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Jaehoon Yoo

6 accepted papers

2024

Learning to Compose: Improving Object Centric Learning by Injecting Compositionality

ICLR 2024poster

Learning compositional representation is a key aspect of object-centric learning as it enables flexible systematic generalization and supports complex visual reasoning. However, most of the existing approaches rely on auto-encoding objective, while the compositionality is implicitly imposed by the a…

2024

Simulation-Free Training of Neural ODEs on Paired Data

NeurIPS 2024poster

In this work, we investigate a method for simulation-free training of Neural Ordinary Differential Equations (NODEs) for learning deterministic mappings between paired data. Despite the analogy of NODEs as continuous-depth residual networks, their application in typical supervised learning tasks has…

2023

Towards End-to-End Generative Modeling of Long Videos With Memory-Efficient Bidirectional Transformers

CVPR 2023poster

Autoregressive transformers have shown remarkable success in video generation. However, the transformers are prohibited from directly learning the long-term dependency in videos due to the quadratic complexity of self-attention, and inherently suffering from slow inference time and error propagation…

2021

SetVAE: Learning Hierarchical Composition for Generative Modeling of Set-Structured Data

CVPR 2021poster

Generative modeling of set-structured data, such as point clouds, requires reasoning over local and global structures at various scales. However, adopting multi-scale frameworks for ordinary sequential data to a set-structured data is nontrivial as it should be invariant to the permutation of its el…

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