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Titlebook: Medical Image Understanding and Analysis; 27th Annual Conferen Gordon Waiter,Tryphon Lambrou,Sharon Gordon Conference proceedings 2024 The

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Harnessing the Potential of Deep Learning for Total Shoulder Implant Classification: A Comparative Srk classified implants with an accuracy of 91.48% and with an AUC (Area under curve) of 0.9932 showing higher effectiveness in orthopedic implant identification. Further work is required to enhance and progress this work, with a goal of greater accuracy and fewer errors.
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BliMSR: Blind Degradation Modelling for Generating High-Resolution Medical Imagesity. Experimental results on lung CT scans demonstrate that our model, BliMSR, produces super-resolved images with enhanced details and textures and outperforms recent competing models, including a diffusion model for generating super-resolution images, thus establishing a state-of-the-art. The code is available at ..
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Segmentation of White Matter Hyperintensities and Ischaemic Stroke Lesions in Structural MRIsmall vessel disease (SVD). Segmentation and differentiation of these lesions is important in diagnosis, prognosis and management, but this is challenging to automate because they have similar appearance. In this study, we used MRI scans from four cohorts of people with sporadic SVD with both WMH an
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M-VAAL: Multimodal Variational Adversarial Active Learning for Downstream Medical Image Analysis Taslearning attempts to minimize the need for large annotated samples by actively sampling the most informative examples for annotation. These examples contribute significantly to improving the performance of supervised machine learning models, and thus, active learning can play an essential role in se
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BliMSR: Blind Degradation Modelling for Generating High-Resolution Medical Imagestextures critical for proper diagnosis. This is mainly because they assume specific degradations like bicubic downsampling or Gaussian noise, whereas, in practice, the degradations can be more complex and hence need to be modelled “blindly”. We propose a novel attention-based GAN model for medical i
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