One hierarchical slot-attention model with 10% labels jointly yields holistic, semantic, and panoptic scene decompositions that outperform three separate flat baselines by large ARI margins.
Emerg- ing properties in self-supervised vision transformers
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HSA: Hierarchical Slot Attention for Multi-granularity Scene-Decomposition
One hierarchical slot-attention model with 10% labels jointly yields holistic, semantic, and panoptic scene decompositions that outperform three separate flat baselines by large ARI margins.