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Estimation of fuel flow for telematics-enabled adaptive fuel and time efficient vehicle routing

机译:估算可远程信息处理的自适应燃料和时间高效车辆路由的燃料流量

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This paper reports the development of vehicle fuel flow estimation algorithms based entirely on signals available through the standard OBD-II interface. The paper also illustrates the use of the resulting fuel flow estimates for adaptation and optimization. The fuel flow estimation algorithm functionality differs depending on the powertrain type (gasoline versus diesel, naturally aspirated versus boosted, conventional versus hybrid electric, etc.). To facilitate fuel and time efficient vehicle routing, an adaptation algorithm based on the recursive least squares (Kalman filtering) is defined. This adaptation algorithm learns the expected values and the variances of fuel consumption and travel time from multiple drives of a given vehicle over a given route segment. The use of adaptation from data reduces the need for accurate predictive modeling of vehicle fuel consumption and travel time which depend on difficult to predict and incorporate into the model traffic conditions, topographical road information, weather conditions, and inherently present vehicle-to-vehicle, driver-to-driver and fuel variability. The use of the adaptive models for optimization of vehicle travel is showcased with a simple example of optimizing time of day of departure decisions for a service vehicle. Finally, the use of a large interconnected network of adaptive models for vehicle fleet operation optimization is discussed.
机译:本文报道的完全上通过标准OBD-II界面可用信号基于车辆燃料流估计算法的开发。文中还说明了如何使用所产生的燃料流量估计适应和优化。燃料流估计算法的功能不同,取决于动力系类型(汽油与柴油,自然吸气与升压,与常规混合电动等)。为了促进燃料和时间高效的车辆路径的基础上,递归最小二乘自适应算法(卡尔曼滤波)被定义。这种适应学习算法在给定路段的预期值和燃料消耗,并从给定车辆的多个驱动器的行程时间的差异。从数据中的使用适应的减少依赖于难以预测和纳入模型的交通条件,地形道路信息,天气状况的车辆的燃料消耗和旅行时间的准确预测建模的需要,并且固有地存在车辆到车辆,司机对司机和燃料的可变性。采用自适应模型为车辆行驶的优化是展示与优化的出发决定一天的时间用于服务交通工具的一个简单的例子。最后,采用自适应模型车队运行优化的大型互连网络的讨论。

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