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A Repeated Game Freeway Lane Changing Model

机译:重复游戏高速公路车道变更模型

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摘要

Lane changes are complex safety- and throughput-critical driver actions. Most lane-changing models deal with lane-changing maneuvers solely from the merging driver’s standpoint and thus ignore driver interaction. To overcome this shortcoming, we develop a game-theoretical decision-making model and validate the model using empirical merging maneuver data at a freeway on-ramp. Specifically, this paper advances our repeated game model by using updated payoff functions. Validation results using the Next Generation SIMulation (NGSIM) empirical data show that the developed game-theoretical model provides better prediction accuracy compared to previous work, giving correct predictions approximately 86% of the time. In addition, a sensitivity analysis demonstrates the rationality of the model and its sensitivity to variations in various factors. To provide evidence of the benefits of the repeated game approach, which takes into account previous decision-making results, a case study is conducted using an agent-based simulation model. The proposed repeated game model produces superior performance to a one-shot game model when simulating actual freeway merging behaviors. Finally, this lane change model, which captures the collective decision-making between human drivers, can be used to develop automated vehicle driving strategies.
机译:更改车道是对安全和吞吐量至关重要的复杂驾驶员行为。大多数换道模型仅从合并驾驶员的角度来处理换道操作,因此忽略了驾驶员的交互作用。为了克服这一缺点,我们开发了一种博弈论决策模型,并在高速公路匝道上使用经验合并机动数据验证了该模型。具体而言,本文通过使用更新的收益函数来改进我们的重复游戏模型。使用下一代模拟(NGSIM)经验数据的验证结果表明,与以前的工作相比,开发的游戏理论模型提供了更好的预测准确性,大约有86%的时间给出了正确的预测。此外,敏感性分析证明了模型的合理性及其对各种因素变化的敏感性。为了提供重复游戏方法的好处的证据,该方法考虑了先前的决策结果,使用基于代理的仿真模型进行了案例研究。在模拟实际高速公路合并行为时,所提出的重复博弈模型产生的性能优于单发博弈模型。最后,这种捕获了人类驾驶员之间的集体决策的车道变更模型可用于开发自动车辆驾驶策略。

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