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20182021
most citedResidual Attention based Network for Hand Bone Age Assessment

6 citations · 9 across the 6 of their papers we have counts for

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7 papers · 1 filter

cs.CV2021

Transferable Adversarial Examples for Anchor Free Object Detection

Quanyu Liao, Xin Wang, Bin Kong +5

Deep neural networks have been demonstrated to be vulnerable to adversarial attacks: subtle perturbation can completely change prediction result. The vulnerability has led to a sur…

cs.CV2020

Fast Local Attack: Generating Local Adversarial Examples for Object Detectors

Quanyu Liao, Xin Wang, Bin Kong +4

The deep neural network is vulnerable to adversarial examples. Adding imperceptible adversarial perturbations to images is enough to make them fail. Most existing research focuses…

cs.CV2020

Graph Neural Networks for UnsupervisedDomain Adaptation of Histopathological ImageAnalytics

Dou Xu, Chang Cai, Chaowei Fang +3

Annotating histopathological images is a time-consuming andlabor-intensive process, which requires broad-certificated pathologistscarefully examining large-scale whole-slide images…

cs.CV2020

Category-wise Attack: Transferable Adversarial Examples for Anchor Free Object Detection

Quanyu Liao, Xin Wang, Bin Kong +4

Deep neural networks have been demonstrated to be vulnerable to adversarial attacks: subtle perturbations can completely change the classification results. Their vulnerability has…

cs.CV2020

Domain Embedded Multi-model Generative Adversarial Networks for Image-based Face Inpainting

Xian Zhang, Xin Wang, Bin Kong +6

Prior knowledge of face shape and structure plays an important role in face inpainting. However, traditional face inpainting methods mainly focus on the generated image resolution…

cs.CV2019

Attention-driven Tree-structured Convolutional LSTM for High Dimensional Data Understanding

Bin Kong, Xin Wang, Junjie Bai +7

Modeling the sequential information of image sequences has been a vital step of various vision tasks and convolutional long short-term memory (ConvLSTM) has demonstrated its superb…