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- W3138538880 abstract "Generative Adversarial Networks (GANs) is one of the vital efficient methods for generating a massive, high-quality artificial picture. For diagnosing particular diseases in a medical image, a general problem is that it is expensive, usage of high radiation dosage, and time-consuming to collect data. Hence GAN is a deep learning method that has been developed for the image to image translation, i.e. from low-resolution to highresolution image, for example generating Magnetic resonance image (MRI) from computed tomography image (CT) and 7T from 3T MRI which can be used to obtain multimodal datasets from single modality. In this review paper, different GAN architectures were discussed for medical image analysis." @default.
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- W3138538880 date "2021-01-01" @default.
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- W3138538880 title "Review of Medical Image Synthesis using GAN Techniques" @default.
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- W3138538880 doi "https://doi.org/10.1051/itmconf/20213701005" @default.
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