English

Constraint-Aware Discrete-Time PID Gain Optimization for Robotic Joint Control Under Actuator Saturation

Robotics 2026-02-06 v3

Abstract

The precise regulation of rotary actuation is fundamental in autonomous robotics, yet practical PID loops deviate from continuous-time theory due to discrete-time execution, actuator saturation, and small delays and measurement imperfections. We present an implementation-aware analysis and tuning workflow for saturated discrete-time joint control. We (i) derive PI stability regions under Euler and exact zero-order-hold (ZOH) discretizations using the Jury criterion, (ii) evaluate a discrete back-calculation anti-windup realization under saturation-dominant regimes, and (iii) propose a hybrid-certified Bayesian optimization workflow that screens analytically unstable candidates and behaviorally unsafe transients while optimizing a robust IAE objective with soft penalties on overshoot and saturation duty. Baseline sweeps (τ=1.0\tau=1.0~s, Δt=0.01\Delta t=0.01~s, u[10,10]u\in[-10,10]) quantify rise/settle trends for P/PI/PID. Under a randomized model family emulating uncertainty, delay, noise, quantization, and tighter saturation, robustness-oriented tuning improves median IAE from 0.8430.843 to 0.4300.430 while keeping median overshoot below 2%2\%. In simulation-only tuning, the certification screen rejects 11.6%11.6\% of randomly sampled gains within bounds before full robust evaluation, improving sample efficiency.

Keywords

Cite

@article{arxiv.2601.18639,
  title  = {Constraint-Aware Discrete-Time PID Gain Optimization for Robotic Joint Control Under Actuator Saturation},
  author = {Ojasva Mishra and Xiaolong Wu and Min Xu},
  journal= {arXiv preprint arXiv:2601.18639},
  year   = {2026}
}

Comments

Pending IEEE Transactions on Robotics Publication

R2 v1 2026-07-01T09:20:41.061Z