activity
20192023
most citedPointDAN: A Multi-Scale 3D Domain Adaption Network for Point Cloud Representation

74 citations · 86 across the 5 of their papers we have counts for

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11 papers · 1 filter

cs.CV2023

Camouflaged Image Synthesis Is All You Need to Boost Camouflaged Detection

Haichao Zhang, Can Qin, Yu Yin +1

Camouflaged objects that blend into natural scenes pose significant challenges for deep-learning models to detect and synthesize. While camouflaged object detection is a crucial ta…

cs.CV2023

UniControl: A Unified Diffusion Model for Controllable Visual Generation In the Wild

Can Qin, Shu Zhang, Ning Yu +10

Achieving machine autonomy and human control often represent divergent objectives in the design of interactive AI systems. Visual generative foundation models such as Stable Diffus…

cs.CV20233 cited

Mask-free OVIS: Open-Vocabulary Instance Segmentation without Manual Mask Annotations

Vibashan VS, Ning Yu, Chen Xing +5

Existing instance segmentation models learn task-specific information using manual mask annotations from base (training) categories. These mask annotations require tremendous human…

cs.CV20231 cited

Image as Set of Points

Xu Ma, Yuqian Zhou, Huan Wang +4

What is an image and how to extract latent features? Convolutional Networks (ConvNets) consider an image as organized pixels in a rectangular shape and extract features via convolu…

cs.CV2023

GlueGen: Plug and Play Multi-modal Encoders for X-to-image Generation

Can Qin, Ning Yu, Chen Xing +6

Text-to-image (T2I) models based on diffusion processes have achieved remarkable success in controllable image generation using user-provided captions. However, the tight coupling…

cs.CV2023

HIVE: Harnessing Human Feedback for Instructional Visual Editing

Shu Zhang, Xinyi Yang, Yihao Feng +9

Incorporating human feedback has been shown to be crucial to align text generated by large language models to human preferences. We hypothesize that state-of-the-art instructional…