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Predicting build orientation for SLM dental parts: a comparison of rotation representations and direct vector regression

arXiv · AI, language, vision and robotics · article · Sep 14, 2026 · UTC

Build orientation for selective laser melting (SLM) manufacturing of dental parts is usually chosen manually by technicians. We treat orientation prediction as supervised machine learning of the part's up-axis from technician-labeled production data, and test which rotation representations produce the best results. Using $n\approx2400$ patient-specific dental parts, we trained a ResNet-50 multi-view image backbone and a PointNeXt-S point-cloud backbone, both pretrained and fine-tuned end-to-end, on 13 up-axis representations spanning six classical $SO(3)$ parameterizations and seven representa

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First collected: 2026-09-20T09:41:04.278Z. This is not the publication date.