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Identification of the Social Duality: Street Criminality and High Vehicle Traffic in Lima City by Using Artificial Intelligence Through the Fisher-Snedecor Statistics and Shannon’s Entropy

机译:通过Fisher-Snedecor统计和Shannon的熵利用人工智能,探索社会二元性:街道犯罪和利马市高速公路

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When Shannon's entropy and Fisher-Snedecor statistics are working together, this can enter into a scheme of artificial intelligence to tackle social problems such as the identification of worrisome spatial points where street criminality and vehicle's chaos is happening sharply. In this paper we construct a computational scheme to anticipate these abnormal social events. For this end we use Google-earth maps. The Fischer-Snedecor and Shannon's entropy mathematical machinery have served to build schemes of probabilities to identify these social events. When computational simulations are done we perform matching of output `s simulation and official data. For the case of Lima city our modeling matches the one from real data with an accuracy of order of 85%. This result is translated as the capability of the stochastic models to analyze and measure social abnormalities such as street criminality and vehicle traffic in large cities using artificial intelligence in conjunction to stochastic formalisms.
机译:当香农的熵和Fisher-Snedecor统计数据在一起时,这可以进入一个人工智能方案,以解决社会问题,例如识别令人担忧的空间点,街头犯罪和车辆的混乱正在大幅发生。在本文中,我们构建了一种计算方案,以期望这些异常的社交事件。为此,我们使用谷歌地球地图。 Fischer-Snedecor和Shannon的熵数学机械已经致力于构建概率方案来识别这些社交活动。完成计算仿真时,我们执行输出仿真和官方数据的匹配。对于利马市的情况,我们的建模与真实数据相匹配,准确性为85 %。该结果被转化为随机模型的能力,分析和测量大城市的街道犯罪和车辆交通等社会异常,与随机形式主义一起使用人工智能。

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