Automated Vision-Based Sensing for Site Operations Analysis
Automated Vision-Based Sensing for Site Operations Analysis
批准号:
1030472
负责人:
Patricio Vela
金额:
$30.0万
依托单位国家:
美国
项目类别:
Standard Grant
财政年份:
2010
资助国家:
美国
项目状态:
已结题
起止时间:
2010-09-01 至 2015-08-31
中文摘要
本研究旨在证明,它是可以可靠地和自动地跟踪工作进度和多个资源与图像(视频和/或延时),以再现与施工工地相关的日常工作流程活动。 测量涉及工人、大型机器和材料的施工现场活动的进度的任务通常是主观且密集的人工过程,其易于出错,并且在真实的操作中经常过时。证明主动视觉系统可以有效地分析和评估工作现场进度,将有助于项目经理减少监控和解释项目状态和性能所花费的时间,从而提高对成本和进度控制的关注。通过使项目管理人员和工作人员更加了解他们的项目和工作环境的性能状态,可以预见到行业的潜在节省。轨道数据将被解释并用于提供对工地的时空演变的理解,以自动生成关于工地操作的知识。在以信息为基础的框架中,大量的努力都花在获取和解释信息上。在知识基础架构下,将努力分配到基于解释信息的决策上,如果成功的话,本研究将使施工作业的审查和管理从基于信息转向基于知识,从而节省人力资源并提高决策效率。 这项研究的吸引力超出了建筑。包含或需要基于视觉的传感、各种资源(人、小型到重型机械、货物等)的研究领域,以及处理视觉数据以了解操作和活动是额外的调查领域。例如机场地面作业和采矿作业。预计还将在机器学习和计算机视觉领域做出贡献。拟议的研究将通过自动监控和跟踪网站资源来影响网站运营的研究。基于视频的监控和处理算法提供了一种非侵入性的、简单的和快速的机制,用于生成一系列操作信息和知识,当这些信息和知识可用时,将能够对当前不可能的施工操作进行查询。从长远来看,这项研究将作为一个有价值的援助,以项目管理,使更严格的控制和更高的效率。通过使项目管理人员和工作人员更加了解他们的项目和工作环境的绩效状况,可以预见建筑和其他行业的潜在节省。这项研究还将积极包括和推动下一代工程师(土木,电气和计算工程)和建筑劳动力的教育。这项研究有一个专门的推广计划,让对先进的硬件和软件技术感兴趣的高中学生和行业专业人士广泛参与这项研究
英文摘要
This research seeks to prove that it is possible to reliably and automatically track work progress and multiple resources with images (video and/or time-lapse) in order to reproduce the daily workflow activities associated to a construction worksite. The task of measuring the progress of construction site activities that involve workers, large machines, and materials, has often been a subjective and intensive manual process that is prone to error and, in real operations, frequently out-of-date. Demonstrating that an active vision system can effectively analyze and assess work-site progress will assist project managers by reducing the time spent monitoring and interpreting project status and performance, thus enabling increased attention to control of cost and schedule. By making project management and workforce more aware of the performance status of their project and their work environment, potential savings to the industry are envisioned. The track data will be interpreted and used to provide understanding of the spatio-temporal evolution of a worksite for automatically generating knowledge about worksite operations. In an information-based framework, much effort is spent acquiring and interpreting information. In a knowledge-based framework, efforts are allocated to making decisions based on the interpreted information.If successful, this research will transform the review and management of construction operations from being information-based to knowledge-based, thus saving human resources and improving decision effectiveness. This research has broader appeal beyond construction. Research domains incorporating or requiring vision-based sensing, diverse resources (people, small to heavy machinery, goods, etc.), and processing of the visual data for awareness of operations and activities are additional investigation domains. Examples include airport ground operations and mining operations. Contributions are also expected in the fields of machine learning and computer vision. The proposed research will impact research into site operations by enabling the automated monitoring and tracking of site resources. Video-based monitoring and processing algorithms provide a non-intrusive, easy, and, rapid mechanism for generating a body of operational information and knowledge which, when made available, will enable inquiry into construction operations that is currently not possible. Longer term, this research will serve as a valuable aid to project management by enabling tighter control and greater efficiency. By making project management and workforce more aware of the performance status of their project and their work environment, potential savings to the construction and other industries are envisioned. This research will also actively include and drive the education of the next generation of engineers (civil, electrical, and computational engineering) and construction labor pool. The research has a dedicated outreach plan to involve in this research a broad spectrum of students from high schools and industry professionals who are interested in advanced hard- and software technology
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