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M-estimation of Boolean models for particle flow experiments

机译:粒子流实验布尔模型的M估计

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摘要

Probability models are proposed for passage time data collected in experiments with a device that was designed to measure particle flow during aerial application of fertilizer. Maximum likelihood estimation of flow intensity is reviewed for the simple linear Boolean model, which arises with the assumption that each particle requires the same known passage time. M-estimation is developed for a generalization of the model in which passage times behave as a random sample from a distribution with a known mean. The generalized model improves the fit in these experiments. An estimator of total particle flow is constructed by conditioning on lengths of multiparticle clumps.
机译:提出了概率模型,用于通过实验设计的装置测量通过时间数据,该装置设计用于在空中施肥期间测量颗粒流量。对于简单的线性布尔模型,回顾了流动强度的最大似然估计,该模型是在每个粒子需要相同的已知通过时间的前提下提出的。 M估计是为模型的一般化而开发的,其中通过时间表现为来自具有已知平均值的分布的随机样本。通用模型提高了这些实验的拟合度。总粒子流量的估算器是通过调节多粒子团块的长度来构造的。

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