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Exploring the Impact of Noise and Image Quality on Deep Learning Performance in DXA Images.

Dildar HussainYeong Hyeon Gu
Published in: Diagnostics (Basel, Switzerland) (2024)
In conclusion, integrating noise reduction techniques into DL-based models significantly improves femur segmentation accuracy in DXA images. The FCNN model, in particular, shows promising results in enhancing BMD calculation and clinical diagnosis of osteoporosis. These findings highlight the potential of DL techniques in addressing segmentation challenges and improving diagnostic accuracy in medical imaging.
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