Balancing of Humanoid with Object Mass: Trade-off Analyses and Lifting Control

2026-07-31Robotics

Robotics
AI summary

The authors studied how the weight of an object affects a humanoid robot's balance when lifting or carrying it. They created a mathematical model to understand how the object's mass influences the robot's stability limits and movements. Using this model, they defined a 'balanced state basin' to predict when the robot can stay balanced depending on different conditions like support area and strength. They found special mass values that affect balancing ability and used these insights to improve the robot's control for lifting tasks in both simulations and real experiments.

humanoid robotbalance stabilityobject masswhole-body dynamicscenter of masscontact wrenchescenter of pressuretrajectory optimizationloco-manipulationmomentum regulation
Authors
Hyunjong Song, William Z. Peng, Joo H. Kim
Abstract
The demand for humanoid loco-manipulation tasks with an object has recently increased, and most existing control approaches for stability in such tasks rely on heuristics or machine-learning techniques. This study rigorously analyzes and exploits the dynamic effects of the object mass on balance stability. By formulating the object mass parameters in the whole-body dynamics with distributed contact wrenches and centers of pressure at the stance contacts, their nonlinear effects on the system momenta and constraints are quantified. The dynamic models and constraints are incorporated into the construction of the balanced state basin/boundary (BSB), a partition of the center-of-mass state space for a biped system to maintain balance in its desired contacts. The implications of the BSB for prediction and control are highlighted using a humanoid robot and an analytically tractable reduced-order mechanism. The BSBs under different conditions of base of support, actuation capacity, and pose provide systematic analyses of the effects of object mass on the balancing capability of a system. In particular, the trade-off relationships between momentum regulation and limiting factors in balancing are characterized, introducing two key quantities of the object: the critical mass, at which the system's balancing capability is maximum, and the transition mass, which activates different limiting factors. In addition, sufficient conditions for imposing balanced states on a trajectory are established and implemented with BSBs as explicit threshold constraints in the whole-body trajectory optimization for stable object-lifting control of the humanoid, demonstrating the lift-and-hold and lift-and-release tasks with distinct mass properties in simulations and experiments.