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An evaluation of the effects of sample size on estimating length composition of catches from tuna longline fisheries using computer simulations

机译:用计算机模拟评估样品大小对金枪鱼延绳线捕捞长度组成的影响

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Length composition analysis can provide insights into the dynamics of a fish population. Accurate quantification of the size structure of a population is critical to understand the status of a fishery and how the population responds to environmental stressors. A scientific observer program is a reliable way to provide such accurate information. However, 100% observer coverage is usually impossible for most fisheries because of logistic and financial constraints. Thus, there is a need to evaluate observer program performance, identify suitable sample sizes, and optimize the allocation of observation efforts. The objective of this study is to evaluate the effects of sample size on the quality of length composition data and identify an optimal coverage rate and observation ratio to improve the observation efficiency using an onboard observer data set from China's tuna longline fishery in the western and central Pacific Ocean. We found that the required sample size varies with fish species, indices used to describe length composition, the acceptable accuracy of the estimates, and the allocation methods of sampling effort. Ignoring other information requirements, 1000 individuals would be sufficient for most species to reliably quantify length compositions, and a smaller sample size could generate reliable estimates of mean length. A coverage rate of 20% would be sufficient for most species, but a lower coverage rate (5% or 10%) could also be effective to meet with the accuracy and precision requirement in estimating length compositions. A non-random effort allocation among fishing baskets within a set could cause the length composition to be overestimated or underestimated for some species. The differences in effective sample sizes among species should be included in the consideration for a rational allocation of observation effort among species when there are different species management priorities.
机译:长度成分分析可以为鱼群的动态提供洞察。准确量化人口的尺寸结构对于了解渔业的地位至关重要,以及人口如何应对环境压力源。科学观察员计划是提供此类准确信息的可靠方法。然而,由于物流和财务限制,100%观察者覆盖通常不可能对大多数渔业不可能。因此,需要评估观察者程序性能,识别合适的样本尺寸,并优化观察力的分配。本研究的目的是评估样品大小对长度成分数据质量的影响,并确定最佳覆盖率和观察比,以通过在中国和中央的金枪鱼龙头渔业中设定的船上观察者数据提高观察效率太平洋。我们发现所需的样品大小随着鱼种而异,用于描述长度组成的指标,估算的可接受准确性以及采样努力的分配方法。忽略其他信息要求,大多数物种可靠地定量长度组合物,1000个个体足以使较小的样品大小产生可靠的平均长度估计。大多数物种的覆盖率为20%,但覆盖率较低(5%或10%)也可以有效地满足估算长度组成的准确性和精确要求。一套内捕鱼篮之间的非随机努力分配可能导致长度组合物过多曝光或低估某些物种。物种之间有效样本尺寸的差异应包括在考虑到不同物种管理优先事项时物种之间的理性分配。

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