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Naturalistic driving cycle synthesis by Markov chain of different orders

机译:自然主义驾驶循环合成Markov链条不同订单

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>This paper evaluates the performance of using Markov chain of different orders to synthesise real-world representative drive cycles from numerous naturalistic drive cycles. The representative drive cycles can be a valuable input into the design of powertrains, especially for plug-in hybrid electric vehicle (PHEV) and electric vehicle (EV). Their onboard cost-sensitive electric components, such as battery, require an appropriate sizing by understanding how people drive in naturalistic settings. Applying representative drive cycles instead of federal certification drive cycles provides flexibility of drive cycle length and ensures realistic cycle aggressiveness. Even though Markov chain has been widely used to synthesise representative drive cycles, the effects of different orders have not been systematically compared. Based on a publicly accessible portion of GPS-enhanced regional household travel survey, after statistical hypothesis tests, the results show that higher degree of representativeness can be achieved with a 3-order Markov chain compared to a 2-order Markov chain. These findings help to improve the accuracy of cycle synthesis for PHEV and EV analysis.
机译:>本文评估了使用不同订单的马尔可夫链的性能,从许多自然主义驱动周期中合成真实世界代表性的驱动循环。代表性的驱动循环可以是有价值的输入到电动机设计中,特别是用于插入式混合动力电动车(PHEV)和电动车辆(EV)。它们的船上成本敏感的电气组件(如电池)需要通过了解人们在自然化环境中驾驶的方式来适当的尺寸。应用代表驱动循环而不是联邦认证驱动循环提供了驱动周期长度的灵活性,并确保了现实的周期侵略性。尽管Markov链已被广泛用于合成代表性的驱动循环,但不同订单的影响尚未得到系统化。基于GPS增强的区域家庭旅行调查的公开可访问部分,结果表明,与2阶马尔可夫链相比,使用3阶马尔可夫链可以实现更高程度的代表性。这些发现有助于提高PHEV和EV分析的循环合成的准确性。

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