David Zhang
8 Papers
David Zhang is an academic researcher. The author has contributed to research in topics: Computer science & Medicine. The author has an hindex of 4, co-authored 7 publications.
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Papers
A deep convolutional neural network for diabetic retinopathy detection via mining local and long‐range dependence
TL;DR: Wang et al. as discussed by the authors incorporated correlations between long-range patches into the deep learning framework to improve diabetic retinopathy (DR) detection, where patch-wise relationships are used to enhance the local patch features since lesions of DR usually appear as plaques.
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Deformable Template Network (DTN) for Object Detection
TL;DR: A novel Deformable Template Network (DTN), which exploits the pictorial structure to model possible variations of an object by virtue of a generated template in a deformable way, and is a fully convolutional network which means it is competitive in terms of detection efficiency.
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ISFB-GAN: Interpretable semantic face beautification with generative adversarial network
Tianhao Peng,Mu Li,Fangmei Chen,Yong Xu,Yuan Xie,Yahan Sun,David Zhang +6 more
TL;DR: This study proposes ISFB-GAN, a novel Generative Adversarial Network for face beautification, which interprets facial style codes and focuses on beauty-related regions, preserving background information, and outperforms state-of-the-art methods in facial attractiveness enhancement.
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Geometric prior guided hybrid deep neural network for facial beauty analysis
TL;DR: Zhang et al. as mentioned in this paper proposed a dual-branch network for facial beauty analysis, where one branch takes the Swin Transformer as the backbone to model the full face and global patterns, and another branch focuses on the masked facial organs with the residual network to model local patterns of certain facial parts.
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