single-jc.php

JACIII Vol.27 No.3 pp. 411-420
doi: 10.20965/jaciii.2023.p0411
(2023)

Research Paper:

Parking Robot Path-Tracking System Based on Discrete PID Algorithm

Dianjun Wang* ORCID Icon, Jiahao Chen*, Ya Chen*,† ORCID Icon, Xingkang Zheng*, Liang Wang*, and Lele Wang**

*Beijing Institute of Petrochemical Technology
No.19 Qingyuan North Street, Huangcun Town, Daxing District, Beijing 102617, China

Corresponding author

**Stäubli (Hangzhou) Mechatronics Co., Ltd.
123 Weiken Street, Hangzhou Economic and Technological Development Zone, Hangzhou, Zhejiang 310018, China

Received:
December 25, 2022
Accepted:
January 16, 2023
Published:
May 20, 2023
Keywords:
double-steering wheel parking robot, discrete PID path-tracking algorithm, kinematics, track calculation
Abstract

To improve the space utilization rates of intelligent stereo garages, their key execution equipment—parking robots—must be highly flexible; therefore, the chassis of parking robots use steering wheel systems. However, this design increases the complexity of robot motion control and path-tracking systems. Because of the large sizes of parking robots, large position and angle deviations can lead to derailment events, posing significant risk to users. Thus, in this study, based on the characteristics required for parking robots, a diagonally arranged parking robot with double steering wheels was developed and its kinematic model was established using the velocity–geometry method. For the positioning of the robot in a garage, a fusion positioning algorithm based on quick response (QR) codes and track calculation was used, considering the requirements of real-time response and accuracy. A discrete proportional-integral-derivative (PID) path-tracking algorithm for the synchronous compensation of the position and angle deviations was also devised. Using the Visual C++ platform, a path-tracking system that uses an industrial computer and motion control card was developed. Experiments on the path-tracking capability of the parking robot showed that, using the discrete PID path-tracking algorithm, it can track a planned path well. On Z- and U-type paths, its maximum tracking deviations were reduced by 84.8% and 64.0%, compared with the unused path-tracking system, reaching 10.4 mm and 10.9 mm, respectively. Thus, the tracking accuracy was significantly improved, proving that the developed robot well satisfies the path-tracking requirements of parking robots.

Parking robot path-tracking test

Parking robot path-tracking test

Cite this article as:
D. Wang, J. Chen, Y. Chen, X. Zheng, L. Wang, and L. Wang, “Parking Robot Path-Tracking System Based on Discrete PID Algorithm,” J. Adv. Comput. Intell. Intell. Inform., Vol.27 No.3, pp. 411-420, 2023.
Data files:
References
  1. [1] Z. Ning et al., “Vehicle pose estimation algorithm for parking automated guided vehicle,” Int. J. Adv. Robot. Syst., Vol.17, No.1, 2020. https://doi.org/10.1177/1729881419891335
  2. [2] J. Liang et al., “Review on critical technologies of robot-based intelligent garages,” J. Mech. Eng., Vol.58, No.3, pp. 1-20, 2022 (in Chinese).
  3. [3] H. Ye et al., “Linear model predictive control of automatic parking path tracking with soft constraints,” Int. J. Adv. Robot. Syst., Vol.16, No.3, 2019. https://doi.org/10.1177/1729881419852201
  4. [4] A. Li et al., “Kinematic analysis and trajectory tracking control for skid-steered mobile robots,” Mach. Des. Manuf., Vol.2018, No.11, pp. 253-256, 2018 (in Chinese). https://doi.org/10.19356/j.cnki.1001-3997.2018.11.065
  5. [5] J. Yuan, F. Sun, and Y. Huang, “Trajectory generation and tracking control for double-steering tractor–trailer mobile robots with on-axle hitching,” IEEE Trans. Ind. Electron., Vol.62, No.12, pp. 7665-7677, 2015. https://doi.org/10.1109/TIE.2015.2455016
  6. [6] N. Wu et al., “Study on the tracking algorithm and motion characteristics of heavy duty AGV vehicle,” J. Chongqing Univ. Technol. (Nat. Sci.), Vol.32, No.10, pp. 53-57, 2018 (in Chinese).
  7. [7] Y. D. Setiawan et al., “Path tracking controller design of four wheel independent steering automatic guided vehicle,” Int. J. Control Autom. Syst., Vol.14, No.6, pp. 1550-1560, 2016. https://doi.org/10.1007/s12555-015-0216-7
  8. [8] S. Mellah et al., “Health state monitoring of 4-mecanum wheeled mobile robot actuators and its impact on the robot behavior analysis,” J. Intell. Robot. Syst., Vol.102, No.4, Article No.86, 2021. https://doi.org/10.1007/s10846-021-01446-7
  9. [9] D. Wang et al., “Intelligence that six train heavy loads can be charged automatically robot that parks,” CN Patent, CN208534141U, 2019.
  10. [10] R. Shenbagalakshmi, S. Vijayalakshmi, and K. Geetha, “Design and analysis of discrete PID controller for Luo converter,” Int. J. Power Electron., Vol.11, No.3, pp. 283-298, 2020. https://doi.org/10.1504/IJPELEC.2020.10027748

*This site is desgined based on HTML5 and CSS3 for modern browsers, e.g. Chrome, Firefox, Safari, Edge, Opera.

Last updated on Apr. 22, 2024