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Confidence intervals on catch estimates from a recreational fishing survey: a comparison of bootstrap methods

机译:休闲钓鱼调查的估计产量置信区间:自举方法的比较

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摘要

Bootstrap methods are often used for confidence intervals on recreational fish catch estimates, because they are relatively robust and straightforward to implement. Such data are typically highly skewed and zero-inflated, presenting difficulties for many estimation methods. However, bootstrap performance in many situations is not well understood. Inaccurate confidence intervals can cause management errors, and biased intervals can promote errors in one direction. Although the analyses originate from recreational fisheries data, the conclusions are generally applicable to similarly distributed data from other sources. Using simulation, non-parametric bootstrap confidence intervals (bootstrap normal, bootstrap percentile, hybrid, bootstrap-t , BC, and BCa) on catch rate and total catch estimates from a recreational fishing survey were compared. The intervals' coverage (proportion of times the 'true' mean fell within the confidence intervals) and relative bias were also compared. The bootstrap-t , using a resample size of slightly less than n/2, provided confidence intervals with the most correct coverage for both parameters. Intervals were biased, usually substantially, for all other methods, with the commonly used bootstrap percentile among the more biased methods.
机译:引导方法通常用于休闲鱼捕获量估计的置信区间,因为它们相对健壮且易于实现。这样的数据通常是高度偏斜和零膨胀的,这给许多估计方法带来了困难。但是,在许多情况下自举性能并不为人所知。不正确的置信区间会导致管理错误,而偏差的区间会导致一个方向的错误。尽管分析源自休闲渔业数据,但结论通常适用于其他来源的类似分布数据。使用模拟方法,比较了休闲捕鱼调查的非参数自举程序置信区间(自举程序正常,自举程序百分位,混合,自举程序t,BC和BCa)和总捕获量估计值。还比较了区间的覆盖率(“真实”均值落入置信区间的时间比例)和相对偏差。 bootstrap-t使用稍小于n / 2的重采样大小,为两个参数提供了最正确覆盖的置信区间。对于所有其他方法,通常对间隔有较大的偏见,其中偏斜较大的方法中通常使用自举百分比。

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