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Artificial intelligence for structural glass engineering applications - overview, case studies and future potentials

机译:结构玻璃工程应用的人工智能 - 概述,案例研究和未来的潜力

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摘要

'Big data' and the use of 'Artificial Intelligence' (AI) is currently advancing due to the increasing and even cheaper data collection and processing capabilities. Social and economical change is predicted by numerous company leaders, politicians and researchers. Machine and Deep Learning (ML/DL) are sub-types of AI, which are gaining high interest within the community of data scientists and engineers worldwide. Obviously, this global trend does not stop at structural glass engineering, so that, the first part of the present paper is concerned with introducing the basic theoretical frame of AI and its sub-classes of ML and DL while the specific needs and requirements for the application in a structural engineering context are highlighted. Then this paper explores potential applications of AI for different subjects within the design, verifi- cation and monitoring of facades and glass structures. Finally, the current status of research as well as successfully conducted industry projects by the authors are presented. The discussion of specific problems ranges from supervised ML in case of the material parameter identification of polymeric interlayers used in laminated glass or the prediction of cut-edge strength based on the process parameters of a glass cutting machine and prediction of fracture patterns of tempered glass to the application of computer vision DL methods to image classification of the Pummel test and the use of semantic segmentation for the detection of cracks at the cut edge of glass. In the summary and conclusion section, the main findings for the applicability and impact of AI for the presented structural glass research and industry problems are compiled. It can be seen that in many cases AI, data, software and computing resources are already available today to successfully implement AI projects in the glass industry, which is demonstrated by the many current examples mentioned. Future research directories however will need to concentrate on how to introduce further glass-specific theoretical and human expert knowledge in the AI training process on the one hand and on the other hand more pronunciation has to be laid on the thorough digitization of workflows associated with the structural glass problem at hand in order to foster the further use of AI within this domain in both research and industry.
机译:由于增加甚至更便宜的数据收集和处理能力,“大数据”和“人工智能”(AI)的使用目前正在推进。众多公司领导人,政治家和研究人员预测了社会和经济变革。机器和深度学习(ML / DL)是AI的子类型,其在全球数据科学家和工程师社区中获得高兴趣。显然,这种全球趋势在结构玻璃工程方面不会停止,因此,本文的第一部分涉及介绍AI及其子类的基本理论框架,而毫克和DL的虽然具体的需求和要求介绍在结构工程背景下的应用是突出的。然后,本文探讨了AI在设计,验证和监测外墙和玻璃结构中的不同科目的潜在应用。最后,提出了当前研究现状以及作者成功开展行业项目。关于特定问题的讨论范围从监督ML的材料参数识别,用于基于玻璃切割机的工艺参数的叠层玻璃中使用的聚合物中间层的材料参数识别,以及熔化玻璃骨折图案的预测计算机视觉DL方法在Pumpel试验图像分类和使用语义分割中的应用,以检测玻璃切割边缘的裂缝。在摘要和结论部分,编制了AI适用性和影响的主要研究结果,编制了呈现结构玻璃研究和行业问题。可以看出,在许多情况下,今天可以在许多情况下获得AI,数据,软件和计算资源,以在玻璃行业中成功实现AI项目,这是由所提到的许多当前示例所证明的。然而,未来的研究目录需要专注于如何在一方面介绍AI培训过程中进一步介绍的玻璃特定的理论和人类专家知识,另一方面有更多的发音必须放在与之相关的工作流程的彻底数字化。涉水结构玻璃问题,以培养在研究和工业中的该领域内进一步使用AI。

著录项

  • 来源
    《Glass Structures & Engineering》 |2020年第3期|247-285|共39页
  • 作者

    M. A. Kraus; M. Drass;

  • 作者单位

    M&M Network-Ing UG(haftungsbeschrankt) Lennebergstr. 40 55124 Mainz Germany Civil and Environmental Engineering Stanford University Y2E2 473 Via Ortega Stanford CA 94305 USA Institute of Structural Mechancis and Design Technische Universitat Darmstadt Franziska-Braun-Str. 3 64287 Darmstadt Germany;

    M&M Network-Ing UG(haftungsbeschrankt) Lennebergstr. 40 55124 Mainz Germany Institute of Structural Mechancis and Design Technische Universitat Darmstadt Franziska-Braun-Str. 3 64287 Darmstadt Germany;

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

    Artificial Intelligence; AI4BI; Facades; Design, Computation and Monitoring; Structural Glass Engineering;

    机译:人工智能;ai4bi;门面;设计;计算和监控;结构玻璃工程;

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