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The value of vehicle telematics data in insurance risk selection processes

机译:车载远程信息处理数据在保险风险选择过程中的价值

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The advent of the Internet of Things enables companies to collect an increasing amount of sensor generated data which creates plenty of new business opportunities. This study investigates how this sensor data can improve the risk selection process in an insurance company. More specifically, several risk assessment models based on three different data mining techniques are augmented with driving behaviour data collected from In-Vehicle Data Recorders. This study proves that including standard telematics variables significantly improves the risk assessment of customers. As a result, insurers will be better able to tailor their products to the customers' risk profile. Moreover, this research illustrates the importance of including industry knowledge, combined with data expertise, in the variable creation process. Especially when a regulator forces the use of easily interpretable data mining techniques, expert-based telematics variables are able to improve the risk assessment model in addition to the standard telematics variables. Further, the results suggest that if a manager wants to implement Usage-Based-Insurances, Pay-As-You-Drive related variables are most valuable to tailor the premium to the risk. Finally, the study illustrates that this new type of telematics-based insurance product can quickly be implemented since three months of data is already sufficient to obtain the best risk estimations. (C) 2017 Elsevier B.V. All rights reserved.
机译:物联网的出现使公司能够收集越来越多的传感器生成的数据,从而创造了许多新的业务机会。这项研究调查了这种传感器数据如何改善保险公司的风险选择过程。更具体地,基于从三种不同数据挖掘技术获得的几种风险评估模型,增加了从车载数据记录器收集的驾驶行为数据。这项研究证明,包括标准远程信息处理变量可以显着改善客户的风险评估。结果,保险公司将能够更好地根据客户的风险状况定制其产品。此外,这项研究说明了在变量创建过程中包括行业知识和数据专业知识的重要性。特别是当监管机构强制使用易于解释的数据挖掘技术时,基于专家的远程信息处理变量除标准远程信息处理变量外,还可以改善风险评估模型。此外,结果表明,如果经理想要实施基于使用量的保险,则与按量付费的变量相关的变量对于根据风险调整保费最有价值。最后,研究表明,这种新型的基于远程信息处理的保险产品可以快速实施,因为三个月的数据已经足以获得最佳的风险估计。 (C)2017 Elsevier B.V.保留所有权利。

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