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AJNR Awards, New Junior Editors, and more. Read the latest AJNR updates

Research ArticleAdult Brain
Open Access

Deep Transfer Learning and Radiomics Feature Prediction of Survival of Patients with High-Grade Gliomas

W. Han, L. Qin, C. Bay, X. Chen, K.-H. Yu, N. Miskin, A. Li, X. Xu and G. Young
American Journal of Neuroradiology January 2020, 41 (1) 40-48; DOI: https://doi.org/10.3174/ajnr.A6365
W. Han
aFrom the Department of Radiology (W.H., C.B., X.C., N.M., A.L., X.X., G.Y.), Brigham and Women’s Hospital, Boston, Massachusetts
cHarvard Medical School (W.H., L.Q., C.B., K.-H.Y., N.M., X.X., G.Y.), Boston, Massachusetts
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L. Qin
bDepartment of Imaging (L.Q., G.Y.), Dana-Farber Cancer Institute, Boston, Massachusetts
cHarvard Medical School (W.H., L.Q., C.B., K.-H.Y., N.M., X.X., G.Y.), Boston, Massachusetts
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C. Bay
aFrom the Department of Radiology (W.H., C.B., X.C., N.M., A.L., X.X., G.Y.), Brigham and Women’s Hospital, Boston, Massachusetts
cHarvard Medical School (W.H., L.Q., C.B., K.-H.Y., N.M., X.X., G.Y.), Boston, Massachusetts
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X. Chen
aFrom the Department of Radiology (W.H., C.B., X.C., N.M., A.L., X.X., G.Y.), Brigham and Women’s Hospital, Boston, Massachusetts
dDepartment of Radiology (X.C.), Guangzhou First People’s Hospital, School of Medicine, South China University of Technology, Guangzhou, Guangdong, China.
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K.-H. Yu
cHarvard Medical School (W.H., L.Q., C.B., K.-H.Y., N.M., X.X., G.Y.), Boston, Massachusetts
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N. Miskin
aFrom the Department of Radiology (W.H., C.B., X.C., N.M., A.L., X.X., G.Y.), Brigham and Women’s Hospital, Boston, Massachusetts
cHarvard Medical School (W.H., L.Q., C.B., K.-H.Y., N.M., X.X., G.Y.), Boston, Massachusetts
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A. Li
aFrom the Department of Radiology (W.H., C.B., X.C., N.M., A.L., X.X., G.Y.), Brigham and Women’s Hospital, Boston, Massachusetts
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X. Xu
aFrom the Department of Radiology (W.H., C.B., X.C., N.M., A.L., X.X., G.Y.), Brigham and Women’s Hospital, Boston, Massachusetts
cHarvard Medical School (W.H., L.Q., C.B., K.-H.Y., N.M., X.X., G.Y.), Boston, Massachusetts
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G. Young
aFrom the Department of Radiology (W.H., C.B., X.C., N.M., A.L., X.X., G.Y.), Brigham and Women’s Hospital, Boston, Massachusetts
bDepartment of Imaging (L.Q., G.Y.), Dana-Farber Cancer Institute, Boston, Massachusetts
cHarvard Medical School (W.H., L.Q., C.B., K.-H.Y., N.M., X.X., G.Y.), Boston, Massachusetts
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Abstract

BACKGROUND AND PURPOSE: Patient survival in high-grade glioma remains poor, despite the recent developments in cancer treatment. As new chemo-, targeted molecular, and immune therapies emerge and show promising results in clinical trials, image-based methods for early prediction of treatment response are needed. Deep learning models that incorporate radiomics features promise to extract information from brain MR imaging that correlates with response and prognosis. We report initial production of a combined deep learning and radiomics model to predict overall survival in a clinically heterogeneous cohort of patients with high-grade gliomas.

MATERIALS AND METHODS: Fifty patients with high-grade gliomas from our hospital and 128 patients with high-grade glioma from The Cancer Genome Atlas were included. For each patient, we calculated 348 hand-crafted radiomics features and 8192 deep features generated by a pretrained convolutional neural network. We then applied feature selection and Elastic Net-Cox modeling to differentiate patients into long- and short-term survivors.

RESULTS: In the 50 patients with high-grade gliomas from our institution, the combined feature analysis framework classified the patients into long- and short-term survivor groups with a log-rank test P value < .001. In the 128 patients from The Cancer Genome Atlas, the framework classified patients into long- and short-term survivors with a log-rank test P value of .014. For the mixed cohort of 50 patients from our institution and 58 patients from The Cancer Genome Atlas, it yielded a log-rank test P value of .035.

CONCLUSIONS: A deep learning model combining deep and radiomics features can dichotomize patients with high-grade gliomas into long- and short-term survivors.

ABBREVIATIONS:

C-indices
concordance indices
CNN
convolutional neural network
GBM
glioblastoma multiforme
HGG
high-grade glioma
OS
overall survival
SE
spin-echo
TCGA
the Cancer Genome Atlas
  • © 2020 by American Journal of Neuroradiology

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W. Han, L. Qin, C. Bay, X. Chen, K.-H. Yu, N. Miskin, A. Li, X. Xu, G. Young
Deep Transfer Learning and Radiomics Feature Prediction of Survival of Patients with High-Grade Gliomas
American Journal of Neuroradiology Jan 2020, 41 (1) 40-48; DOI: 10.3174/ajnr.A6365

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Deep Transfer Learning and Radiomics Feature Prediction of Survival of Patients with High-Grade Gliomas
W. Han, L. Qin, C. Bay, X. Chen, K.-H. Yu, N. Miskin, A. Li, X. Xu, G. Young
American Journal of Neuroradiology Jan 2020, 41 (1) 40-48; DOI: 10.3174/ajnr.A6365
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