Author
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Author 1
Mst Jannatul Kobra
Nanjing University of Information Science and Technology
Summary
Edited Journals
ICCK Contributions

Open Access | Research Article | 19 September 2025
Evaluating the Impact of Image Enhancement Techniques on Deep Learning-Based X-ray Classification
ICCK Transactions on Advanced Computing and Systems | Volume 1, Issue 3: 193-207, 2025 | DOI: 10.62762/TACS.2025.653850
Abstract
The research evaluates different image enhancement approaches regarding their impact on deep learning algorithms which detect body regions in X-ray scans. We analyze how Bilateral Filtering as well as Contrast Limited Adaptive Histogram Equalization (CLAHE) and Wavelet Denoising and Super-Resolution influence X-ray image quality which subsequently impacts Convolutional Neural Networks (CNNs) classification results. The evaluation demonstrates Bilateral Filtering delivers superior performance than other enhancement processes according to PSNR and SSIM evaluations on LEG, CTScan and Chest X-ray datasets. The experimental results for the LEG dataset demonstrated Bilateral Filtering produced a h... More >

Graphical Abstract
Evaluating the Impact of Image Enhancement Techniques on Deep Learning-Based X-ray Classification