Deep learning and classical computer vision techniques in medical image analysis: Case studies on brain MRI tissue segmentation, lung CT COPD registration, and skin lesion classification
Anyimadu Daniel Tweneboah, Suleiman Taofik Ahmed, Hossain Mohammad, Imran

TL;DR
This paper systematically evaluates classical and deep learning methods across multiple medical imaging tasks and modalities, demonstrating their strengths and limitations in brain MRI segmentation, lung CT registration, and skin lesion classification.
Contribution
It is the first comprehensive study comparing classical and deep learning approaches across diverse medical imaging tasks and modalities.
Findings
3D DL models outperform 2D models in brain tissue segmentation.
Classical Elastix methods excel in lung CT registration.
Ensemble DL models achieve high accuracy in skin lesion classification.
Abstract
Medical imaging spans diverse tasks and modalities which play a pivotal role in disease diagnosis, treatment planning, and monitoring. This study presents a novel exploration, being the first to systematically evaluate segmentation, registration, and classification tasks across multiple imaging modalities. Integrating both classical and deep learning (DL) approaches in addressing brain MRI tissue segmentation, lung CT image registration, and skin lesion classification from dermoscopic images, we demonstrate the complementary strengths of these methodologies in diverse applications. For brain tissue segmentation, 3D DL models outperformed 2D and patch-based models, specifically nnU-Net achieving Dice of 0.9397, with 3D U-Net models on ResNet34 backbone, offering competitive results with Dice 0.8946. Multi-Atlas methods provided robust alternatives for cases where DL methods are not…
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Taxonomy
TopicsCutaneous Melanoma Detection and Management · COVID-19 diagnosis using AI · Brain Tumor Detection and Classification
Methods*Communicated@Fast*How Do I Communicate to Expedia? · Convolution · Max Pooling · Synthetic Minority Over-sampling Technique. · Concatenated Skip Connection · U-Net
