Alert button
Picture for Qinghui Liu

Qinghui Liu

Alert button

Treatment-aware Diffusion Probabilistic Model for Longitudinal MRI Generation and Diffuse Glioma Growth Prediction

Add code
Bookmark button
Alert button
Sep 14, 2023
Qinghui Liu, Elies Fuster-Garcia, Ivar Thokle Hovden, Donatas Sederevicius, Karoline Skogen, Bradley J MacIntosh, Edvard Grødem, Till Schellhorn, Petter Brandal, Atle Bjørnerud, Kyrre Eeg Emblem

Figure 1 for Treatment-aware Diffusion Probabilistic Model for Longitudinal MRI Generation and Diffuse Glioma Growth Prediction
Figure 2 for Treatment-aware Diffusion Probabilistic Model for Longitudinal MRI Generation and Diffuse Glioma Growth Prediction
Figure 3 for Treatment-aware Diffusion Probabilistic Model for Longitudinal MRI Generation and Diffuse Glioma Growth Prediction
Figure 4 for Treatment-aware Diffusion Probabilistic Model for Longitudinal MRI Generation and Diffuse Glioma Growth Prediction
Viaarxiv icon

The state-of-the-art 3D anisotropic intracranial hemorrhage segmentation on non-contrast head CT: The INSTANCE challenge

Add code
Bookmark button
Alert button
Jan 12, 2023
Xiangyu Li, Gongning Luo, Kuanquan Wang, Hongyu Wang, Jun Liu, Xinjie Liang, Jie Jiang, Zhenghao Song, Chunyue Zheng, Haokai Chi, Mingwang Xu, Yingte He, Xinghua Ma, Jingwen Guo, Yifan Liu, Chuanpu Li, Zeli Chen, Md Mahfuzur Rahman Siddiquee, Andriy Myronenko, Antoine P. Sanner, Anirban Mukhopadhyay, Ahmed E. Othman, Xingyu Zhao, Weiping Liu, Jinhuang Zhang, Xiangyuan Ma, Qinghui Liu, Bradley J. MacIntosh, Wei Liang, Moona Mazher, Abdul Qayyum, Valeriia Abramova, Xavier Lladó, Shuo Li

Figure 1 for The state-of-the-art 3D anisotropic intracranial hemorrhage segmentation on non-contrast head CT: The INSTANCE challenge
Figure 2 for The state-of-the-art 3D anisotropic intracranial hemorrhage segmentation on non-contrast head CT: The INSTANCE challenge
Figure 3 for The state-of-the-art 3D anisotropic intracranial hemorrhage segmentation on non-contrast head CT: The INSTANCE challenge
Figure 4 for The state-of-the-art 3D anisotropic intracranial hemorrhage segmentation on non-contrast head CT: The INSTANCE challenge
Viaarxiv icon

Voxels Intersecting along Orthogonal Levels Attention U-Net (viola-Unet) to Segment Intracerebral Haemorrhage Using Computed Tomography Head Scans

Add code
Bookmark button
Alert button
Aug 12, 2022
Qinghui Liu, Bradley J MacIntosh, Till Schellhorn, Karoline Skogen, KyrreEeg Emblem, Atle Bjørnerud

Figure 1 for Voxels Intersecting along Orthogonal Levels Attention U-Net (viola-Unet) to Segment Intracerebral Haemorrhage Using Computed Tomography Head Scans
Figure 2 for Voxels Intersecting along Orthogonal Levels Attention U-Net (viola-Unet) to Segment Intracerebral Haemorrhage Using Computed Tomography Head Scans
Figure 3 for Voxels Intersecting along Orthogonal Levels Attention U-Net (viola-Unet) to Segment Intracerebral Haemorrhage Using Computed Tomography Head Scans
Figure 4 for Voxels Intersecting along Orthogonal Levels Attention U-Net (viola-Unet) to Segment Intracerebral Haemorrhage Using Computed Tomography Head Scans
Viaarxiv icon

Multi-modal land cover mapping of remote sensing images using pyramid attention and gated fusion networks

Add code
Bookmark button
Alert button
Nov 06, 2021
Qinghui Liu, Michael Kampffmeyer, Robert Jenssen, Arnt-Børre Salberg

Figure 1 for Multi-modal land cover mapping of remote sensing images using pyramid attention and gated fusion networks
Figure 2 for Multi-modal land cover mapping of remote sensing images using pyramid attention and gated fusion networks
Figure 3 for Multi-modal land cover mapping of remote sensing images using pyramid attention and gated fusion networks
Figure 4 for Multi-modal land cover mapping of remote sensing images using pyramid attention and gated fusion networks
Viaarxiv icon

SCG-Net: Self-Constructing Graph Neural Networks for Semantic Segmentation

Add code
Bookmark button
Alert button
Sep 03, 2020
Qinghui Liu, Michael Kampffmeyer, Robert Jenssen, Arnt-Børre Salberg

Figure 1 for SCG-Net: Self-Constructing Graph Neural Networks for Semantic Segmentation
Figure 2 for SCG-Net: Self-Constructing Graph Neural Networks for Semantic Segmentation
Figure 3 for SCG-Net: Self-Constructing Graph Neural Networks for Semantic Segmentation
Figure 4 for SCG-Net: Self-Constructing Graph Neural Networks for Semantic Segmentation
Viaarxiv icon

The 1st Agriculture-Vision Challenge: Methods and Results

Add code
Bookmark button
Alert button
Apr 23, 2020
Mang Tik Chiu, Xingqian Xu, Kai Wang, Jennifer Hobbs, Naira Hovakimyan, Thomas S. Huang, Honghui Shi, Yunchao Wei, Zilong Huang, Alexander Schwing, Robert Brunner, Ivan Dozier, Wyatt Dozier, Karen Ghandilyan, David Wilson, Hyunseong Park, Junhee Kim, Sungho Kim, Qinghui Liu, Michael C. Kampffmeyer, Robert Jenssen, Arnt B. Salberg, Alexandre Barbosa, Rodrigo Trevisan, Bingchen Zhao, Shaozuo Yu, Siwei Yang, Yin Wang, Hao Sheng, Xiao Chen, Jingyi Su, Ram Rajagopal, Andrew Ng, Van Thong Huynh, Soo-Hyung Kim, In-Seop Na, Ujjwal Baid, Shubham Innani, Prasad Dutande, Bhakti Baheti, Sanjay Talbar, Jianyu Tang

Figure 1 for The 1st Agriculture-Vision Challenge: Methods and Results
Figure 2 for The 1st Agriculture-Vision Challenge: Methods and Results
Figure 3 for The 1st Agriculture-Vision Challenge: Methods and Results
Figure 4 for The 1st Agriculture-Vision Challenge: Methods and Results
Viaarxiv icon

Self-Constructing Graph Convolutional Networks for Semantic Labeling

Add code
Bookmark button
Alert button
Apr 23, 2020
Qinghui Liu, Michael Kampffmeyer, Robert Jenssen, Arnt-Børre Salberg

Figure 1 for Self-Constructing Graph Convolutional Networks for Semantic Labeling
Figure 2 for Self-Constructing Graph Convolutional Networks for Semantic Labeling
Figure 3 for Self-Constructing Graph Convolutional Networks for Semantic Labeling
Figure 4 for Self-Constructing Graph Convolutional Networks for Semantic Labeling
Viaarxiv icon

Multi-view Self-Constructing Graph Convolutional Networks with Adaptive Class Weighting Loss for Semantic Segmentation

Add code
Bookmark button
Alert button
Apr 21, 2020
Qinghui Liu, Michael Kampffmeyer, Robert Jenssen, Arnt-Børre Salberg

Figure 1 for Multi-view Self-Constructing Graph Convolutional Networks with Adaptive Class Weighting Loss for Semantic Segmentation
Figure 2 for Multi-view Self-Constructing Graph Convolutional Networks with Adaptive Class Weighting Loss for Semantic Segmentation
Figure 3 for Multi-view Self-Constructing Graph Convolutional Networks with Adaptive Class Weighting Loss for Semantic Segmentation
Figure 4 for Multi-view Self-Constructing Graph Convolutional Networks with Adaptive Class Weighting Loss for Semantic Segmentation
Viaarxiv icon