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Datasets, Papers, Models, and Tools Documentation

Datasets

#Dataset NameTypeStatusSource/Link
1MICCAI BraTS 2019 Data TrainingNiftiAvailableKaggle - Brain Tumor Segmentation
2Primary Nasopharyngeal Carcinoma MRI with Multi-modalities SegmentationDicom (.dcm)AvailableZenodo
3SinusSegment Repository Dataset (Nasal Cavity)UnknownRequested (No reply)Requested via email to rheadkaul@gmail.com
4BraTS 2023 DatasetNifti (likely)Requested (No access)Synapse
5nnInteractive Research Paper DatasetsVariousListed in paperGQC SharePoint
6NasalSeg Dataset (Automatic Segmentation of Nasal Cavity and Paranasal Sinuses)NNRDAvailableZenodo
7HeadNeck CT-LocalAvailable locally
8Dicom Datasets from SudhirDicomLocalAvailable locally
9CTA Head and Neck Dataset-Volview URLKitware Data
10MRA Head and Neck-Volview URLKitware Data
11MRI Cardiac 3D Cine-Volview URLKitware Data
12MRI PROSTATEx-Volview URLKitware Data

Azure Blob Storage Datasets

Dataset ID (RowKey)DescriptionContainerSegmented
Headneck CT.zipHeadneck CTzip-filesNo
CTA-Head_and_Neck.zipCTA-Head and Neckzip-filesNo
BraTS19_TCIA13_653_1.zipBraTS19 TCIA13 653_1zip-filesNo
BraTS19_TCIA13_654_1.zipBraTS19 TCIA13 654_1zip-filesNo

The last two datasets (BraTS19_TCIA13_653_1.zip and BraTS19_TCIA13_654_1.zip) are from the BraTS 2019 dataset which is #1 in Datasets table above.

Referenced Papers

#Paper TitleLink/Reference
1NNInteractive Research PaperarXiv
2Development of an Open-Source Algorithm for Automated Segmentation in Clinician-Led Paranasal Sinus Radiologic ResearchGQC SharePoint
3A Dataset of Primary Nasopharyngeal Carcinoma MRI with Multi-modalities SegmentationNature Scientific Data

Model Directory

#Model Name/DescriptionBase ArchitectureTraining DatasetTraining PlatformRuntimeLink
1Brain Tumor Segmentation U-Net (Zeeshan's Original)U-NetMICCAI BraTS 2019Kaggle~4 hours (CPU), ~1h 35m (L4 GPU)Kaggle Notebook
2Brain Tumor Segmentation U-Net with Weights and BiasesU-NetMICCAI BraTS 2019Google Colab-Colab Notebook
3Nasopharyngeal Carcinoma Segmentation ModelU-Net (Zeeshan's backbone)Primary Nasopharyngeal Carcinoma MRI (converted to Nifti)Google Colab-Custom notebook (dataset restructured to match BraTS format)
4SinusSegment ModelUses UNetPlusPlus ModelNasalSeg Dataset (Automatic Segmentation of Nasal Cavity and Paranasal Sinuses)--https://github.com/rheadkaul/SinusSegment

Tools and Documentation

Name/DescriptionTypeLink
ITK-SNAP SoftwareSoftware ToolITK-SNAP Downloads
ITK-SNAP DLS DocumentationDocumentationITK-SNAP DLS Quick Start

Relationships Diagram

Notes

  • Requested Datasets: SinusSegment repository dataset and BraTS 2023 dataset have been requested but access has not been granted yet.

  • Dataset Conversion: The Primary Nasopharyngeal Carcinoma MRI dataset (Dicom) was converted to Nifti format and restructured to match the BraTS 2019 dataset format for model training.

  • Model Training: Zeeshan's Brain Tumor Segmentation Uses UNET Model for training Ran for almost 4 hours without connecting to the L4 runtime GPU Ran for almost 1 hour 35 minutes connecting it to the L4 runtime GPU

  • Nasopharyngeal carcinoma notebook: Converted the DICOM files into NIfTI format and restructured the dataset so that it follows the same format as the brain tumor segmentation dataset used in Zeeshan’s Kaggle notebook. Using Zeeshan’s U-Net model as the backbone, I successfully trained the model on the nasopharyngeal carcinoma dataset.

  • Local Datasets: HeadNeck CT and Dicom datasets from Sudhir are available locally but may not have public links.