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612-822-4611
End-to-End Differentiable Architecture: Structuring Deep Reinforcement Learning for Robotics Control

End-to-End Differentiable Architecture: Structuring Deep Reinforcement Learning for Robotics Control

Paperback

Series: Mastering Machine Learning

Technology & Engineering

Currently unavailable to order

ISBN13: 9798346620174
Publisher: Independently Published
Published: Nov 13 2024
Pages: 228
Weight: 0.68
Height: 0.48 Width: 6.00 Depth: 9.00
Language: English

This comprehensive volume offers an in-depth exploration of end-to-end differentiable architectures in the context of deep reinforcement learning for robotics control. Serving as an essential resource for students, researchers, and practitioners in robotics and artificial intelligence, it systematically unpacks the complexities of designing and implementing sophisticated control policies for robotic systems.

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