Novel Class Discovery for Point Cloud Segmentation via Joint Learning of Causal Representation and Reasoning
–Neural Information Processing Systems
In this paper, we focus on Novel Class Discovery for Point Cloud Segmentation (3D-NCD), aiming to learn a model that can segment unlabeled (novel) 3D classes using only the supervision from labeled (base) 3D classes. The key to this task is to setup the exact correlations between the point representations and their base class labels, as well as the representation correlations between the points from base and novel classes. A coarse or statistical correlation learning may lead to the confusion in novel class inference.
Neural Information Processing Systems
Jun-13-2026, 10:12:39 GMT
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