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Automated Box-Jenkins forecasting tool with an application for passenger demand in urban rail systems

机译:Box-Jenkins自动化预测工具及其在城市轨道交通系统中的乘客需求应用

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Efficient management of public transportation systems is one of the most important requirements in rapidly urbanizing world. Forecasting the demand for transportation is critical in planning and scheduling efficient operations by transportation systems managers. In this paper, a time series forecasting framework based on Box-Jenkins method is developed for public transportation systems. We present a framework that is comprehensive, automated, accurate, and fast. Moreover, it is applicable to any time series forecasting problem regardless of the application sector. It substitutes the human judgment with a combination of statistical tests, simplifies the time-consuming model selection part with enumeration, and it applies a number of comprehensive tests to select an accurate model. We implemented all steps of the proposed framework in MATLAB as a comprehensive forecasting tool. We tested our model on real passenger traffic data from Istanbul Metro. The numerical tests show the proposed framework is very effective and gives higher accuracy than the other models that have been used in many studies in the literature. Copyright (C) 2015 John Wiley & Sons, Ltd.
机译:在快速城市化的世界中,公共交通系统的有效管理是最重要的要求之一。预测运输需求对于运输系统经理规划和安排高效运营至关重要。本文为公共交通系统开发了基于Box-Jenkins方法的时间序列预测框架。我们提出了一个全面,自动化,准确和快速的框架。而且,它适用于任何时间序列预测问题,而与应用程序领域无关。它用统计测试的组合代替了人工判断,并通过枚举简化了费时的模型选择部分,并且应用了许多综合测试来选择准确的模型。我们在MATLAB中将建议的框架的所有步骤实现为全面的预测工具。我们根据来自伊斯坦布尔地铁的实际旅客流量数据测试了我们的模型。数值测试表明,与文献中许多研究中使用的其他模型相比,所提出的框架非常有效并且具有更高的准确性。版权所有(C)2015 John Wiley&Sons,Ltd.

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