Automation in road distress detection, diagnosis and treatment

Xu Yang , Jianqi Zhang , Wenbo Liu , Jiayu Jing , Hao Zheng , Wei Xu
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Abstract

Road transportation plays a crucial role in society and daily life, as the functioning and durability of roads can significantly impact a nation's economic development. In the whole life cycle of the road, the emergence of disease is unavoidable, so it is necessary to adopt relevant technical means to deal with the disease. This study comprehensively reviews the advancements in computer vision, artificial intelligence, and mobile robotics in the road domain and examines their progress and applications in road detection, diagnosis, and treatment, especially asphalt roads. Specifically, it analyzes the research progress in detecting and diagnosing surface and internal road distress and related techniques and algorithms are compared. In addition, also introduces various road governance technologies, including automated repairs, intelligent construction, and path planning for crack sealing. Despite their proven effectiveness in detecting road distress, analyzing diagnoses, and planning maintenance, these technologies still confront challenges in data collection, parameter optimization, model portability, system accuracy, robustness, and real-time performance. Consequently, the integration of multidisciplinary technologies is imperative to enable the development of an integrated approach that includes road detection, diagnosis, and treatment. This paper addresses the challenges of precise defect detection, condition assessment, and unmanned construction. At the same time, the efficiency of labor liberation and road maintenance is achieved, and the automation level of the road engineering industry is improved.

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道路故障检测、诊断和处理自动化
道路交通在社会和日常生活中起着至关重要的作用,因为道路的功能和耐久性会对一个国家的经济发展产生重大影响。在道路的整个生命周期中,病害的出现是不可避免的,因此有必要采用相关技术手段来处理病害。本研究全面回顾了计算机视觉、人工智能和移动机器人技术在道路领域的进展,并考察了其在道路检测、诊断和处理(尤其是沥青道路)方面的进展和应用。具体而言,它分析了检测和诊断表面和内部道路塌陷的研究进展,并对相关技术和算法进行了比较。此外,还介绍了各种道路治理技术,包括自动修复、智能施工和裂缝密封的路径规划。尽管这些技术在检测道路病害、分析诊断和规划维护方面的有效性已得到证实,但它们在数据收集、参数优化、模型可移植性、系统准确性、鲁棒性和实时性方面仍面临挑战。因此,必须整合多学科技术,才能开发出包括道路检测、诊断和处理在内的综合方法。本文探讨了精确缺陷检测、状况评估和无人施工所面临的挑战。同时,实现劳动力解放和道路养护的高效化,提高道路工程行业的自动化水平。
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