teach, and track student information, and positively impacted the way students learn. This updated, second edition demonstrates that reading instruction is not about the setting, the basal, or the book level. Rather, effective reading instruction is based on what the student needs in the moment.


Deep Learning for Autonomous Vehicle Control: Algorithms, State-of-the-Art, and Future Prospects

Автор: Kuutti Sampo, Fallah Saber, Bowden Richard
Название: Deep Learning for Autonomous Vehicle Control: Algorithms, State-of-the-Art, and Future Prospects
ISBN: 1681736071 ISBN-13(EAN): 9781681736075
Издательство: Mare Nostrum (Eurospan)
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Цена: 6237.00 р.
Наличие на складе: Нет в наличии.

Описание: The next generation of autonomous vehicles will provide major improvements in traffic flow, fuel efficiency, and vehicle safety. Several challenges currently prevent the deployment of autonomous vehicles, one aspect of which is robust and adaptable vehicle control. Designing a controller for autonomous vehicles capable of providing adequate performance in all driving scenarios is challenging due to the highly complex environment and inability to test the system in the wide variety of scenarios which it may encounter after deployment. However, deep learning methods have shown great promise in not only providing excellent performance for complex and non-linear control problems, but also in generalizing previously learned rules to new scenarios. For these reasons, the use of deep neural networks for vehicle control has gained significant interest. In this book, we introduce relevant deep learning techniques, discuss recent algorithms applied to autonomous vehicle control, identify strengths and limitations of available methods, discuss research challenges in the field, and provide insights into the future trends in this rapidly evolving field.


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