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Adaptive Combination of Distributed Incremental Affine Projection Algorithm with Different Projection Orders

机译:不同投影顺序的分布式增量仿射投影算法的自适应组合

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摘要

Recently, the distributed incremental affine projection algorithm (DIAPA) has attracted much attention owing to its good performance for correlated input. However, the DIAPA algorithm with high projection order achieves fast convergence rate but suffers from large steady-state misalignment, and that with low projection order has small steady-state misalignment, but it converges slowly. To overcome this trade-off, in this brief, an adaptive combination of the distributed incremental affine projection algorithm with different projection orders (ACDIAPA-DPO) is proposed, which combines the DIAPA using high projection order with that using low projection order by an adaptive mixing parameter. The mixing parameter is obtained by minimizing the mean square deviation. We discuss the computational complexity of the proposed algorithm and other existing algorithms. Moreover, a novel re-initialization mechanism is introduced to further improve the tracking capability of the ACDIAPA-DPO when the system suddenly changes. Simulations results over the incremental network show the superiority of the proposed algorithm.
机译:最近,分布式增量仿射投影算法(DIAPA)由于其在相关输入方面的良好性能而备受关注。然而,具有高投影阶数的DIAPA算法实现了较快的收敛速度,但存在较大的稳态失准;而具有低投影阶数的DIAPA算法具有较小的稳态失准,但收敛缓慢。为了克服这种折衷,在本文中,提出了具有不同投影阶数的分布式增量仿射投影算法(ACDIAPA-DPO)的自适应组合,该算法通过自适应将高投影阶的DIAPA与低投影阶的DIAPA相结合。混合参数。通过最小化均方偏差获得混合参数。我们讨论了提出的算法和其他现有算法的计算复杂性。此外,引入了一种新颖的重新初始化机制,以进一步提高当系统突然变化时ACDIAPA-DPO的跟踪能力。在增量网络上的仿真结果表明了该算法的优越性。

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