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首页> 外文期刊>ACM Transactions on Graphics >A Statistical Similarity Measure for Aggregate Crowd Dynamics
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A Statistical Similarity Measure for Aggregate Crowd Dynamics

机译:总体人群动态的统计相似性度量

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摘要

We present an information-theoretic method to measure the similarity between a given set of observed, real-world data and visual simulation technique for aggregate crowd motions of a complex system consisting of many individual agents. This metric uses a two-step process to quantify a simulator’s ability to reproduce the collective behaviors of the whole system, as observed in the recorded realworld data. First, Bayesian inference is used to estimate the simulation states which best correspond to the observed data, then a maximum likelihood estimator is used to approximate the prediction errors. This process is iterated using the EM-algorithm to produce a robust, statistical estimate of the magnitude of the prediction error as measured by its entropy (smaller is better). This metric serves as a simulator-to-data similarity measurement. We evaluated the metric in terms of robustness to sensor noise, consistency across different datasets and simulation methods, and correlation to perceptual metrics.
机译:我们提出了一种信息理论方法来测量给定的一组观察到的,真实世界的数据与视觉模拟技术之间的相似性,以用于由许多个体组成的复杂系统的总体人群运动。该指标使用两步过程来量化仿真器重现整个系统的集体行为的能力,如在记录的真实世界数据中所观察到的那样。首先,使用贝叶斯推断来估计与观察数据最对应的模拟状态,然后使用最大似然估计器来近似预测误差。使用EM算法对该过程进行迭代,以生成可靠的统计估计值,该估计值由预测熵的熵来衡量(越小越好)。该度量用作模拟器到数据的相似性度量。我们根据传感器噪声的鲁棒性,不同数据集和仿真方法之间的一致性以及与感知指标的相关性来评估指标。

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