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Tumor Segmentation

Tumor Segmentation is the task of identifying the spatial location of a tumor. It is a pixel-level prediction where each pixel is classified as a tumor or background. The most popular benchmark for this task is the BraTS dataset. The models are typically evaluated with the Dice Score metric.

Papers

Showing 226250 of 786 papers

TitleStatusHype
ASLseg: Adapting SAM in the Loop for Semi-supervised Liver Tumor Segmentation0
Exploring 3D U-Net Training Configurations and Post-Processing Strategies for the MICCAI 2023 Kidney and Tumor Segmentation Challenge0
Segmentation of Kidney Tumors on Non-Contrast CT Images using Protuberance Detection Network0
E2ENet: Dynamic Sparse Feature Fusion for Accurate and Efficient 3D Medical Image SegmentationCode1
ZePT: Zero-Shot Pan-Tumor Segmentation via Query-Disentangling and Self-PromptingCode1
T3D: Advancing 3D Medical Vision-Language Pre-training by Learning Multi-View Visual Consistency0
Adaptive Smooth Activation for Improved Disease Diagnosis and Organ Segmentation from Radiology Scans0
Rethinking Intermediate Layers design in Knowledge Distillation for Kidney and Liver Tumor SegmentationCode0
Seeing Beyond Cancer: Multi-Institutional Validation of Object Localization and 3D Semantic Segmentation using Deep Learning for Breast MRI0
Automated 3D Tumor Segmentation using Temporal Cubic PatchGAN (TCuP-GAN)0
Robust Tumor Segmentation with Hyperspectral Imaging and Graph Neural Networks0
LightBTSeg: A lightweight breast tumor segmentation model using ultrasound images via dual-path joint knowledge distillation0
End-to-end autoencoding architecture for the simultaneous generation of medical images and corresponding segmentation masks0
Assessing Test-time Variability for Interactive 3D Medical Image Segmentation with Diverse Point PromptsCode0
Swin UNETR++: Advancing Transformer-Based Dense Dose Prediction Towards Fully Automated Radiation Oncology Treatments0
Glioblastoma Tumor Segmentation using an Ensemble of Vision TransformersCode0
Hybrid-Fusion Transformer for Multisequence MRICode0
Radiomics as a measure superior to the Dice similarity coefficient for tumor segmentation performance evaluation0
SynergyNet: Bridging the Gap between Discrete and Continuous Representations for Precise Medical Image Segmentation0
Synthetic Data as Validation0
Progressive Dual Priori Network for Generalized Breast Tumor SegmentationCode0
Whole-brain radiomics for clustered federated personalization in brain tumor segmentationCode0
MRI brain tumor segmentation using informative feature vectors and kernel dictionary learning0
RT-SRTS: Angle-Agnostic Real-Time Simultaneous 3D Reconstruction and Tumor Segmentation from Single X-Ray ProjectionCode0
3D TransUNet: Advancing Medical Image Segmentation through Vision TransformersCode4
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