String Stability Under Actuator Saturation on Straight Level Roads: Sufficient Conditions and Optimal Trajectory Generation
Loading...

Date
2022
Authors
Journal Title
Journal ISSN
Volume Title
Publisher
Ieee-inst Electrical Electronics Engineers inc
Open Access Color
Green Open Access
No
OpenAIRE Downloads
OpenAIRE Views
Publicly Funded
No
Abstract
The heterogeneity of vehicles is an important factor when realizing cooperative adaptive cruise control (CACC) in practice. Specifically, it has to be considered that platoons generally consist of vehicles with both different dynamic properties and actuator limits on the engine and braking force, which is expected to have a negative impact on important properties such as string stability. Accordingly, the subject of this paper is the preservation of string stability for CACC in heterogeneous vehicle strings with potential actuator saturation. To this end, the paper formulates a velocity-dependent force bound that enables the derivation of sufficient conditions for preserving string stability during velocity changes of heterogeneous platoons. These conditions are then used for the analytical computation of trajectories for time-optimal velocity changes. The formal results of the paper are supported by an illustrative simulation study.
Description
Bingol, Hilal/0000-0001-8759-1656; Schmidt, Klaus/0000-0003-3840-2737
Keywords
Cooperative Adaptive Cruise Control (Cacc), Minimum-Time Optimal Control, String Stability, Actuator Saturation, Force Bound
Fields of Science
0502 economics and business, 05 social sciences
Citation
Bingol, Hilal; Schmidt, Klaus W. (2022). "String Stability Under Actuator Saturation on Straight Level Roads: Sufficient Conditions and Optimal Trajectory Generation", IEEE Transactions on Intelligent Transportation Systems, Vol.23, No.12, pp. 24588-24598.
WoS Q
Q1
Scopus Q
Q1

OpenCitations Citation Count
2
Source
IEEE Transactions on Intelligent Transportation Systems
Volume
23
Issue
12
Start Page
24588
End Page
24598
PlumX Metrics
Citations
Scopus : 4
Captures
Mendeley Readers : 1
SCOPUS™ Citations
4
checked on Feb 24, 2026
Web of Science™ Citations
4
checked on Feb 24, 2026
Page Views
1
checked on Feb 24, 2026
Google Scholar™


