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Condition Assessment of Suspension Bridges Using Local Variable Weight and Normal Cloud Model

机译:基于局部变权和正云模型的悬索桥状态评估

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摘要

A systematic work has been presented for condition assessment of suspension bridges in this study. Initially, a four-layer index system is built up. Subsequently, 45 experts are invited to determine the index weights by processing the experts’ opinions using the Group Decision-Making (GDM). The assigned weights seem more reasonable (especially weights of the tower and auxiliary facility) when compared with those in the existing China’s code. Next, assessment algorithms, the Local Variable Weight Model (LVWM) and Normal Cloud Model (NCM), are established based on the characteristics of the bridge condition assessment. The LVWM adjusts weight properly to make assessment results in line with the actual situation under extreme cases. The NCM describes not only the fuzziness but also the randomness in the assessment process. Finally, a case study is illustrated to verify the effectiveness of the methodology. For sake of highlighting the advantages of the LVWM, two more models are subjected to the case study, which are the Constant Weight Model (CWM) and Traditional Variable Weight Model (TVWM). Consequently, the assessment result of the LVWM is more in keeping with the actual situation than those of the CWM or TVWM.
机译:在这项研究中,已经提出了用于悬索桥状态评估的系统工作。最初,建立了一个四层索引系统。随后,邀请45位专家通过使用小组决策(GDM)处理专家的意见来确定指标权重。与中国现行法规相比,分配的权重似乎更合理(尤其是塔架和辅助设施的权重)。接下来,根据桥梁状况评估的特征,建立评估算法,即局部可变权重模型(LVWM)和正态云模型(NCM)。 LVWM会适当调整权重,以根据极端情况下的实际情况得出评估结果。 NCM不仅描述了模糊性,还描述了评估过程中的随机性。最后,通过案例研究证明了该方法的有效性。为了突出LVWM的优势,案例研究还采用了另外两个模型,即恒权模型(CWM)和传统可变权模型(TVWM)。因此,LVWM的评估结果比CWM或TVWM的评估结果更符合实际情况。

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