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Improving automobile insurance ratemaking using telematics: incorporating mileage and driver behaviour data

机译:使用远程信息处理改善汽车保险费率制定:合并里程和驾驶员行为数据

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We show how data collected from a GPS device can be incorporated in motor insurance ratemaking. The calculation of premium rates based upon driver behaviour represents an opportunity for the insurance sector. Our approach is based on count data regression models for frequency, where exposure is driven by the distance travelled and additional parameters that capture characteristics of automobile usage and which may affect claiming behaviour. We propose implementing a classical frequency model that is updated with telemetrics information. We illustrate the method using real data from usage-based insurance policies. Results show that not only the distance travelled by the driver, but also driver habits, significantly influence the expected number of accidents and, hence, the cost of insurance coverage. This paper provides a methodology including a transition pricing transferring knowledge and experience that the company already had before the telematics data arrived to the new world including telematics information.
机译:我们展示了如何将从GPS设备收集的数据纳入汽车保险费率制定中。基于驾驶员行为的保费率计算为保险业提供了机会。我们的方法基于频率的计数数据回归模型,其中曝光受行驶距离和捕获汽车使用特性的其他参数驱动,这些参数可能会影响索赔行为。我们建议实现一个经典的频率模型,该模型将使用遥测信息进行更新。我们将说明使用基于使用情况的保险单中的真实数据的方法。结果表明,不仅驾驶员行驶的距离远近,而且驾驶员的习惯也极大地影响了预期的事故数量,从而影响了保险费用。本文提供了一种方法,其中包括过渡定价,该定价方法可以在公司将远程信息处理数据(包括远程信息处理信息)推向新世界之前,将公司已经拥有的知识和经验转移给他们。

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