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      Can machine learning radiomics provide pre-operative differentiation of combined hepatocellular cholangiocarcinoma from hepatocellular carcinoma and cholangiocarcinoma to inform optimal treatment planning?

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          Computational Radiomics System to Decode the Radiographic Phenotype

          Radiomics aims to quantify phenotypic characteristics on medical imaging through the use of automated algorithms. Radiomic artificial intelligence (AI) technology, either based on engineered hard-coded algorithms or deep learning methods, can be used to develop non-invasive imaging-based biomarkers. However, lack of standardized algorithm definitions and image processing severely hampers reproducibility and comparability of results. To address this issue, we developed PyRadiomics , a flexible open-source platform capable of extracting a large panel of engineered features from medical images. PyRadiomics is implemented in Python and can be used standalone or using 3D-Slicer. Here, we discuss the workflow and architecture of PyRadiomics and demonstrate its application in characterizing lung-lesions. Source code, documentation, and examples are publicly available at www.radiomics.io . With this platform, we aim to establish a reference standard for radiomic analyses, provide a tested and maintained resource, and to grow the community of radiomic developers addressing critical needs in cancer research.
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            Diagnosis, Staging, and Management of Hepatocellular Carcinoma: 2018 Practice Guidance by the American Association for the Study of Liver Diseases

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              Guidelines for the diagnosis and management of intrahepatic cholangiocarcinoma.

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                Author and article information

                Contributors
                (View ORCID Profile)
                Journal
                European Radiology
                Eur Radiol
                Springer Science and Business Media LLC
                0938-7994
                1432-1084
                January 2021
                August 04 2020
                January 2021
                : 31
                : 1
                : 244-255
                Article
                10.1007/s00330-020-07119-7
                32749585
                fe0df62f-753a-45d4-839f-6ffaaa0db99f
                © 2021

                https://www.springer.com/tdm

                https://www.springer.com/tdm

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