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A Bayesian approach to modeling lost person behaviors based on terrain features in Wilderness Search and Rescue

机译:贝叶斯方法基于荒野搜索与救援中的地形特征对迷失者的行为进行建模

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In Wilderness Search and Rescue (WiSAR), the incident commander (IC) creates a probability distribution map of the likely location of the missing person. This map is important because it guides the IC in allocating search resources and coordinating efforts, but it often depends almost exclusively on the missing person profile, prior experience, and subjective judgment. We propose a Bayesian model that uses publicly available terrain features data to help model lost-person behaviors. This approach enables domain experts to encode uncertainty in their prior estimations and also makes it possible to incorporate human behavior data collected in the form of posterior distributions, which are used to build a first-order Markov transition matrix for generating a temporal, posterior predictive probability distribution map. The map can work as a base to be augmented by search and rescue workers to incorporate additional information. Using a Bayesian x~2 test for goodness-of-fit, we show that the model fits a synthetic dataset well. This model also serves as a foundation for a larger framework that allows for easy expansion to incorporate additional factors such as season and weather conditions that affect the lost-person's behaviors.
机译:在Wilderness Search and Rescue(WiSAR)中,事件指挥官(IC)创建失踪人员可能所在位置的概率分布图。该地图很重要,因为它可以指导IC分配搜索资源和协调工作,但是它通常几乎完全取决于失踪人员的个人资料,先前的经验和主观判断。我们提出了一种贝叶斯模型,该模型使用公开可用的地形特征数据来帮助模拟失物行为。这种方法使领域专家可以在其先前的估计中对不确定性进行编码,并且还可以将以后验分布形式收集的人类行为数据合并在一起,这些数据用于建立一阶马尔可夫转换矩阵,以生成时间后验预测概率分布图。该地图可以用作搜索和救援人员扩充的基础,以合并其他信息。使用贝叶斯x〜2检验拟合优度,我们表明模型很好地拟合了合成数据集。该模型还为更大的框架提供了基础,该框架允许轻松扩展以合并影响失者行为的其他因素,例如季节和天气条件。

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