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20202024
most citedUNet 3+: A Full-Scale Connected UNet for Medical Image Segmentation

27 citations · 56 across the 13 of their papers we have counts for

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Showing eess.IVShow all

6 papers · 1 filter

eess.IV2022

Efficient and Accurate Hyperspectral Pansharpening Using 3D VolumeNet and 2.5D Texture Transfer

Yinao Li, Yutaro Iwamoto, Ryousuke Nakamura +3

Recently, convolutional neural networks (CNN) have obtained promising results in single-image SR for hyperspectral pansharpening. However, enhancing CNNs' representation ability wi…

eess.IV20213 cited

Multi-phase Liver Tumor Segmentation with Spatial Aggregation and Uncertain Region Inpainting

Yue Zhang, Chengtao Peng, Liying Peng +8

Multi-phase computed tomography (CT) images provide crucial complementary information for accurate liver tumor segmentation (LiTS). State-of-the-art multi-phase LiTS methods usuall…

eess.IV20211 cited

Graph-based Pyramid Global Context Reasoning with a Saliency-aware Projection for COVID-19 Lung Infections Segmentation

Huimin Huang, Ming Cai, Lanfen Lin +9

Coronavirus Disease 2019 (COVID-19) has rapidly spread in 2020, emerging a mass of studies for lung infection segmentation from CT images. Though many methods have been proposed fo…

eess.IV2021

PA-ResSeg: A Phase Attention Residual Network for Liver Tumor Segmentation from Multi-phase CT Images

Yingying Xu, Ming Cai, Lanfen Lin +10

In this paper, we propose a phase attention residual network (PA-ResSeg) to model multi-phase features for accurate liver tumor segmentation, in which a phase attention (PA) is new…

eess.IV2020

VolumeNet: A Lightweight Parallel Network for Super-Resolution of Medical Volumetric Data

Yinhao Li, Yutaro Iwamoto, Lanfen Lin +2

Deep learning-based super-resolution (SR) techniques have generally achieved excellent performance in the computer vision field. Recently, it has been proven that three-dimensional…

eess.IV202027 cited

UNet 3+: A Full-Scale Connected UNet for Medical Image Segmentation

Huimin Huang, Lanfen Lin, Ruofeng Tong +6

Recently, a growing interest has been seen in deep learning-based semantic segmentation. UNet, which is one of deep learning networks with an encoder-decoder architecture, is widel…