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Effect of sample size and method of sampling pig weights on the accuracy and precision of estimating the distribution of pig weights in a population

机译:样本量和猪体重抽样方法对估计种群中猪体重分布的准确性和准确性的影响

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摘要

Producers have adopted marketing strategies such as topping to help reduce economic losses from weight discounts, but they are still missing target weights and incurring discounts. We have previously determined the accuracy of sampling methods producers use to estimate the mean weight of the population. Although knowing the mean weight is important, understanding how much variation or dispersion exists in individual pig weights within a group can also enhance a producer’s ability to determine the optimal time to top pigs. In statistics and probability theory, the amount of variation in a population is represented by the standard deviation; therefore, our objective is to determine the sample size and method that is optimal for estimating the standard deviation of BW for a group of pigs in a barn.Using a computer program developed in R (R Foundation for Statistical Computing, Vienna, Austria), we were able to generate 10,000 sample standard deviations for different sampling procedures on 3 different datasets. Using this program, we evaluatedweighing: (1) a completely random sample of 10 to 200 pigs from the barn, (2) an increasing number of pigs per pen from 1 to 15 pigs and increasing the number of pens until all pens in the barn had been sampled, and (3) selecting the heaviest and lightest pig (determined visually) in each pen and subtracting the lightest weight from the heaviest weight and dividing by 6. For all 3 datasets, increasing the sample size of a completely random sample from 10 to 200 pigs decreased the range between the upper and lower confidence intervals (CI) when estimating the standard deviation; however, this occurred at a diminishing rate. For the barn with the most variation, increasing the number of pens sampled while keeping constant the total number of pigs sampled led to a reduction in range between the upper and lower CI by 7, 6, and 31% for Datasets A, B, and C, respectively. Sampling method 3 resulted in a reduction of the range between the upper and lower CI from 9 to 62% for the 3 datasets. These data indicated that the distribution of pig weights can be practically estimated by weighing the heaviest and lightest pigs in 15 pens.
机译:生产者采用了打顶等营销策略来帮助减少重量折扣带来的经济损失,但他们仍然缺少目标重量并产生折扣。我们之前已经确定了生产者用来估计人口平均体重的抽样方法的准确性。尽管知道平均体重很重要,但了解一组中各个猪的体重存在多少差异或分散也可以提高生产者确定最佳出栏时间的能力。在统计学和概率论中,总体的变化量由标准差表示;因此,我们的目标是确定最适合估算一个猪舍中一组猪的体重标准偏差的样本大小和方法。使用R(R统计学统计基金会,奥地利维也纳)开发的计算机程序,我们能够在3个不同的数据集上针对不同的抽样程序生成10,000个样本标准差。使用此程序,我们评估了称重:(1)完全随机地从谷仓中抽出10到200头猪,(2)每只猪的猪只数量从1到15头增加,并且直到猪舍中的所有笔都增加了笔数(3)选择每支笔中最重和最轻的猪(通过肉眼确定),并从最重的重量中减去最轻的重量,然后除以6。对于所有3个数据集,从中增加完全随机样本的样本大小估计标准偏差时,有10至200头猪缩小了上下置信区间(CI)之间的范围;但是,这种情况以减少的速度发生。对于变化最大的谷仓,增加采样笔数,同时保持采样猪总数不变,对于数据集A,B和B而言,上下CI之间的范围减小了7%,6%和31%。 C分别。抽样方法3导致3个数据集的上下CI之间的范围从9%降低到62%。这些数据表明,猪体重的分布实际上可以通过称重15头最重和最轻的猪来估算。

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