线性网络上由变换高斯过程驱动的考克斯过程--回顾与新贡献

IF 0.8 4区 数学 Q3 STATISTICS & PROBABILITY
Jesper Møller, Jakob G. Rasmussen
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引用次数: 0

摘要

线性网络缺乏点过程模型。对于任意线性网络,我们考虑了具有各向同性对相关函数的 Cox 过程的新模型,该模型是通过转换各向同性高斯过程(用于驱动 Cox 过程的随机强度函数)以各种方式获得的。特别是,我们引入了线性网络上对数高斯过程、间断过程和永久考克斯过程给出的三类模型,并首次考虑了此类模型参数族的统计程序和应用。此外,我们还为线性网络上的高斯过程构建了新的模拟算法,并讨论了本文研究的这类 Cox 过程应该使用大地度量还是阻力度量。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Cox processes driven by transformed Gaussian processes on linear networks—A review and new contributions
There is a lack of point process models on linear networks. For an arbitrary linear network, we consider new models for a Cox process with an isotropic pair correlation function obtained in various ways by transforming an isotropic Gaussian process which is used for driving the random intensity function of the Cox process. In particular, we introduce three model classes given by log Gaussian, interrupted, and permanental Cox processes on linear networks, and consider for the first time statistical procedures and applications for parametric families of such models. Moreover, we construct new simulation algorithms for Gaussian processes on linear networks and discuss whether the geodesic metric or the resistance metric should be used for the kind of Cox processes studied in this paper.
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来源期刊
Scandinavian Journal of Statistics
Scandinavian Journal of Statistics 数学-统计学与概率论
CiteScore
1.80
自引率
0.00%
发文量
61
审稿时长
6-12 weeks
期刊介绍: The Scandinavian Journal of Statistics is internationally recognised as one of the leading statistical journals in the world. It was founded in 1974 by four Scandinavian statistical societies. Today more than eighty per cent of the manuscripts are submitted from outside Scandinavia. It is an international journal devoted to reporting significant and innovative original contributions to statistical methodology, both theory and applications. The journal specializes in statistical modelling showing particular appreciation of the underlying substantive research problems. The emergence of specialized methods for analysing longitudinal and spatial data is just one example of an area of important methodological development in which the Scandinavian Journal of Statistics has a particular niche.
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