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首页> 外文期刊>Proceedings of the Royal Society. Mathematical, physical and engineering sciences >Multi-scale properties of random walk models of animal movement: Lessons from statistical inference
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Multi-scale properties of random walk models of animal movement: Lessons from statistical inference

机译:动物运动随机行走模型的多尺度特性:统计推断的教训

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摘要

The random search problem has long attracted continuous interest owing to its broad interdisciplinary range of applications, including animal foraging, facilitated target location in biological systems and human motion. In this paper, we address the issue of statistical inference for ordinary Gaussian, Pareto, tempered Pareto and fractional Gaussian random walk models, which are among the most studied random walk models proposed as the best strategy in the random search problem. Based on rigorous analysis of the local asymptotic normality property and the Fisher information, we discuss some issues in unbiased joint estimation of the model parameters, in particular, the maximum-likelihood estimation. We present that there exist both theoretical and practical difficulties in more realistic tempered Pareto and fractional Gaussian random walk models from a statistical standpoint. We discuss our findings in the context of individual animal movement and show how our results may be used to facilitate the analysis of movement data and to improve the understanding of the underlying stochastic process.
机译:长期以来,由于其广泛的跨学科应用范围,包括动物觅食,在生物系统中的目标定位以及人体运动等,随机搜索问题一直引起人们的持续关注。在本文中,我们解决了普通高斯,帕累托,回火帕累托和分数高斯随机游走模型的统计推断问题,它们是在随机搜索问题中被建议作为最佳策略的研究最多的随机游走模型。在对局部渐近正态性和Fisher信息进行严格分析的基础上,我们讨论了模型参数的无偏联合估计中的一些问题,特别是最大似然估计。从统计的观点来看,我们提出在更现实的回火的帕累托和分数高斯随机游走模型中存在理论和实践上的困难。我们在动物个体运动的背景下讨论我们的发现,并展示如何将我们的结果用于促进运动数据的分析并增进对潜在随机过程的理解。

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