首页> 外文期刊>Journal of forensic sciences. >Generalized additive models and Lucilia sericata growth: assessing confidence intervals and error rates in forensic entomology.
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Generalized additive models and Lucilia sericata growth: assessing confidence intervals and error rates in forensic entomology.

机译:通用加性模型和丝ilia生长:评估法医昆虫学的置信区间和错误率。

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摘要

Forensic entomologists use blow fly development to estimate a postmortem interval. Although accurate, fly age estimates can be imprecise for older developmental stages and no standard means of assigning confidence intervals exists. Presented here is a method for modeling growth of the forensically important blow fly Lucilia sericata, using generalized additive models (GAMs). Eighteen GAMs were created to predict the extent of juvenile fly development, encompassing developmental stage, length, weight, strain, and temperature data, collected from 2559 individuals. All measures were informative, explaining up to 92.6% of the deviance in the data, though strain and temperature exerted negligible influences. Predictions made with an independent data set allowed for a subsequent examination of error. Estimates using length and developmental stage were within 5% of true development percent during the feeding portion of the larval life cycle, while predictions for postfeeding third instars were less precise, but within expected error.
机译:法医昆虫学家使用blow蝇发育来估计死后间隔。尽管飞行年龄估计是准确的,但对于较早的发育阶段可能并不精确,并且不存在分配置信区间的标准方法。这里介绍的是一种使用广义加性模型(GAM)对法医学上重要的蝇蝇Lucilia sericata的生长进行建模的方法。创建了18个GAM来预测从2559个个体收集的幼蝇的发育程度,包括发育阶段,长度,体重,应变和温度数据。尽管应变和温度的影响可忽略不计,但所有措施均提供了信息,可解释数据中多达92.6%的偏差。使用独立数据集进行的预测可以随后进行错误检查。在幼虫生命周期的进食部分中,使用长度和发育阶段的估计值在真实发育百分比的5%以内,而对第三龄幼虫的后进食预测则较不精确,但在预期误差范围内。

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