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Amodu / Mahmood / Althumali

Markov Decision Processes and Reinforcement Learning for Timely UAV-IoT Data Collection Applications

Medium: Buch
ISBN: 978-3-031-97010-8
Verlag: Springer
Erscheinungstermin: 08.10.2025
Lieferfrist: bis zu 10 Tage

This book offers a structured exploration of how Markov Decision Processes (MDPs) and Deep Reinforcement Learning (DRL) can be used to model and optimize UAV-assisted Internet of Things (IoT) networks, with a focus on minimizing the Age of Information (AoI) during data collection. Adopting a tutorial-style approach, it bridges theoretical models and practical algorithms for real-time decision-making in tasks like UAV trajectory planning, sensor transmission scheduling, and energy-efficient data gathering. Applications span precision agriculture, environmental monitoring, smart cities, and emergency response, showcasing the adaptability of DRL in UAV-based IoT systems. Designed as a foundational reference, it is ideal for researchers and engineers aiming to deepen their understanding of adaptive UAV planning across diverse IoT applications.  


Produkteigenschaften


  • Artikelnummer: 9783031970108
  • Medium: Buch
  • ISBN: 978-3-031-97010-8
  • Verlag: Springer
  • Erscheinungstermin: 08.10.2025
  • Sprache(n): Englisch
  • Auflage: Erscheinungsjahr 2025
  • Serie: Studies in Computational Intelligence
  • Produktform: Gebunden, HC runder Rücken kaschiert
  • Gewicht: 405 g
  • Seiten: 142
  • Format (B x H x T): 160 x 241 x 15 mm
  • Ausgabetyp: Kein, Unbekannt
Autoren/Hrsg.

Autoren

Introduction to AoI in UAV-assisted Sensor and IoT Systems.- AoI aware UAV IoT Modeling using MDPs.- Reinforcement Learning and DRL for AoI aware UAV IoT.- Challenges and Future Considerations.