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DETECTING INSTABILITY POTENTIALS IN REGULARIZATION FOR FAST AFFINE PROJECTION ALGORITHMS

机译:在快速仿射投影算法中检测正则化的不稳定电位

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In fast affine projection (FAP) adaptation algorithms, it is needed to explicitly or implicitly perform a matrix inversion, during which a small positive regularization factor plays an important role in keeping the algorithm stable and optimized. While existing schemes choose the regularization factor based on certain system criteria not related to the inversion, this paper proposes a simple scheme that dynamically diagnoses the inversion process itself for potentials of instability. This work paves the way for further studies on "minimal regularization and step-size control" technique. A FAP adopting this technique can be compared with FAPs with existing regularization schemes for convergence and steady state performance.
机译:在快速仿射投影(FAP)自适应算法中,需要明确或隐式地执行矩阵反转,在此期间小正正则化因子在保持算法稳定和优化方面发挥着重要作用。虽然现有方案根据与反转无关的某些系统标准选择正则化因子,但本文提出了一种简单的方案,可以动态地诊断反转过程本身以获取不稳定的潜力。这项工作铺平了进一步研究“最小正则化和阶梯尺寸控制”技术的方式。采用该技术的FAP可以将采用具有收敛性和稳态性能的现有正则化方案的FAP进行比较。

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