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Summary
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Our This dataset consists of DICOM and CT and PET-CT DICOM images of lung cancer subjects with XML Annotation files that indicate tumor location. The images were retrospectively acquired from patients with suspicion of lung canercancer, and who underwent standard-of-care lung biopsy and PET/CT. The cases were confirmed by pathological diagnosis. The XML Annotation files, which are widely used in deep learning and machine learning research, were provided by five chest Radiologist and two deep learning researchers making our dataset a useful tool and resource for developing algorithms for medical diagnosis. The images were analyzed on the mediastinum (window width, 350 HU; level, 40 HU) and lung (window width, 1,400 HU; level, –700 HU) settings. The reconstructions were made in 2mm-slice-thick and lung settings. The CT slice interval varies from 0.625 mm to 5 mm. Scanning mode includes plain and contrast and 3D reconstruction. The location of the tumors was labeled in the DICOM images, and the were provided by five chest radiologists and two deep learning researchers in order to make this dataset a useful tool and resource for developing algorithms for medical diagnosis. The image annotations are saved in as XML files in PASCAL VOC format. Users can parse the annotations , which can be parsed using the PASCAL Development Toolkit: https://pypi.org/project/pascal-voc-tools/ |
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AcknowledgementsAcknowledgements
We would like to acknowledge the individuals and institutions that have provided data for this collection:
Drs. Huiping Han, Funing Yang and Rui Wang for their help collecting clinical data
The Computer Center and Cancer Institute at the Second Affiliated Hospital of Harbin Medical University in Harbin, Heilongjiang Province, China for their help collecting the image data
Beijing Municipal Administration of Hospital Clinical Medicine Development of Special Funding (ZYLX201511)
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