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Exploring Spatial and Social Factors of Crime: A Case Study of Taipei City

机译:探索犯罪的空间与社会因素 - 以台北市为例

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Recognizing the significance of transparency and accessibility of government information, the Taipei Government recently published city-wide crime data to encourage relevant research. In this project, we explore the underlying relationships between crimes and various geographic, demographic and socioeconomic factors. First we collect a total of 25 datasets from the City and other publicly available sources, and select statistically significant features via correlation tests and feature selection techniques. With the selected features, we use machine learning techniques to build a data-driven model that is capable of describing the relationship between high crime rate and the various factors. Our results demonstrate the effectiveness of the proposed methodology by providing insights into interactions between key geographic, demographic and socioeconomic factors and city crime rate. The study shows the top three factors affecting crime rate are educational attainment, marital status, and distance to schools. The result is presented to the Taipei City officials for future government policy decision making.
机译:台北政府最近发表了城市范围犯罪数据,认识到政府信息的透明度和可达性的意义,以鼓励有关研究。在这个项目中,我们探讨了犯罪和各种地理,人口统计和社会经济因素之间的潜在关系。首先,我们共收集来自城市和其他公共可用来源的25个数据集,并通过相关测试和特征选择技术选择统计上有很大的功能。使用所选功能,我们使用机器学习技术来构建能够描述高犯罪率与各种因素之间关系的数据驱动模型。我们的结果通过在关键地理,人口统计和社会经济因素和城市犯罪率与城市犯罪率之间的相互作用,证明了提出的方法的有效性。该研究表明,影响犯罪率的前三个因素是教育程度,婚姻状况和与学校的距离。结果呈现给台北市官员,以便将来政府政策决策制定。

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