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首页> 外文期刊>IEEE Transactions on Vehicular Technology >Using Real-World Driving Databases to Generate Driving Cycles With Equivalence Properties
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Using Real-World Driving Databases to Generate Driving Cycles With Equivalence Properties

机译:使用真实世界的驾驶数据库生成具有等效属性的驾驶周期

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摘要

Due to the increasing complexity of vehicle design, understanding driver behavior and driving patterns is becoming increasingly more important. Therefore, a large amount of test driving is performed, which together with recordings of normal driving, results in large databases of recorded drives. A fundamental question is how to make best use of these data to devise driving cycles suitable in the development process of vehicles. One way is to generate driving cycles that are representative for the data or for a suitable subset of the data, e.g., regarding geographical location, driving distance, speed range, or many other possible selection variables. Further, to make a fair comparison on two such driving cycles possible, another fundamental requirement is that they should have similar excitation of the vehicle. A key contribution here is an algorithm that combines the two given objectives. A formulation with Markov processes is used to obtain a condensed and effective characterization of the database and to generate candidate driving cycles (CDCs). In addition to that is a method transforming a candidate to an equivalent driving cycle (EqDC) with desired excitation. The method is a general approach but is here based on the components of the mean tractive force (MTF), and this is motivated by a hardware-in-the-loop experiment showing the strong relevance of these MTF components regarding fuel consumption. The result is a new method that combines the generation of driving cycles using real-world driving cycles with the concept of EqDCs.
机译:由于车辆设计的复杂性越来越高,因此了解驾驶员的行为和驾驶方式变得越来越重要。因此,执行了大量的测试驱动,这与常规驱动的记录一起导致所记录驱动的大型数据库。一个基本的问题是如何充分利用这些数据来设计适合车辆开发过程的驾驶周期。一种方式是生成代表数据或数据的合适子集的驾驶循环,例如关于地理位置,驾驶距离,速度范围或许多其他可能的选择变量。此外,为了在两个这样的行驶周期上进行合理的比较,另一个基本要求是它们应该具有类似的车辆激励。这里的主要贡献是结合了两个给定目标的算法。具有马尔可夫过程的公式可用于获得数据库的简洁有效描述,并生成候选驾驶周期(CDC)。除此之外,还有一种将候选对象转换为具有所需激励的等效驱动周期(EqDC)的方法。该方法是一种通用方法,但此处基于平均牵引力(MTF)的分量,这是由硬件在环实验所激发的,该实验显示了这些MTF分量与燃料消耗之间的强烈相关性。结果是一种新方法,该方法将使用实际驾驶周期的驾驶周期生成与EqDC的概念相结合。

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