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  • Application of LLM in Vehicle Dynamics and Control Modeling, encompassing Human-Vehicle Interaction: A Thorough Reference for Researchers, Engineers, and Students

    Application of LLM in Vehicle Dynamics and Control Modeling, encompassing Human-Vehicle Interaction by Aykent, Baris;

    A Thorough Reference for Researchers, Engineers, and Students

    Series: Studies in Systems, Decision and Control;

      • GET 12% OFF

      • Publisher's listprice EUR 149.79
      • The price is estimated because at the time of ordering we do not know what conversion rates will apply to HUF / product currency when the book arrives. In case HUF is weaker, the price increases slightly, in case HUF is stronger, the price goes lower slightly.

        58 507 Ft (55 721 Ft + 5% VAT)
      • Discount 12% (cc. 7 021 Ft off)
      • Discounted price 51 486 Ft (49 034 Ft + 5% VAT)

    51 486 Ft

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    Not yet published.

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    Delivery time is estimated on our previous experiences. We give estimations only, because we order from outside Hungary, and the delivery time mainly depends on how quickly the publisher supplies the book. Faster or slower deliveries both happen, but we do our best to supply as quickly as possible.

    Product details:

    • Publisher Springer Nature Switzerland
    • Date of Publication 9 September 2026

    • ISBN 9783032283993
    • Binding Hardback
    • No. of pages209 pages
    • Size 235x155 mm
    • Language English
    • Illustrations II, 209 p. 31 illus., 30 illus. in color.
    • 700

    Categories

    Long description:

    "

    This book provides a forward-looking guide on how Large Language Models (LLMs) are transforming the field of vehicle dynamics and control. It offers a practical roadmap for engineers and researchers to leverage AI for designing, simulating, and optimizing vehicle systems. This book directly addresses the challenge of moving beyond traditional, time-consuming modeling techniques to embrace a more efficient, data-driven, and interactive approach.

    Key Topics and Their Relevance

    Foundation in Vehicle Dynamics: The book begins by establishing a strong foundation in vehicle dynamics, including the core principles of longitudinal, lateral, and vertical motion, as well as classic control systems like ABS and ESC. This is crucial for understanding the traditional context before exploring how LLMs can augment these processes.

    LLMs in the Automotive Workflow: The readers will learn how to integrate LLMs into every stage of the development cycle, from data preprocessing and analysis to generating simulation code and dynamic scenarios. This is important because it shows how LLMs act as a powerful co-pilot, automating repetitive tasks and accelerating innovation.

    Human–Vehicle Interaction (HVI): A dedicated section explores the cutting-edge use of LLMs to interpret driver state and intentions through technologies like eye and head tracking. This is highly relevant as it demonstrates how AI can lead to safer, more personalized, and intuitive driving experiences.

    Real-World Implementation with MLOps: The book tackles the practicalities of deploying these advanced models on a vehicle's embedded systems. It covers critical topics such as model compression, edge computing, and MLOps workflows using Docker.

    This book is for a target audience of professionals and students in automotive engineering, control systems, and data science who want to understand and implement the latest AI technologies to shape the future of smart vehicles.

    "

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    Table of Contents:

    "

    Introduction to AI in Automotive Systems.- Machine Learning Foundations.- Vehicle Dynamics Fundamentals.- AI-Enhanced Vehicle Safety Systems.- Deep Learning for Vehicle State Estimation.

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