Distributed Intelligent Circuits and Systems

Baj, Balwinder, Gupta, Brij B., Singh, Shailendra

  • 出版商: World Scientific Pub
  • 出版日期: 2024-03-27
  • 售價: $6,210
  • 貴賓價: 9.5$5,900
  • 語言: 英文
  • 頁數: 452
  • 裝訂: Hardcover - also called cloth, retail trade, or trade
  • ISBN: 9811279527
  • ISBN-13: 9789811279522
  • 海外代購書籍(需單獨結帳)

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商品描述

The main objective of this book is to provide insights into recent advances in distributed intelligent circuits, systems and their applications. Distributed intelligence is the key enabler for innovations in machine-to-machine communications. The innovations are directed towards keeping existing algorithms as the base and developing new intelligent systems by employing smart technologies. Artificial intelligence (AI) and, more specifically, deep learning (DL) are receiving significant attention in assisting doctors in the detection of disease patterns without much human intervention. In agriculture, robots automate slow, repetitive and dull tasks, allowing farmers to focus more on improving overall production yields.The evolving trends point to the interface of artificial intelligence with machines being a factor in enhancing the decision-making capabilities of smart machines. This book provides relevant theoretical frameworks that include basic models, algorithms, circuit designs and the latest developments in experimental aspects in the field of distributed intelligence systems for industrial applications. The challenges encountered in the development of models for distributed intelligence systems for environmental monitoring are mitigated with artificial intelligence, machine learning and deep learning. This book identifies challenges and helps in applying solutions in the development of advanced intelligent systems for environmental monitoring.

商品描述(中文翻譯)

本書的主要目標是提供有關分散式智能電路、系統及其應用的最新進展的見解。分散式智能是機器對機器通信創新的關鍵推動力。這些創新旨在以現有算法為基礎,並通過採用智能技術來開發新的智能系統。人工智能(AI),更具體地說,深度學習(DL)在協助醫生檢測疾病模式方面受到廣泛關注,且幾乎不需要人類干預。在農業方面,機器人自動化了緩慢、重複和乏味的任務,使農民能夠更專注於提高整體生產產量。發展趨勢顯示,人工智能與機器的介面是增強智能機器決策能力的一個因素。本書提供相關的理論框架,包括基本模型、算法、電路設計以及在分散式智能系統工業應用領域的最新實驗進展。在環境監測的分散式智能系統模型開發中所遇到的挑戰,通過人工智能、機器學習和深度學習得以緩解。本書識別了挑戰並幫助在環境監測的先進智能系統開發中應用解決方案。