2023
DOI: 10.21203/rs.3.rs-2272616/v1
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DCE-Net: A Dynamic Context Encoder Network for Liver Tumor Segmentation

Abstract: Segmentation of a tumor region from medical images is critical for clinical diagnosis and the planning of surgical treatments. Recent advancements in machine learning have shown that convolutional neural networks are powerful in such image processing while largely reducing human labor. However, the variant shapes of liver tumors with blurred boundaries in medical images cause a great challenge for accurate segmentation. The feature extraction capability of a neural network can be improved by expanding its arch… Show more

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“…All major MRI vendors have tools for DCE MRI semi-quantitative analysis or Standard Tofts (e.g., NordicICE; Nordic Neuro Lab, Bergen, Norway). Currently, a selection of open-source tools exists for time-course compartmental models or basic Tofts analysis of DCE data (e.g., Madym [22], MITK-ModelFit [55], FireVoxel (https://firevoxel.org/, accessed on 10 October 2023), DCENET [56]). DW MRI tools for monoexponential ADC modeling are widely available on all major MRI vendor platforms.…”
Section: Discussionmentioning
confidence: 99%
“…All major MRI vendors have tools for DCE MRI semi-quantitative analysis or Standard Tofts (e.g., NordicICE; Nordic Neuro Lab, Bergen, Norway). Currently, a selection of open-source tools exists for time-course compartmental models or basic Tofts analysis of DCE data (e.g., Madym [22], MITK-ModelFit [55], FireVoxel (https://firevoxel.org/, accessed on 10 October 2023), DCENET [56]). DW MRI tools for monoexponential ADC modeling are widely available on all major MRI vendor platforms.…”
Section: Discussionmentioning
confidence: 99%