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Cross-Relation-Based Blind SIMO Identifiability in the Presence of Near-Common Zeros and Noise

机译:存在近似公共零点和噪声时基于交叉关系的盲SIMO可识别性

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The blind identification of single-input multiple-output (SIMO) systems is often performed by exploiting a cross-relation (CR) between channel pairs. It has been shown that this property allows an estimation of channel impulse responses up to a common gain factor if certain identifiability conditions are met. In this case, the estimated channels can be evaluated by a gain-compensated system distance known as normalized projection misalignment (NPM). Current algorithms for blind channel identification, however, suffer in the presence of insufficient channel diversity and observation noise. In this paper, we first demonstrate that in the absence of noise the CR identification error for channels with exact common zeros is given by a single-channel pole-zero transfer function. Next, we extend our analysis to the realistic case of near-common zeros and noise for which we show that the effective error can still be approximated by a common transfer function as long as the distance between the channel zeros remains below a signal-to-noise ratio-dependent threshold. A finite impulse response (FIR) modeling of the error then enables us to define a common-filter-error-compensated system distance, termed normalized filter-projection misalignment (NFPM), which establishes a natural extension to the NPM analysis. By finally considering realistic channels, which we blindly estimate with the adaptive multichannel least mean-square (MCLMS) algorithm, we demonstrate that the NFPM reliably reaches the noise floor, confirming that the effective error can be approximated by a common FIR filter.
机译:单输入多输出(SIMO)系统的盲目识别通常是通过利用通道对之间的交叉关系(CR)来执行的。已经表明,如果满足某些可识别性条件,则该特性可以估计高达公共增益因子的信道脉冲响应。在这种情况下,可以通过增益补偿的系统距离(称为归一化投影失准(NPM))来评估估计的通道。然而,用于盲信道识别的当前算法在信道分集和观察噪声不足的情况下遭受痛苦。在本文中,我们首先证明在没有噪声的情况下,具有精确公共零的通道的CR识别误差由单通道零极点传递函数给出。接下来,我们将分析扩展到接近于零的常见情况和噪声,我们证明只要通道零之间的距离保持在信噪比之下,有效误差仍然可以通过一个公共传递函数来近似。噪声比相关阈值。然后,通过对误差的有限冲激响应(FIR)建模,我们可以定义通用滤波器误差补偿的系统距离,称为归一化滤波器-投影失准(NFPM),从而自然扩展了NPM分析。通过最终考虑我们用自适应多通道最小均方(MCLMS)算法盲目估计的实际通道,我们证明了NFPM可靠地达到了本底噪声,从而证实了有效误差可以通过一个通用FIR滤波器来近似。

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