Parallel Inverse Kinematics for Multithreaded Architectures

Author:

Harish Pawan1,Mahmudi Mentar1,Callennec Benoît Le2,Boulic Ronan1

Affiliation:

1. Immersive Interaction Group (IIG), École Polytechnique Fédérale de Lausanne (EPFL)

2. Moka Studio, Martigny, Switzerland

Abstract

In this article, we present a parallel prioritized Jacobian-based inverse kinematics algorithm for multithreaded architectures. We solve damped least squares inverse kinematics using a parallel line search by identifying and sampling critical input parameters. Parallel competing execution paths are spawned for each parameter in order to select the optimum that minimizes the error criteria. Our algorithm is highly scalable and can handle complex articulated bodies at interactive frame rates. We show results on complex skeletons consisting of more than 600 degrees of freedom while being controlled using multiple end effectors. We implement the algorithm both on multicore and GPU architectures and demonstrate how the GPU can further exploit fine-grain parallelism not directly available on a multicore processor. Our implementations are 10 to 150 times faster compared to a state-of-the-art serial implementation while providing higher accuracy. We also demonstrate the scalability of the algorithm over multiple scenarios and explore the GPU implementation in detail.

Funder

CTI Switzerland

Publisher

Association for Computing Machinery (ACM)

Subject

Computer Graphics and Computer-Aided Design

Reference32 articles.

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4. Kinematic programming alternatives for redundant manipulators

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