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A method for estimating carbon dioxide emissions based on low frequency GPS trajectories

机译:一种基于低频GPS轨迹的二氧化碳排放量估算方法

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Road transportation is one of the main source of carbon dioxide emissions, and it is imperative to estimate the carbon dioxide contribution of road transportation precisely, so that carbon dioxide emission-reduction measures can be designed and implemented appropriately. Microscopic emission models and GPS trajectories are widely used in estimating carbon dioxide emissions. Microscopic emission models require second-by-second speed profiles. But most GPS trajectories are collected in low frequency (e.g., 30s) at present. Traditionally, low frequency GPS trajectories are interpolated to derive second-by-second speed profiles. The estimation error of this traditional method is much affected by GPS sampling time interval. This paper provides a new method estimating carbon dioxide emissions from vehicles based on low frequency GPS trajectories. The main task is to estimate the vehicle speed in each road segments. We formulate the problem of estimating the vehicle speed in each road segments into a sequential decision problem, which can be solved by genetic algorithm and linear programming method. Test results show that the method proposed by us is more accurate than the traditional method.
机译:公路运输是二氧化碳排放的主要来源之一,必须准确估算公路运输对二氧化碳的贡献,以便可以设计和实施减少二氧化碳排放的措施。微观排放模型和GPS轨迹广泛用于估算二氧化碳排放量。微观排放模型需要每秒的速度曲线。但是目前,大多数GPS轨迹都是以低频(例如30s)收集的。传统上,对低频GPS轨迹进行插值以得出每秒的速度曲线。这种传统方法的估计误差受GPS采样时间间隔的影响很大。本文提供了一种基于低频GPS轨迹估算车辆二氧化碳排放量的新方法。主要任务是估计每个路段的车速。我们将估计每个路段的车速的问题公式化为一个顺序决策问题,该问题可以通过遗传算法和线性规划方法解决。测试结果表明,我们提出的方法比传统方法更准确。

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