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Time domain force identification based on adaptive l(q) regularization

机译:基于Adaptive L(Q)正规化的时域力识别

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摘要

Traditional time domain force identification methods require prior knowledge about the force profile to apply the appropriate regularization term. Generally speaking, l(1) and l(2) regularization are applied for sparse-type and continuous-type forces respectively. However, prior knowledge about the force type may be unavailable in engineering practice. It is then necessary to incorporate the determination of q (as in l(q) regularization) into the identification process. In this paper, we propose two methods to address the problem: the joint and marginal posterior modes of the force history. The identification problem is formulated within the Bayesian framework. The force history, precision parameters, and q are all treated as unknown random parameters, and estimated based on vibration measurements only. The proposed methods are numerically validated on a mass-spring system, an engineering-scale support structure and experimentally validated on a cantilever beam. It is shown that the proposed methods by considering the data-driven determination of q could adapt to the force profile and consistently provide satisfactory results.
机译:传统的时域力识别方法需要先前了解力型材以应用适当的正则化术语。一般而言,L(1)和L(2)正则化分别用于稀疏型和连续型力。然而,关于力类型的先验知识可能在工程实践中不可用。然后需要将Q的确定(如L(Q)正则化)纳入识别过程中。在本文中,我们提出了两种方法来解决问题:力量历史的关节和边缘后初模式。识别问题是在贝叶斯框架内制定的。力历史,精度参数和Q都被视为未知的随机参数,并仅基于振动测量估计。该方法在大量弹簧系统上进行了数控验证,工程级支持结构并在悬臂梁上进行实验验证。结果表明,通过考虑Q的数据驱动的确定可以适应力分布并一致地提供令人满意的结果。

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