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Ceyuan Yang

Researcher at The Chinese University of Hong Kong

Publications -  38
Citations -  3008

Ceyuan Yang is an academic researcher from The Chinese University of Hong Kong. The author has contributed to research in topics: Computer science & Feature (computer vision). The author has an hindex of 14, co-authored 26 publications receiving 1362 citations. Previous affiliations of Ceyuan Yang include Northwestern Polytechnical University.

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Journal ArticleDOI

When Deep Learning Meets Metric Learning: Remote Sensing Image Scene Classification via Learning Discriminative CNNs

TL;DR: This paper proposes a simple but effective method to learn discriminative CNNs (D-CNNs) to boost the performance of remote sensing image scene classification and comprehensively evaluates the proposed method on three publicly available benchmark data sets using three off-the-shelf CNN models.
Proceedings ArticleDOI

Adapting Object Detectors via Selective Cross-Domain Alignment

TL;DR: The key idea is to mine the discriminative regions, namely those that are directly pertinent to object detection, and focus on aligning them across both domains, and perform remarkably better than existing methods.
Posted Content

InterFaceGAN: Interpreting the Disentangled Face Representation Learned by GANs

TL;DR: A framework called InterFaceGAN is proposed to interpret the disentangled face representation learned by the state-of-the-art GAN models and study the properties of the facial semantics encoded in the latent space to suggest that learning to synthesize faces spontaneously brings a disentangling and controllable face representation.
Proceedings ArticleDOI

Temporal Pyramid Network for Action Recognition

TL;DR: In this paper, a generic Temporal Pyramid Network (TPN) is proposed to capture action instances at various tempos, which can be flexibly integrated into 2D or 3D backbone networks in a plug and play manner.
Posted Content

Temporal Pyramid Network for Action Recognition.

TL;DR: A generic Temporal Pyramid Network (TPN) at the feature-level is proposed, which can be flexibly integrated into 2D or 3D backbone networks in a plug-and-play manner and shows consistent improvements over other challenging baselines on several action recognition datasets.