CVPR 2023 - Probabilistic Prompt Learning for Dense Prediction
AI Breakdown

CVPR 2023 - Probabilistic Prompt Learning for Dense Prediction

2023-05-14
In this episode we discuss Probabilistic Prompt Learning for Dense Prediction by Hyeongjun Kwon, Taeyong Song, Somi Jeong, Jin Kim, Jinhyun Jang, Kwanghoon Sohn. This paper proposes a new approach called "probabilistic prompt learning" to improve the performance of dense prediction tasks. The authors introduce learnable class-agnostic attribute prompts to describe universal attributes across object classes, which are combined with class information and visual-context knowledge to create a...
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