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MADM-based smart parking guidance algorithm

机译:基于MADM的智能停车引导算法

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摘要

In smart parking environments, how to choose suitable parking facilities with various attributes to satisfy certain criteria is an important decision issue. Based on the multiple attributes decision making (MADM) theory, this study proposed a smart parking guidance algorithm by considering three representative decision factors (i.e., walk duration, parking fee, and the number of vacant parking spaces) and various preferences of drivers. In this paper, the expected number of vacant parking spaces is regarded as an important attribute to reflect the difficulty degree of finding available parking spaces, and a queueing theory-based theoretical method was proposed to estimate this expected number for candidate parking facilities with different capacities, arrival rates, and service rates. The effectiveness of the MADM-based parking guidance algorithm was investigated and compared with a blind search-based approach in comprehensive scenarios with various distributions of parking facilities, traffic intensities, and user preferences. Experimental results show that the proposed MADM-based algorithm is effective to choose suitable parking resources to satisfy users’ preferences. Furthermore, it has also been observed that this newly proposed Markov Chain-based availability attribute is more effective to represent the availability of parking spaces than the arrival rate-based availability attribute proposed in existing research.
机译:在智能停车环境中,如何选择具有各种属性的合适停车设施以满足特定条件是一个重要的决策问题。该研究基于多属性决策(MADM)理论,通过考虑三个代表性决策因素(即步行时间,停车费和空置停车位的数量)以及驾驶员的各种偏好,提出了一种智能停车引导算法。本文将空置停车位的预期数量作为反映寻找可用停车位难度的重要属性,并提出了一种基于排队论的理论方法来估计不同容量的候选停车位的预期数量。 ,到达率和服务率。研究了基于MADM的停车导航算法的有效性,并将其与基于盲搜索的方法在停车设施,交通强度和用户偏好的各种分布的综合场景中进行了比较。实验结果表明,所提出的基于MADM的算法可以有效地选择合适的停车资源以满足用户的偏好。此外,还已经观察到,这种新提出的基于马尔可夫链的可用性属性比现有研究中提出的基于到达率的可用性属性更有效地表示停车位的可用性。

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