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Signal Parameter Estimation Using 1-Bit Dithered Quantization

机译:使用1位抖动量化的信号参数估计

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Motivated by the estimation of spatio-temporal events with cheap, simple sensors, we consider the problem of estimation of a parameter thetas of a signal s(x;thetas) corrupted by noise assuming that only 1-bit precision dithered quantized samples are available. An estimate that does not require the knowledge of the dither signal and the noise distribution is proposed, and it is analyzed in detail under variety of nonidealities. The consistency and asymptotic normality of the estimate is established for deterministic and random sampling, imprecise knowledge of sampling locations, Gaussian and non-Gaussian noise (with possibly infinite variance), a wide class of dither distributions, and under erroneous transmission of the binary observations via binary-symmetric channels (BSCs). It is also shown that if approximation to the log-likelihood equation in the full precision case yields a good estimate, then there is a corresponding good estimate based on 1-bit dithered samples. The proposed estimate requires no more computation than the maximum-likelihood estimate for the full precision case and suffers only a logarithmic rate loss compared to the full precision case when uniform dithering is used. It is shown that uniform dithering leads to the best rate among a broad class of dither distributions. A condition under which no dithering leads to a better estimate is also given
机译:出于通过廉价,简单的传感器进行时空事件的估计的动机,我们假设只有一个1位精度的抖动量化样本可用,才能考虑估计被噪声破坏的信号s(x; theta)的参数theta的问题。提出了不需要了解抖动信号和噪声分布的估计,并在各种非理想情况下进行了详细分析。估计的一致性和渐近正态性用于确定性和随机采样,对采样位置的不精确知识,高斯和非高斯噪声(可能具有无限方差),广泛的抖动分布类以及在二元观测值的错误传输下通过二进制对称通道(BSC)。还表明,如果在全精度情况下近似对数似然方程可得出良好的估计,则基于1位抖动样本也有相应的良好估计。对于全精度情况,建议的估计不需要比最大似然估计更多的计算,并且与使用统一抖动时的全精度情况相比,仅遭受对数速率损失。结果表明,在广泛的抖动分布中,均匀抖动导致最佳速率。还给出了没有抖动导致更好估计的条件

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