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Structured Spatio-Temporal Shot-Noise Cox Point Process Models, with a View to Modelling Forest Fires

机译:结构化的时空时域散点噪声Cox点过程模型,旨在模拟森林大火

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Spatio-temporal Cox point process models with a multiplicative structure for the driving random intensity, incorporating covariate information into temporal and spatial components, and with a residual term modelled by a shot-noise process, are considered. Such models are flexible and tractable for statistical analysis, using spatio-temporal versions of intensity and inhomogeneous K-functions, quick estimation procedures based on composite likelihoods and minimum contrast estimation, and easy simulation techniques. These advantages are demonstrated in connection with the analysis of a relatively large data set consisting of 2796 days and 5834 spatial locations of fires. The model is compared with a spatio-temporal log-Gaussian Cox point process model, and likelihood-based methods are discussed to some extent.
机译:考虑具有时空Cox点过程模型,该模型具有用于驱动随机强度的乘法结构,将协变量信息合并到时间和空间分量中,并且具有通过散粒噪声过程建模的残差项。这样的模型使用强度的时空版本和不均匀的K函数,基于复合似然和最小对比度估计的快速估计程序,以及简单的模拟技术,对于统计分析来说是灵活且易于处理的。这些优势结合对包括2796天和5834个火灾空间位置的相对较大数据集的分析得到了证明。将该模型与时空对数高斯Cox点过程模型进行了比较,并对基于似然的方法进行了一定程度的讨论。

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