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Cost-effective quaternion minimum mean square error estimation: From widely linear to four-channel processing

机译:具有成本效益的四元数最小均方误差估计:从广泛的线性到四通道处理

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Widely linear estimation plays an important role in quaternion signal processing, as it caters for both proper and improper quaternion signals. However, widely linear algorithms are computationally expensive owing to the use of augmented variables and statistics. To reduce the computation cost while maintaining the performance level, we propose a four-channel estimation framework as an efficient alternative to quaternion widely linear estimation. This is achieved by using four linear models to estimate the four components of quaternion signals. We also show that any of the four channels is able to replace a strictly linear quaternion estimator when estimating strictly linear systems. The proposed method is shown to reduce computational complexity and provide more flexible algorithms, while preserving the physical meaning inherent in the quaternion domain. The proposed framework is next applied to quaternion minimum mean square error estimation to yield the reduced-complexity versions of the quaternion least mean square (QLMS), quaternion recursive least squares (QRLS), and quaternion nonlinear gradient decent (QNGD) algorithms. For the proposed QLMS algorithm, an adaptive step-size strategy is also explored. The effectiveness of the so introduced estimation techniques is validated by simulations on synthetic and real-world signals.
机译:广泛的线性估计在四元数信号处理中起着重要作用,因为它既适合于适当的四元数信号也适用于不合适的四元数信号。然而,由于使用了增加的变量和统计量,广泛的线性算法在计算上是昂贵的。为了在保持性能水平的同时降低计算成本,我们提出了一种四通道估计框架,作为四元数广泛线性估计的有效替代方法。这可以通过使用四个线性模型来估计四元数信号的四个分量来实现。我们还表明,在估计严格线性系统时,四个通道中的任何一个都能够替换严格线性四元数估计器。所提出的方法在保持四元数域固有的物理意义的同时,降低了计算复杂度并提供了更灵活的算法。拟议的框架接下来将应用于四元数最小均方误差估计,以产生四元数最小均方(QLMS),四元数递归最小二乘(QRLS)和四元数非线性梯度体面(QNGD)算法的降低复杂度的版本。对于提出的QLMS算法,还探讨了一种自适应步长策略。如此引入的估算技术的有效性通过对合成信号和真实信号的仿真得到了验证。

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