Search Results for author: Xian-Tong Zhen

Found 12 papers, 4 papers with code

Few-Shot Semantic Segmentation with Democratic Attention Networks

no code implementations ECCV 2020 Haochen Wang, Xu-Dong Zhang, Yutao Hu, Yandan Yang, Xian-Bin Cao, Xian-Tong Zhen

The crux of few-shot segmentation is to extract object information from the support image and then propagate it to guide the segmentation of query images.

Few-Shot Semantic Segmentation Graph Attention +2

Joint Super-Resolution and Inverse Tone-Mapping: A Feature Decomposition Aggregation Network and A New Benchmark

1 code implementation7 Jul 2022 Gang Xu, Yu-chen Yang, Liang Wang, Xian-Tong Zhen, Jun Xu

Joint Super-Resolution and Inverse Tone-Mapping (joint SR-ITM) aims to increase the resolution and dynamic range of low-resolution and standard dynamic range images.

4k inverse tone mapping +3

Conditional Variational Image Deraining

1 code implementation23 Apr 2020 Ying-Jun Du, Jun Xu, Xian-Tong Zhen, Ming-Ming Cheng, Ling Shao

In this paper, we propose a Conditional Variational Image Deraining (CVID) network for better deraining performance, leveraging the exclusive generative ability of Conditional Variational Auto-Encoder (CVAE) on providing diverse predictions for the rainy image.

Density Estimation Rain Removal

Graph Neural Based End-to-end Data Association Framework for Online Multiple-Object Tracking

1 code implementation11 Jul 2019 Xiaolong Jiang, Peizhao Li, Yanjing Li, Xian-Tong Zhen

In this work, we present an end-to-end framework to settle data association in online Multiple-Object Tracking (MOT).

Multiple Object Tracking

Crowd Counting and Density Estimation by Trellis Encoder-Decoder Network

no code implementations3 Mar 2019 Xiaolong Jiang, Zehao Xiao, Baochang Zhang, Xian-Tong Zhen, Xian-Bin Cao, David Doermann, Ling Shao

In this paper, we propose a trellis encoder-decoder network (TEDnet) for crowd counting, which focuses on generating high-quality density estimation maps.

Crowd Counting Density Estimation

Model-free Tracking with Deep Appearance and Motion Features Integration

no code implementations16 Dec 2018 Xiaolong Jiang, Peizhao Li, Xian-Tong Zhen, Xian-Bin Cao

To overcome the object-centric information scarcity, both appearance and motion features are deeply integrated by the proposed AMNet, which is an end-to-end offline trained two-stream network.

Motion Detection Object +1

In Defense of Single-column Networks for Crowd Counting

no code implementations18 Aug 2018 Ze Wang, Zehao Xiao, Kai Xie, Qiang Qiu, Xian-Tong Zhen, Xian-Bin Cao

Crowd counting usually addressed by density estimation becomes an increasingly important topic in computer vision due to its widespread applications in video surveillance, urban planning, and intelligence gathering.

Crowd Counting Data Augmentation +1

Direct Shape Regression Networks for End-to-End Face Alignment

no code implementations CVPR 2018 Xin Miao, Xian-Tong Zhen, Xianglong Liu, Cheng Deng, Vassilis Athitsos, Heng Huang

In this paper, we propose the direct shape regression network (DSRN) for end-to-end face alignment by jointly handling the aforementioned challenges in a unified framework.

Face Alignment regression +1

The Structure Transfer Machine Theory and Applications

1 code implementation1 Apr 2018 Baochang Zhang, Lian Zhuo, Ze Wang, Jungong Han, Xian-Tong Zhen

Representation learning is a fundamental but challenging problem, especially when the distribution of data is unknown.

Image Classification Object Tracking +1

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