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SOTA
Lesion Segmentation
Lesion Segmentation On Isic 2018
Lesion Segmentation On Isic 2018
Métriques
mean Dice
Résultats
Résultats de performance de divers modèles sur ce benchmark
Columns
Nom du modèle
mean Dice
Paper Title
Repository
DoubleU-Net
0.8962
DoubleU-Net: A Deep Convolutional Neural Network for Medical Image Segmentation
ProMISe
0.921
ProMISe: Promptable Medical Image Segmentation using SAM
BCDU-net
0.847
Bi-Directional ConvLSTM U-Net with Densley Connected Convolutions
MSRF-Net
0.8813
MSRF-Net: A Multi-Scale Residual Fusion Network for Biomedical Image Segmentation
AIM++ (256x256, 1.5m parameters, 10% labeled data, no pretraining)
0.85
Inconsistency Masks: Removing the Uncertainty from Input-Pseudo-Label Pairs
U-Net + FTL
0.829
A Novel Focal Tversky loss function with improved Attention U-Net for lesion segmentation
Attn U-Net + DL
0.806
A Novel Focal Tversky loss function with improved Attention U-Net for lesion segmentation
MobileUNETR
0.9074
MobileUNETR: A Lightweight End-To-End Hybrid Vision Transformer For Efficient Medical Image Segmentation
RMSM UNet + DF-RAM +EF-RAM
0.9152
Automated skin lesion segmentation using multi-scale feature extraction scheme and dual-attention mechanism
-
MCGU-Net
0.895
Multi-level Context Gating of Embedded Collective Knowledge for Medical Image Segmentation
BCDU-Net (d=3)
-
Bi-Directional ConvLSTM U-Net with Densley Connected Convolutions
Polar Res-U-Net++
0.9253
Training on Polar Image Transformations Improves Biomedical Image Segmentation
Attn U-Net + Multi-Input + FTL
0.856
A Novel Focal Tversky loss function with improved Attention U-Net for lesion segmentation
DermoSegDiff-A
0.9005
DermoSegDiff: A Boundary-aware Segmentation Diffusion Model for Skin Lesion Delineation
DuAT
0.923
DuAT: Dual-Aggregation Transformer Network for Medical Image Segmentation
BAT
0.912
Boundary-aware Transformers for Skin Lesion Segmentation
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