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  • Multimodality annotated HCC cases with and without advanced imaging segmentation (HCC-TACE-Seg)

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Excerpt

This dataset was retrospectively acquired from University of Texas - MD Anderson cancer center, after its IRB approval. It contains patients treated at MD Anderson with hepatocellular carcinoma from November 2002 to June 2012. The inclusion criteria were TACE as the sole first-line or initial bridging therapy and availability of multiphasic contrast material–enhanced CT images obtained at baseline with no image artifacts (eg, surgical clips). On average, baseline CT was performed 3 weeks before the first session of TACE (range, 1–12 weeks).

Segmentation (liver, tumor, vessels) were created with semiautomated software in NIfTI and converted to DICOM SEG format.

Acknowledgements

We would like to acknowledge the individuals and institutions that have provided data for this collection:

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titleData Access

Data Access

Data TypeDownload all or Query/Filter

Images and Segmentations (DICOM, XX.X GB)

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urlhttps://github.com/fuentesdt/livermask

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Please contact help@cancerimagingarchive.net  with any questions regarding usage.


Localtab
titleDetailed Description

Detailed Description

Image Statistics


Modalities

CT, SEG

Number of Patients

105

Number of Studies

214

Number of Series

677

Number of Images

51,968

Images Size (GB)26.6

These SEG were originally created as NIfTI format files (Amira Software, ThermoFisher 2019, and converted to DICOM.

Github link for the NN code: https://github.com/fuentesdt/livermask



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titleCitations & Data Usage Policy

Citations & Data Usage Policy

Tcia license 4 noncommercial

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titleData Citation

DOI goes here. Create using Datacite with information from Collection Approval form

Moawad A, Fuentes D, Elsayes K.  Multimodality annotated HCC cases with and without advanced imaging segmentation. 


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titlePublication Citation

Morshid, A., Elsayes, K. M., Khalaf, A. M., Elmohr, M. M., Yu, J., Kaseb, A. O., Hassan, M., Mahvash, A., Wang, Z., Hazle, J. D., & Fuentes, D. (2019). A Machine Learning Model to Predict Hepatocellular Carcinoma Response to Transcatheter Arterial Chemoembolization. Radiology: Artificial Intelligence, 1(5), e180021. https://doi.org/10.1148/ryai.2019180021


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titleAcknowledgement

Only if they ask for special acknowledgments like funding sources, grant numbers, etc in their proposal.


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titleTCIA Citation

Clark, K., Vendt, B., Smith, K., Freymann, J., Kirby, J., Koppel, P., Moore, S., Phillips, S., Maffitt, D., Pringle, M., Tarbox, L., & Prior, F. (2013). The Cancer Imaging Archive (TCIA): Maintaining and Operating a Public Information Repository. Journal of Digital Imaging, 26(6), 1045–1057. https://doi.org/10.1007/s10278-013-9622-7

Other Publications Using This Data

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titleVersions

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