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Using weather forecasts to forecast whether bikes are used

机译:使用天气预报预测是否使用自行车

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Although several papers have shown that bike ridership is affected by actual weather conditions, this is the first study to comprehensively investigate the impact of forecasted weather conditions on bike ridership. The results show that both actual and forecasted weather conditions can be used as useful explanatory variables for predicting bicycle usage. Even incorrect weather forecasts can impact on bike ridership, which underlines the importance of weather forecast effects for traffic planners; for example, forecasted rain can reduce bike traffic by 3.6% in periods that turn out to be rain-free. Additionally, a digital image-processing method is used to calculate the darkness of the cloud coverage displayed on weather forecast maps. The results imply that bike ridership is significantly smaller in regions with darker forecasted clouds. It is also shown that weather forecasts have a stronger impact on recreational bike traffic than on utilitarian traffic. Furthermore, various lagging and leading effects of rain forecasts are outlined. Morning rain forecasts can, for example, reduce bike ridership in midday and afternoon hours that were predicted to be rain-free. To derive these results, hourly bicycle counts from 188 automated counting stations in Germany are collected for the years 2017 and 2018. They are linked to actual weather data from Germany's National Meteorological Service and with historical weather forecasts that are deduced from weather maps of Germany's most-watched television news program. Log-linear and negative binomial regression models are then used to estimate the weather forecast effects.
机译:虽然有几篇论文已经表明,骑自行车乘客受到实际天气条件的影响,但这是一项全面调查预测天气条件对自行车乘客的影响的研究。结果表明,实际和预测的天气条件都可以用作预测自行车使用的有用解释性变量。甚至不正确的天气预报都会影响自行车乘客,这强调了交通规划者天气预报效果的重要性;例如,预测雨可以在未来无雨的时期将自行车交通减少3.6%。另外,数字图像处理方法用于计算天气预报地图上显示的云覆盖范围的黑暗。结果意味着在具有较深的预测云层的地区,骑自行车乘客明显较小。还表明天气预报对休闲自行车交通产生的强烈影响而不是功效交通。此外,概述了各种滞后和雨量预测的主要影响。例如,早上雨预测可以在前天和下午时间减少自行车骑行,预计将无雨。为了获得这些结果,2017年和2018年德国自动计数站的每小时自行车计数收集到2017年和2018年。它们与德国国家气象服务的实际天气数据有关,并且历史天气预报从德国最大的天气图推导出来 - 在线电视新闻计划。然后使用对数线性和负二进制回归模型来估计天气预报效果。

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