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Recognition of High-Risk Scenarios in Building Construction Based on Image Semantics

机译:基于图像语义的建筑施工高风险的认识

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摘要

The action analysis and semantic interpretation of images have recently attracted increased attention in the field of computer vision. However, it is difficult for an intelligent monitoring method based on computer vision to understand complex scenarios and describe hazardous events from a surveillance video. To identify risks in a construction process and prevent construction accidents, an automatic identification method combining object detection and ontology is proposed. First, a faster region-convolutional neural network is used to extract low-level semantic information from scene elements and element spatial relationship attributes from images exported from a surveillance video. Second, an ontology semantic network is established within the scope of a construction scene, and logical language of the ontology is used to transform the low-level semantic information of images into high-level semantics of event descriptions. Third, construction risk rules are translated into ontology rules, and high-risk situations that may arise at the construction site are identified by a Pellet inference engine. Finally, a foundation pit excavation scene is taken as an example, and test results are used to verify the feasibility and effectiveness of the proposed method. The proposed method can be used to improve the efficiency of construction safety management.
机译:图像的动作分析和语义解释最近在计算机视野领域引起了更多的注意。然而,基于计算机愿景的智能监测方法难以理解复杂的情景,并描述监视视频的危险事件。为了识别建筑过程中的风险并防止建设事故,提出了一种组合对象检测和本体的自动识别方法。首先,使用更快的区域卷积神经网络来从从监视视频导出的图像中从场景元素和元素空间关系属性中提取低电平语义信息。其次,在施工场景的范围内建立了本体语义网络,并且本体的逻辑语言用于将图像的低级语义信息转换为事件描述的高级语义。第三,将施工风险规则转化为本体规则,并且在施工现场可能出现的高风险情况由颗粒推理引擎识别。最后,以基础坑挖掘场景为例,并使用测试结果来验证所提出的方法的可行性和有效性。所提出的方法可用于提高施工安全管理的效率。

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