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Formalized knowledge of construction sequencing for visual monitoring of work-in-progress via incomplete point clouds and low-LoD 4D BIMs

机译:通过不完整的点云和低LoD 4D BIM可视化监控在建工程的施工顺序的形式化知识

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摘要

Over the last few years, new methods that detect construction progress deviations by comparing laser scanning or image-based point clouds with 4D BIM are developed. To create complete as-built models, these methods require the visual sensors to have proper line-of-sight and field-of-view to building elements. For reporting progress deviations, they also require Building Information Modeling (BIM) and schedule Work-Breakdown-Structure (WBS) with high Level of Development (LoD). While certain logics behind sequences of construction activities can augment 4D BIM with lower LoDs to support making inferences about states of progress under limited visibility, their application in visual monitoring systems has not been explored. To address these limitations, this paper formalizes an ontology that models construction sequencing rationale such as physical relationships among components. It also presents a classification mechanism that integrates this ontology with BIM to infer states of progress for partially and fully occluded components. The ontology and classification mechanism are validated using a Charrette test and by presenting their application together with BIM and as-built data on real-world projects. The results demonstrate the effectiveness and generality of the proposed ontology. It also illustrates how the classification mechanism augments 4D BIM at lower LoDs and WBS to enable visual progress assessment for partially and fully occluded BIM elements and provide detailed operational-level progress information.
机译:在过去的几年中,开发了通过比较激光扫描或基于图像的点云与4D BIM来检测施工进度偏差的新方法。为了创建完整的竣工模型,这些方法要求视觉传感器对建筑元素具有正确的视线和视野。为了报告进度偏差,他们还需要建筑信息模型(BIM)并计划具有较高开发水平(LoD)的工作分解结构(WBS)。虽然建筑活动序列后面的某些逻辑可以用较低的LoD来增强4D BIM,以支持在有限可见性下推断进度状态,但尚未探索其在视觉监控系统中的应用。为了解决这些局限性,本文正式定义了一个实体模型,该实体模型可对构造排序原理进行建模,例如组件之间的物理关系。它还提供了一种分类机制,该机制将该本体与BIM集成在一起,以推断部分和完全封闭的组件的进度状态。使用Charrette测试并通过将其应用程序与BIM和实际项目中的已建数据一起展示,来验证本体和分类机制。结果证明了所提出本体的有效性和普遍性。它还说明了分类机制如何在较低的LoD和WBS处增强4D BIM,以实现对部分和完全堵塞的BIM元素的视觉进度评估,并提供详细的操作级别进度信息。

著录项

  • 来源
    《Advanced engineering informatics》 |2015年第4期|889-901|共13页
  • 作者单位

    Department of Civil and Environmental Engineering, University of Illinois at Urbana-Champaign, Urbana, IL, United States;

    Department of Civil and Environmental Engineering. Virginia Tech, Blacksburg, VA, United States;

    Department of Civil and Environmental Engineering, University of Illinois at Urbana-Champaign, Urbana, IL, United States ,Department of Computer Science, University of Illinois at Urbana-Champaign, Urbana, IL, United States;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Sequencing knowledge; Visual construction monitoring; Building information modeling;

    机译:测序知识;视觉施工监控;建筑信息建模;

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