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A rule-based methodology for automated progress monitoring of construction activities: a case for masonry work

机译:基于规则的建筑活动自动进度监控方法:砌体工程案例

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The conventional approach that is used to monitor construction projects is to collect progress data from the construction site through visual investigation. This results in deficient and sometimes erroneous data, and leads to inefficiencies in project control, delays and cost overruns. To address these problems in building construction projects, an approach was developed to automatically monitor activity progress by tracking major construction equipment and bulk materials using sensor-based technologies that are cost-effective and easy to deploy. In this approach data obtained from sensors (e.g., load sensor) and/or other sensor-based technologies (i.e., Radio Frequency Identification (RFID)), which were deployed on major construction resources, were fused using rule-based algorithms to determine the activity progress. This progress data was compared with human-generated site related data (e.g., schedules, site reports) to determine the activity performance. This paper presents the developed data fusion approach and rule-based data fusion algorithms that incorporate the domain-specific heuristic information for determining the activitya€?s overall progress. To validate the proposed approach, a proof-of-concept prototype was deployed and tested at a construction site for monitoring the progress of masonry work. The results show that the developed approach achieved 95% average accuracy in identifying the progress of the masonry work that was monitored during the field tests. The main contributions of this study are the rule-based data fusion approach and the rules that were developed for processing data from equipment and bulk materials. These rules can be used to determine the progress of other activities that use similar resources.
机译:用于监视施工项目的常规方法是通过视觉调查从施工现场收集进度数据。这导致数据不足甚至有时是错误的,并导致项目控制效率低下,延迟和成本超支。为了解决建筑施工项目中的这些问题,开发了一种方法,该方法通过使用具有成本效益且易于部署的基于传感器的技术跟踪主要的建筑设备和散装物料来自动监视活动进度。在这种方法中,使用基于规则的算法融合从传感器(例如,负载传感器)和/或其他基于传感器的技术(即,射频识别(RFID))获得的数据,这些数据已部署在主要建筑资源上,活动进度。将此进度数据与人工生成的与站点相关的数据(例如,时间表,站点报告)进行比较,以确定活动效果。本文介绍了已开发的数据融合方法和基于规则的数据融合算法,这些算法结合了特定于领域的启发式信息来确定活动的总体进度。为了验证所提出的方法,在施工现场部署了概念验证原型并进行了测试,以监控砌体工作的进度。结果表明,所开发的方法在识别在现场测试期间监控的砌体工作进度方面达到了95%的平均准确度。这项研究的主要贡献是基于规则的数据融合方法以及为处理设备和散装材料中的数据而开发的规则。这些规则可用于确定使用类似资源的其他活动的进度。

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