GLASS: Guided Latent Slot Diffusion for Object-Centric Learning
Krishnakant Singh, Simone Schaub-Meyer, Stefan Roth
摘要
Object-centric learning aims to decompose an input image into a set of meaningful object files (slots). These latent object representations enable a variety of downstream tasks. Yet, object-centric learning struggles on real-world datasets, which contain multiple objects of complex textures and shapes in natural everyday scenes. To address this, we introduce Guided Latent Slot Diffusion (GLASS), a novel slot-attention model that learns in the space of generated images and uses semantic and instance guidance modules to learn better slot embeddings for various downstream tasks. Our experiments show that GLASS surpasses state-of-theart slot-attention methods by a wide margin on tasks such as (zero-shot) object discovery and conditional image generation for real-world scenes. Moreover, GLASS enables the first application of slot attention to the compositional generation of complex, realistic scenes.
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- Improved Object-Centric Diffusion Learning with Registers and Contrastive AlignmentBac Nguyen, Yuhta Takida, Naoki Murata, Chieh-Hsin Lai 等ICLR 2026 · 被引用 3 次
- MUFASA: A Multi-Layer Framework for Slot AttentionSebastian Bock, Leonie Schüßler, Krishnakant Singh, Simone Schaub-Meyer 等CVPR 2026 · 被引用 1 次
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