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Statistical Modeling and Estimation of Censored Pathloss Data

机译:删失数据的统计建模和估计

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Pathloss is typically modeled using a log-distance power law with a large-scale fading term that is log-normal. However, the received signal is affected by the dynamic range and noise floor of the measurement system used to sound the channel, which can cause measurement samples to be truncated or censored. If the information about the censored samples is not included in the estimation method, as in ordinary least squares estimation, it can result in biased estimation of both the pathloss exponent and the large scale fading. This can be solved by applying a Tobit maximum-likelihood estimator, which provides consistent estimates for the pathloss parameters. This letter provides information about the Tobit maximum-likelihood estimator and its asymptotic variance under certain conditions.
机译:通常使用对数距离幂律和对数正态的大规模衰落项对路径损耗进行建模。但是,接收到的信号会受到用于使通道发声的测量系统的动态范围和本底噪声的影响,这可能会导致测量样本被截断或检查。如果与普通最小二乘估计一样,在估计方法中未包含有关删失样本的信息,则可能导致路径损耗指数和大规模衰落两者的估计偏差。这可以通过应用Tobit最大似然估计器来解决,该估计器为路径损耗参数提供一致的估计。这封信提供了有关Tobit最大似然估计器及其在某些条件下的渐近方差的信息。

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