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Convex Combination of Affine Projection and Error Coded Least Mean Square Algorithms

机译:仿射投影和误差编码的最小均方算法的凸组合

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Affine Projection (AP) algorithms offer a relatively good convergence speed which can be increased by augmenting the projection order (L), however, in addition to presenting a high computational complexity, their steady-state misadjustment worsens in direct ratio to the rise of L. Convex combinations of AP algorithms have been devised in an attempt to address the misadjustment issue, albeit at the cost of doubling the aforementioned computational complexity. This work introduces the convex combination of an AP algorithm with an Error Coded Least Mean Square (ECLMS) algorithm, in order to reduce the twofold increase in computational complexity of dual AP combinations while retaining the high convergence speed and improving the steady-state misadjustment level. The proposed algorithm was tested in a system identification application, results demonstrate that the proposal performs as good or better than dual AP solutions, while considerably reducing computational complexity.
机译:仿射投影(AP)算法提供了相对较好的收敛速度,可以通过提高投影阶数(L)来提高收敛速度,但是,除了呈现出高计算复杂度外,它们的稳态失调与L的上升成正比的情况也恶化了为了解决失调问题,已经设计了AP算法的凸组合,尽管以增加上述计算复杂度为代价。这项工作介绍了AP算法与错误编码最小均方(ECLMS)算法的凸组合,以便在保持高收敛速度并提高稳态失调水平的同时,减少双AP组合计算复杂度的两倍增长。 。所提出的算法在系统识别应用中进行了测试,结果表明该算法在性能上优于或优于双AP解决方案,同时大大降低了计算复杂度。

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