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A convex model of humanoid momentum dynamics for multi-contact motion generation

Brahayam Pontón, Alexander Herzog, Stefan Schaal, Ludovic Righetti

发表年份
2016
引用次数
81

摘要

Linear models for control and motion generation of humanoid robots have received significant attention in the past years, not only due to their well known theoretical guarantees, but also because of practical computational advantages. However, to tackle more challenging tasks and scenarios such as locomotion on uneven terrain, a more expressive model is required. In this paper, we are interested in contact interaction-centered motion optimization based on the momentum dynamics model. This model is non-linear and non-convex; however, we find a relaxation of the problem that allows us to formulate it as a single convex quadratically-constrained quadratic program (QCQP) that can be very efficiently optimized and is useful for multi-contact planning. This convex model is then coupled to the optimization of end-effector contact locations using a mixed integer program, which can also be efficiently solved. This becomes relevant e.g. to recover from external pushes, where a predefined stepping plan is likely to fail and an online adaptation of the contact location is needed. The performance of our algorithm is demonstrated in several multi-contact scenarios for a humanoid robot.

关键词

Humanoid robotRobotRelaxation (psychology)Computer scienceQuadratic programmingQuadratic growthMotion (physics)Motion planningRegular polygonMathematical optimization

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