2024
DOI: 10.1002/jemt.24675
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An accurate paradigm for denoising degraded ultrasound images based on artificial intelligence systems

F. E. Al‐Tahhan,
M. E. Fares

Abstract: Ultrasound images are susceptible to various forms of quality degradation that negatively impact diagnosis. Common degradations include speckle noise, Gaussian noise, salt and pepper noise, and blurring. This research proposes an accurate ultrasound image denoising strategy based on firstly detecting the noise type, then, suitable denoising methods can be applied for each corruption. The technique depends on convolutional neural networks to categorize the type of noise affecting an input ultrasound image. Pre‐… Show more

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