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The Simulation and Application Research of an Improved SSI Algorithm

机译:改进的SSI算法的仿真与应用研究

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As a linear system identification method developed in recent years, Random Subspace Algorithm (SSI) can effectively extract modal parameters from environmental incentive structure. However, this algorithm is not suitable for the embedded system due to its long calculation and low efficiency. For this consideration, improved from the data-based classical stochastic subspace algorithm, this article puts forward the partial projection SSI algorithm with higher efficiency. The basic idea of the improvement is to use the part of the output data rather than all data as a "past" signal, which greatly reduce the calculation and improve the efficiency of the algorithm as the result. Finally the simulation test and actual application of the improved algorithm show that the improved algorithm can achieve experimental results faster, which is still ideal even in strong noise environment. This algorithm improves the calculation efficiency with no loss of accuracy.
机译:作为近年来发展起来的线性系统识别方法,随机子空间算法(SSI)可以有效地从环境激励结构中提取模态参数。但是,该算法计算时间长,效率低,因此不适合嵌入式系统。有鉴于此,本文对基于数据的经典随机子空间算法进行了改进,提出了一种效率更高的局部投影SSI算法。改进的基本思想是将输出数据的一部分而不是全部数据用作“过去”信号,这大大减少了计算并提高了算法的效率。最后,仿真实验和改进算法的实际应用表明,改进算法可以更快地达到实验结果,即使在强噪声环境下仍然是理想的。该算法提高了计算效率,且不损失准确性。

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