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Spatio-temporal point process filtering methods with an application

机译:时空点过程过滤方法及应用

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摘要

The paper deals with point processes in space and time and the problem of filtering. Real data monitoring the spiking activity of a place cell of hippocampus of a rat moving in an environment are evaluated. Two approaches to the modelling and methodology are discussed. The first one (known from literature) is based on recursive equations which enable to describe an adaptive system. Sequential Monte Carlo methods including particle filter algorithm are available for the solution. The second approach makes use of a continuous time shot-noise Cox point process model. The inference of the driving intensity leads to a nonlinear filtering problem. Parametric models support the solution by means of the Bayesian Markov chain Monte Carlo methods, moreover the Cox model enables to detect adaptivness. Model selection is discussed, numerical results are presented and interpreted.
机译:本文讨论了时空中的点过程以及过滤问题。评估了监测在环境中移动的大鼠海马位置细胞的尖峰活动的真实数据。讨论了两种建模方法和方法。第一个(从文献中得知)基于递归方程,该递归方程能够描述自适应系统。该解决方案可以使用包括粒子滤波算法在内的顺序蒙特卡罗方法。第二种方法利用连续时间散粒噪声Cox点过程模型。驱动强度的推论导致非线性滤波问题。参数模型通过贝叶斯马尔可夫链蒙特卡洛方法支持该解决方案,此外,Cox模型能够检测适应性。讨论了模型选择,给出并解释了数值结果。

著录项

  • 来源
    《Environmetrics》 |2010年第4期|p.240-252|共13页
  • 作者单位

    Department of Probability and Mathematical Statistics, Faculty of Mathematics and Physics, Charles University, Sokolovska 83, 18675 Prague, Czech Republic;

    Department of Probability and Mathematical Statistics, Faculty of Mathematics and Physics, Charles University, Sokolovska 83, 18675 Prague, Czech Republic;

    Institute of Physiology, Academy of Sciences of the Czech Republic, Videnskd 1083, 14000 Prague, Czech Republic;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    cox point process; filtering; spatio-temporal modelling; spike;

    机译:考克斯点过程过滤时空建模穗;

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