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On the choice of parameters in singular spectrum analysis and related subspace-based methods

机译:关于奇异频谱分析中参数的选择及相关的基于子空间的方法

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In the present paper we investigate methods related to both the Singular Spectrum Analysis (SSA) and subspacebased methods in signal processing. We describe common and specific features of these methods and consider different kinds of problems solved by them such as signal reconstruction, forecasting and parameter estimation. General recommendations on the choice of parameters to obtain minimal errors are provided.We demonstrate that the optimal choice depends on the particular problem. For the basic model ‘signal+residual’ we show that the error behavior depends on the type of residuals, deterministic or stochastic, and whether the noise is white or red. The structure of errors and the convergence rate are also discussed. The analysis is based on known theoretical results and extensive computer simulations.
机译:在本文中,我们研究了与信号处理中的奇异频谱分析(SSA)和基于子空间的方法相关的方法。我们描述了这些方法的共同特征和特定特征,并考虑了它们所解决的各种问题,例如信号重建,预测和参数估计。提供了关于选择参数以获得最小误差的一般建议。我们证明了最佳选择取决于特定的问题。对于基本模型“信号+残差”,我们表明错误行为取决于残差的类型(确定性还是随机性)以及噪声是白色还是红色。还讨论了错误的结构和收敛速度。该分析基于已知的理论结果和广泛的计算机模拟。

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