@article{Chen2026, 
author = {Zhiqiang Chen and Duzhesheng Liao and Wanghui Yang},
title = {Event-triggered sliding mode control for differential-drive mobile robots},
year = {2026},
journal = {AIMS Mathematics},
volume = {11},
number = {6},
pages = {16199-16234},
keywords = {differential-drive mobile robot, finite time stability, sliding mode control, event-triggered control, disturbance observer},
url = {https://www.sciopen.com/article/10.3934/math.2026666},
doi = {10.3934/math.2026666},
abstract = {In this paper, we investigated trajectory tracking control for differential-drive mobile robots under unknown disturbances and limited communication resources. To address the singularity problem and the trade-off between high-precision finite-time tracking and communication resource conservation, we proposed a novel event-triggered sliding mode control scheme. The scheme achieved three major results: First, a specially designed sliding surface eliminated the singularity problem and ensured high convergence accuracy. Second, an adaptive disturbance observer accurately estimated unknown disturbances without requiring prior information. Third, an event-triggered mechanism significantly reduced communication demands while maintaining control performance. Importantly, the proposed controller avoided the high-gain issues present in methods. Comparative MATLAB simulations demonstrated faster convergence, smaller steady-state errors, and a favorable balance between tracking precision and communication efficiency.}
}