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On the requirements on spatial accuracy and sampling rate for transport mode detection in view of a shift to passive signalling data

机译:关于传输模式检测的空间精度和采样率的要求,鉴于转移到被动信令数据

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摘要

GPS based campaigns have been hailed as an alternative to transportation surveys that promise relatively high accuracy at a relatively low burden on the participants and fewer forgotten trips. However they still necessitate the recruitment of participants and are thus potentially biased and certainly not encompassing significant parts of the population. Given the high penetration of mobile phones, passive tracking by telephone providers would alleviate those two shortcomings at the cost of reduced sampling frequency and positional accuracy. The trade-off in quality has not yet been quantified and therefore recommendations on sensible thresholds are not yet available. In this study therefore, instead of presenting yet another method for mode of transport classification, we therefore compare the performance of existing mode detection schemes under deteriorating sampling rates and positional accuracies. As a possibility to compensate for the deteriorating signal we also calculate features from users' positional histories that could be beneficial if their behaviour is repetitive. The evaluation is not only based on pointwise accuracy, but includes quality measures that pertain to trips as a whole. We find that the necessary accuracy and sampling rate for applications will depend on whether the information of whole trajectories can be used, or whether only the current information is available. The former being relevant to ex-post analyses while the latter situation appears more frequently in near-time analyses. For segmentwise classification, there is no major impact on the quality of the classification by the tested levels of spatial accuracies as long as the sampling intervals can be kept at or below a minute, whereas for point based classification the sampling interval should be between 30 s and a minute and increasing spatial accuracy always improves the classification.
机译:基于GPS的运动被誉为交通调查的替代品,这承诺在参与者的相对较低的负担和更少的被遗忘的旅行中对比较高的准确性。然而,他们仍然需要招募参与者,因此可能偏见,肯定不包括人口的重要部分。鉴于手机的高渗透,电话提供商的被动跟踪将以降低的采样频率和位置准确度降低这两个缺点。质量的权衡尚未量化,因此尚未提供有关明智阈值的建议。因此,在这项研究中,不是呈现另一种用于传输分类模式的方法,因此我们在恶化的采样率和位置精度下比较现有模式检测方案的性能。作为补偿恶化信号的可能性,我们还计算用户位置历史的特征,如果它们的行为是重复的,可能是有益的。评估不仅基于点亮精度,而且包括涉及整体旅行的质量措施。我们发现,应用程序的必要准确性和采样率取决于是否可以使用整个轨迹的信息,或者是否只有当前信息可用。前者与前后分析相关,而后一种情况在近期分析中更频繁地出现。对于分段分类,只要采样间隔在或低于一分钟,就没有测试的空间精度的测试水平对分类的质量没有重大影响,而基于点的分类,则采样间隔应在30秒之间并且一分钟并增加空间精度总是提高分类。

著录项

  • 来源
    《Transportation research》 |2020年第5期|99-117|共19页
  • 作者单位

    Univ Zurich Winterthurerstr 190 CH-8057 Zurich Switzerland;

    Swiss Fed Inst Technol Stefano Franscini Pl 5 CH-8093 Zurich Switzerland;

    Univ Zurich Winterthurerstr 190 CH-8057 Zurich Switzerland;

    Swiss Fed Inst Technol Stefano Franscini Pl 5 CH-8093 Zurich Switzerland;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Transportation mode detection; Data quality; Passive tracking;

    机译:运输模式检测;数据质量;被动跟踪;

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