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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 726750 of 786 papers

TitleStatusHype
Synthetic Data as Validation0
Deep and Statistical Learning in Biomedical Imaging: State of the Art in 3D MRI Brain Tumor Segmentation0
Deep cross-modality (MR-CT) educed distillation learning for cone beam CT lung tumor segmentation0
Deep Distance Map Regression Network with Shape-aware Loss for Imbalanced Medical Image Segmentation0
Deep Ensemble approach for Enhancing Brain Tumor Segmentation in Resource-Limited Settings0
Deepfake Image Generation for Improved Brain Tumor Segmentation0
Synthetic Poisoning Attacks: The Impact of Poisoned MRI Image on U-Net Brain Tumor Segmentation0
Radiologist-level Performance by Using Deep Learning for Segmentation of Breast Cancers on MRI Scans0
Deep Learning and Health Informatics for Smart Monitoring and Diagnosis0
Deep Learning-Based Brain Image Segmentation for Automated Tumour Detection0
CARE: A Large Scale CT Image Dataset and Clinical Applicable Benchmark Model for Rectal Cancer Segmentation0
Can Foundation Models Really Segment Tumors? A Benchmarking Odyssey in Lung CT Imaging0
Deep Learning for Brain Tumor Segmentation in Radiosurgery: Prospective Clinical Evaluation0
Deep Learning Framework with Multi-Head Dilated Encoders for Enhanced Segmentation of Cervical Cancer on Multiparametric Magnetic Resonance Imaging0
Deep Learning with Mixed Supervision for Brain Tumor Segmentation0
Deep LOGISMOS: Deep Learning Graph-based 3D Segmentation of Pancreatic Tumors on CT scans0
CAFCT-Net: A CNN-Transformer Hybrid Network with Contextual and Attentional Feature Fusion for Liver Tumor Segmentation0
Building Brain Tumor Segmentation Networks with User-Assisted Filter Estimation and Selection0
Deep Recurrent Level Set for Segmenting Brain Tumors0
BRISC: Annotated Dataset for Brain Tumor Segmentation and Classification with Swin-HAFNet0
BreastSAM: A Study of Segment Anything Model for Breast Tumor Detection in Ultrasound Images0
Detection of Under-represented Samples Using Dynamic Batch Training for Brain Tumor Segmentation from MR Images0
Diagnosis and Prognosis of Head and Neck Cancer Patients using Artificial Intelligence0
Diff4MMLiTS: Advanced Multimodal Liver Tumor Segmentation via Diffusion-Based Image Synthesis and Alignment0
Diff-Ensembler: Learning to Ensemble 2D Diffusion Models for Volume-to-Volume Medical Image Translation0
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