Machine Learning for Robotics: Learning Methods for Robot Motor Skills - Jan Peters - 書籍 - VDM Verlag Dr. Müller - 9783639021103 - 2008年5月20日
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Machine Learning for Robotics: Learning Methods for Robot Motor Skills

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発送予定日 年12月22日 - 2026年1月2日
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Autonomous robots have been a vision of robotics, artificial intelligence, and cognitive sciences. An important step towards this goal is to create robots that can learn to accomplish a multitude of different tasks triggered by environmental context and higher-level instruction. Early approaches to this goal during the heydays of artificial intelligence research in the late 1980s showed that handcrafted approaches do not suffice and that machine learning is needed. However, off the shelf learning techniques often do not scale into real-time or to the high-dimensional domains of manipulator and humanoid robotics. In this book, we investigate the foundations for a general approach to motor skill learning that employs domain-specific machine learning methods. A theoretically well-founded general approach to representing the required control structures for task representation and execution is presented along with novel learning algorithms that can be applied in this setting. The resulting framework is shown to work well both in simulation and on real robots.

メディア 書籍     Paperback Book   (ソフトカバーで背表紙を接着した本)
リリース済み 2008年5月20日
ISBN13 9783639021103
出版社 VDM Verlag Dr. Müller
ページ数 128
寸法 150 × 220 × 10 mm   ·   181 g
言語 英語  

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