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A New Weighting Approach Based on Rough Set Theory and Granular Computing for Road Safety Indicator Analysis

机译:基于粗糙集理论和粒计算的道路安全指标分析新权重方法

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The steadily increasing volume of road traffic has resulted in many safety problems. Road safety performance indicators may contribute to better understand current safety conditions and monitor the effect of policy interventions. A composite road safety performance indicator is desired to reduce the dimensions of selected risk factors. The essential step for constructing such a composite indicator is to assign a suitable weight to each indicator. However, no agreement on weighting and aggregation in the composite indicator literature has been reached so far. Granular computing is an emerging computing paradigm of information processing that makes use of granules in problem solving. Rough set theory is considered as one of the leading special cases of granular computing approaches. In this article, a new weighting approach based on rough set theory and granular computing is introduced for road safety indicator analysis. The proposed method is applied to a real case study of 21 European countries of which only the class information (not the real values) on all indicators is used to calculate the weights. Experimental evaluation shows that it is an efficient approach to combine individual road safety performance indicators into a composite one.
机译:道路交通量的稳定增长已导致许多安全问题。道路安全绩效指标可能有助于更好地了解当前的安全状况并监控政策干预措施的效果。需要一种综合的道路安全绩效指标来减少选定风险因素的规模。构建此类综合指标的必要步骤是为每个指标分配合适的权重。但是,到目前为止,在综合指标文献中尚未就加权和汇总达成共识。粒度计算是一种新兴的信息处理计算范式,它在解决问题时利用了粒度。粗糙集理论被认为是粒度计算方法的主要特例之一。本文介绍了一种基于粗糙集理论和颗粒计算的加权方法,用于道路安全指标分析。所提出的方法适用于21个欧洲国家的真实案例研究,其中仅使用所有指标上的类别信息(而不是真实值)来计算权重。实验评估表明,这是将各个道路安全绩效指标组合为一个综合指标的有效方法。

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