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las/Variance Trade-Off in Estimates of a Process Parameter Lased on Temporal Data

机译:LAS / variance在时间数据上估计的过程参数估计中的折衷

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摘要

We recommend an approach to estimate a process performance measure (or parameter) at the present time from a stream of data where the performance may drift slowly over time. It is common practice to estimate current process performance using either present-time data only or including all historical data. When sample sizes by time period are small, an estimate based only on present-time data is imprecise. When the performance changes over time, including historical data in estimation trades more bias for less variability. We propose to regulate the bias/variance trade-off using estimating equations that down-weight past data. We derive approximations for the variance of the estimator and the distribution of a test statistic involving the estimator. The work is motivated by estimation of a customer loyalty measure where realistic data demonstrates the proposed approach.
机译:我们建议一种方法来估计当前时间的过程性能测量(或参数)从性能随时间缓慢漂移的数据流。 常常使用当前数据仅或包括所有历史数据来估计当前过程性能。 当按时间段的样本大小很小时,仅基于当前数据的估计是不精确的。 当性能随时间变化时,包括估计中的历史数据交易更多偏差以获得更少的可变性。 我们建议使用估计次重量的数据来调节偏差/方差折衷。 我们导出估计方差的近似值以及涉及估计器的测试统计的分布。 这项工作是通过估计建立方法的客户忠诚度措施的推动。

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