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Publication | Open Access

Classification of Cancer Types Using Graph Convolutional Neural Networks

131

Citations

33

References

2020

Year

Abstract

Novel GCNN models have been established to predict cancer types or normal tissue based on gene expression profiles. We demonstrated the results from the TCGA dataset that these models can produce accurate classification (above 94%), using cancer-specific markers genes. The models and the source codes are publicly available and can be readily adapted to the diagnosis of cancer and other diseases by the data-driven modeling research community.

References

YearCitations

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