Self-Regulating Demand and Supply Equilibrium in Joint Simulation of Travel Demand and a Ride-Pooling Service

Author:

Wilkes Gabriel1,Engelhardt Roman2,Briem Lars1,Dandl Florian2,Vortisch Peter1,Bogenberger Klaus2,Kagerbauer Martin1

Affiliation:

1. Karlsruhe Institute of Technology (KIT), Karlsruhe, Germany

2. Technical University of Munich, Munich, Germany

Abstract

This paper presents the coupling of a state-of-the-art ride-pooling fleet simulation package with the mobiTopp travel demand modeling framework. The coupling of both models enables a detailed agent- and activity-based demand model, in which travelers have the option to use ride-pooling based on real-time offers of an optimized ride-pooling operation. On the one hand, this approach allows the application of detailed mode-choice models based on agent-level attributes coming from mobiTopp functionalities. On the other hand, existing state-of-the-art ride-pooling optimization can be applied to utilize the full potential of ride-pooling. The introduced interface allows mode choice based on real-time fleet information and thereby does not require multiple iterations per simulated day to achieve a balance of ride-pooling demand and supply. The introduced methodology is applied to a case study of an example model where in total approximately 70,000 trips are performed. Simulations with a simplified mode-choice model with varying fleet size (0–150 vehicles), fares, and further fleet operators’ settings show that (i) ride-pooling can be a very attractive alternative to existing modes and (ii) the fare model can affect the mode shifts to ride-pooling. Depending on the scenario, the mode share of ride-pooling is between 7.6% and 16.8% and the average distance-weighed occupancy of the ride-pooling fleet varies between 0.75 and 1.17.

Publisher

SAGE Publications

Subject

Mechanical Engineering,Civil and Structural Engineering

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1. Driven by Motivation: Understanding Perceived Mobility Need Satisfaction in On-Demand Ridepooling;Proceedings of the 16th International Conference on Automotive User Interfaces and Interactive Vehicular Applications;2024-09-11

2. RidePy: A fast and modular framework for simulating ridepooling systems;Journal of Open Source Software;2024-05-06

3. Taming travel time fluctuations through adaptive stop pooling;Journal of Physics: Complexity;2024-04-10

4. Evaluating the travel impacts of a shared mobility system for remote workers;Transportation Research Part D: Transport and Environment;2023-08

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