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A System for Collecting and Analyzing Road Accidents Big Data

机译:道路交通事故大数据采集与分析系统

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Many factors explain traffic accidents, such as the type of the accident site, its environment, the driver's behavior, and other uncertain complex factors. As a result, the occurrence of road accidents is non-linear, so it is necessary to explore the correlation between data from many aspects to minimize the risk. After data preprocessing following a classification using the datamining tools, relevant information can be deduced about the causes of the high-frequency accidents. Depending on the results obtained, we can verify the accuracy of the extracted information, and this can help predict new situations with similar data in the future. The aim is to choose the most accurate extraction process, by analyzing the characteristics of the data and their relationship with the analysis and the extraction process. In this paper, we propose a decision-making system for the traffic accident data analysis in order to extract information relevant to the prevention of the road risk. This system is based on appropriate datamining techniques for collecting, pre-processing and exploring accident data to categorize road accidents and identify the most problematic sites.
机译:许多因素可以解释交通事故,例如事故现场的类型,其环境,驾驶员的行为以及其他不确定的复杂因素。因此,道路交通事故的发生是非线性的,因此有必要从多个方面探讨数据之间的相关性,以最大程度地降低风险。在使用数据挖掘工具进行分类之后的数据预处理之后,可以推断出有关高频事故原因的相关信息。根据获得的结果,我们可以验证所提取信息的准确性,这可以帮助将来使用相似数据预测新情况。目的是通过分析数据的特性及其与分析和提取过程的关系来选择最准确的提取过程。在本文中,我们提出了一种用于交通事故数据分析的决策系统,以提取与预防道路风险有关的信息。该系统基于适当的数据挖掘技术,用于收集,预处理和探索事故数据,以对道路事故进行分类并确定最有问题的地点。

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