A novel weight index-based uniform partition technique of multi-dimensional probability space for structural uncertainty quantification

IF 6.9 1区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY
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Abstract

Accurately and efficiently achieving the uncertainty quantification of engineering structures is a challenging issue. The direct probability integral method (DPIM) provides an effective pathway to address this issue. However, the key partition technique via Voronoi cell of DPIM requires a prohibitive computational burden for multi-dimensional probability space. Moreover, due to the distributed nonuniformity of representative points, the accuracy of DPIM with the partition technique via Voronoi cell (DPIM-Voronoi) for obtaining the response probability density function (PDF) of structures with multi-dimensional probability space still needs to be improved. To this end, a novel weight index-based uniform partition technique is proposed in this study. This technique can generate uniformly distributed representative points and calculate their assigned probabilities using the weight indexes of representative regions. This feature ensures that the representative points can fill the probability space in a highly uniform manner, and avoid the resource-consuming calculation process of assigned probability by Monte Carlo simulation in the original partition technique via Voronoi cell. Based on the proposed technique, DPIM with a Weight index-based Uniform partition technique (DPIM-WU) is developed. Compared to DPIM-Voronoi, the advantages of DPIM-WU include: (1) improving the computational accuracy of response PDF for structures with multi-dimensional probability space, especially in the tail region, leading to improved accuracy of the dynamic reliability; (2) remarkably reducing the computational cost, with minimal computer memory required for the partition process of multi-dimensional probability space; (3) enhancing the robustness to the number of representative points. These advantages are verified through the stochastic response and dynamic reliability analyses of four typical examples, including the 5-story buildings, dry friction system, cylinder structure, and adjacent buildings with pounding motion. Notably, in the stochastic pounding response analysis of adjacent buildings, a stochastic P-bifurcation occurs as the coefficient of variation of the structural parameters decreases.

基于权重指数的新型多维概率空间均匀分区技术,用于结构不确定性量化
准确有效地实现工程结构的不确定性量化是一个具有挑战性的问题。直接概率积分法(DPIM)为解决这一问题提供了有效途径。然而,DPIM 通过 Voronoi 单元进行关键分区的技术需要对多维概率空间进行令人望而却步的计算。此外,由于代表点的分布不均匀性,采用 Voronoi 单元划分技术的 DPIM(DPIM-Voronoi)获取多维概率空间结构响应概率密度函数(PDF)的精度仍有待提高。为此,本研究提出了一种基于权重指数的新型均匀分区技术。该技术可生成均匀分布的代表点,并利用代表区域的权重指数计算其分配概率。这一特点确保了代表点能以高度均匀的方式填充概率空间,并避免了原始分区技术中通过 Voronoi 单元进行蒙特卡罗模拟计算分配概率的耗费资源过程。在此基础上,提出了基于权重指数的 DPIM 统一分区技术(DPIM-WU)。与 DPIM-Voronoi 相比,DPIM-WU 的优势包括(1) 提高了多维概率空间结构响应 PDF 的计算精度,尤其是在尾部区域,从而提高了动态可靠性的精度;(2) 显著降低了计算成本,多维概率空间的划分过程所需的计算机内存最小;(3) 提高了对代表点数量的鲁棒性。通过对四种典型情况(包括五层楼房、干摩擦系统、圆筒结构和有冲击运动的相邻楼房)的随机响应和动态可靠性分析,验证了上述优点。值得注意的是,在相邻建筑物的随机冲击响应分析中,随着结构参数变异系数的减小,会出现随机 P 型分岔。
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来源期刊
CiteScore
12.70
自引率
15.30%
发文量
719
审稿时长
44 days
期刊介绍: Computer Methods in Applied Mechanics and Engineering stands as a cornerstone in the realm of computational science and engineering. With a history spanning over five decades, the journal has been a key platform for disseminating papers on advanced mathematical modeling and numerical solutions. Interdisciplinary in nature, these contributions encompass mechanics, mathematics, computer science, and various scientific disciplines. The journal welcomes a broad range of computational methods addressing the simulation, analysis, and design of complex physical problems, making it a vital resource for researchers in the field.
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