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A Machine-learning approach to queue length estimation using tagged customers emission

Aktivität: Vortrag oder PräsentationVortrag nach Bewerbung und AuswahlScience-to-science

Beschreibung

In this paper, we consider the problem of the queue length estimation if only some small number of a so-called tagged customers is observable. The problem is treated in terms of the queueing of vehicles behind a traffic light. A supervised machine learning, particularly an artificial neural network, is used to construct non-linear relationships between the feature and the target. For data generation we simulate an appropriate queueing system. We used an auxiliary Fourier series correction factor by training the neural network. As a result, the quality of the queue length estimation expressed in form of the empirical distribution function of an absolute error was considerably improved.
Zeitraum26 Sep. 2023
Ereignistitel26th International Conference on Distributed Computer and Communication Networks
VeranstaltungstypKonferenz
OrtÖsterreichAuf Karte anzeigen

Wissenschaftszweige

  • 101024 Wahrscheinlichkeitstheorie
  • 101 Mathematik
  • 101019 Stochastik
  • 101018 Statistik
  • 101014 Numerische Mathematik

JKU-Schwerpunkte

  • Digital Transformation