参数信号分析的次优极大似然法

S. Fassois, K. Eman, S. M. Wu
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引用次数: 4

摘要

提出了一种计算效率高的广义平稳信号随机ARMA建模方法。离散估计器通过使用专门的线性技术和规避最大似然(ML)方法的高计算复杂性来最小化似然函数的修改版本。因此,所建议的方法易于实现,不需要二阶统计信息,并且以非常低的计算成本产生高质量的估计。本文还开发了适合在线实现的算法的递归版本,并讨论了某些建模策略问题。最后通过数值模拟和与其他次优方案的比较,验证了该方法的有效性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A Suboptimum Maximum Likelihood Approach to Parametric Signal Analysis
A computationally efficient approach to stochastic ARMA modeling of wide-sense stationary signals is proposed. The discrete estimator minimizes a modified version of the likelihood function by using exclusively linear techniques and circumventing the high computational complexity of the Maximum Likelihood (ML) method. The proposed approach is thus easy to implement, requires no second order statistical information, and is shown to produce high quality estimates at a very modest computational cost. A recursive version of the algorithm, suitable for on-line implementation, is also developed, and, certain modeling strategy issues discussed. The effectiveness of the proposed approach is finally established through numerical simulations and comparisons with other suboptimum schemes.
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