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Titlebook: Data Engineering in Medical Imaging; First MICCAI Worksho Binod Bhattarai,Sharib Ali,Danail Stoyanov Conference proceedings 2023 The Editor

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A European Overview of the Health Care Scenees for improved data curation. Additionally, the tool facilitates quality control and review, enabling researchers to validate image and segmentation quality in large datasets. It also plays a critical role in uncovering potential biases in datasets by aggregating and visualizing metadata, which is
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Phototoxic Changes in the Retinadatasets). Mean DICE score across all models for liver segmentation increased by 15% (p=0.02) after pre-training on synthetic data. For polyp detection, Precision increased by 11% (p=0.002), Recall by 9% (p=0.01), mAP@.5 by 10% (p=0.01) and mAP@[.5:95] by 8% (p-0.003)..All synthetic data, as well as
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Light-Induced Changes in Ocular Tissuesation. However, view occlusion, lack of meaningful feature landmarks, and liver deformation between the pre- and intra-operative settings all contribute to the difficulty of this registration task. In this work, we leverage some of the state-of-the-art deep learning frameworks to implement and test
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,Weakly Supervised Medical Image Segmentation Through Dense Combinations of Dense Pseudo-Labels,. Instead, obtaining less precise scribble–like annotations is more feasible for clinicians. In this context, training semantic segmentation networks with limited-signal supervision remains a technical challenge. We present an innovative scribble-supervised approach to image segmentation via densely
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