期刊全称 | Artificial Intelligence in Vision-Based Structural Health Monitoring | 影响因子2023 | Khalid M. Mosalam,Yuqing Gao | 视频video | http://file.papertrans.cn/163/162526/162526.mp4 | 发行地址 | Comprehensive review of the rapidly expanding field of vision-based SHM using artificial intelligence approaches.Includes comprehensive details about the procedure of conducting AI approaches.With exa | 学科分类 | Synthesis Lectures on Mechanical Engineering | 图书封面 |  | 影响因子 | .This book provides a comprehensive coverage of the state-of-the-art artificial intelligence (AI) technologies in vision-based structural health monitoring (SHM). In this data explosion epoch, AI-aided SHM and rapid damage assessment after natural hazards have become of great interest in civil and structural engineering, where using machine and deep learning in vision-based SHM brings new research direction. As researchers begin to apply these concepts to the structural engineering domain, especially in SHM, several critical scientific questions need to be addressed: (1) What can AI solve for the SHM problems? (2) What are the relevant AI technologies? (3) What is the effectiveness of the AI approaches in vision-based SHM? (4) How to improve the adaptability of the AI approaches for practical projects? (5) How to build a resilient AI-aided disaster prevention system making use of the vision-based SHM? .This book introduces and implements the state-of-the-art machine learning and deep learning technologies for vision-based SHM applications. Specifically, corresponding to the above-mentioned scientific questions, it consists of: (1) motivation, background & progress of AI-aided visio | Pindex | Book 2024 |
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