A Machine Learning-Based Approach for Quick Evaluation of Live Simulations in Embodiment Design

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Abstract

Supporting product developers in early design phases with Live-Simulation can enhance the quality of early product designs. Live-Simulation can also facilitate a democratization of simulation and puts away pressure from simulation experts. In this paper, a machine learning based quick evaluation tool is proposed to support product developers in interpreting Live-Simulation results. The proposed tool enables a quick evaluation of the Live-Simulation results and enables product developers to further enhance their simulations. The tool is shown within a use case in bike rocker switch design.

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APA

Sauer, C., Gerschütz, B., Bernsdorf, J., Schleich, B., & Wartzack, S. (2022). A Machine Learning-Based Approach for Quick Evaluation of Live Simulations in Embodiment Design. In Proceedings of the Design Society (Vol. 2, pp. 1757–1766). Cambridge University Press. https://doi.org/10.1017/pds.2022.178

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