克氏锥虫感染小鼠体重进化分析

Breno Feitosa da Silva, T. A. Guedes, V. Janeiro, É. C. Ferreira, S. M. Araújo, L. Ciupa
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引用次数: 1

摘要

关于纵向研究的特殊性,受试者的平均反应轨迹并不总是呈现线性行为,这就需要考虑到个体轨迹的非线性并将其描述为与每个个体可能的随机效应相关联的工具。广义加性混合模型(GAMMs)已经解决了这个问题,因为,在这类模型中,除了通过求和未知的光滑函数重写线性项之外,还可以将特定的随机效应分配给个体,而不是参数化指定,然后使用p样条平滑技术。因此,本文旨在将该方法应用于一个数据集,该数据集涉及57只感染克氏锥虫的瑞士小鼠,对其体重进行了12周的监测。分析显示,不同治疗组个体的体重轨迹存在显著差异;此外,还满足了验证模型所需的假设条件。因此,可以得出结论,该方法在纵向排序数据建模中是令人满意的,因为使用这种方法,除了可能包括固定和随机效应之外,这些模型还允许在残差中添加复杂的相关结构。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Analyzing weight evolution in mice infected by Trypanosoma cruzi
Concerning the specificities of a longitudinal study, the trajectories of a subject's mean responses not always present a linear behavior, which calls for tools that take into account the nonlinearity of individual trajectories and that describe them towards associating possible random effects with each individual. Generalized additive mixed models (GAMMs) have come to solve this problem, since, in this class of models, it is possible to assign specific random effects to individuals, in addition to rewriting the linear term by summing unknown smooth functions, not parametrically specified, then using the P-splines smoothing technique. Thus, this article aims to introduce this methodology applied to a dataset referring to an experiment involving 57 Swiss mice infected by Trypanosoma cruzi, which had their weights monitored for 12 weeks. The analyses showed significant differences in the weight trajectory of the individuals by treatment group; besides, the assumptions required to validate the model were met. Therefore, it is possible to conclude that this methodology is satisfactory in modeling data of longitudinal sort, because, with this approach, in addition to the possibility of including fixed and random effects, these models allow adding complex correlation structures to residuals.
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