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Application of Deep Learning-Based Medical Image Segmentation via Orbital Computed Tomography
Published on: November 30, 2022
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Vein segmentation and visualization of upper and lower extremities using convolution neural network.
Amit Laddi1,2, Shivalika Goyal1,2, Himani
1Biomedical Applications Group, CSIR-Central Scientific Instruments Organisation (CSIO), Chandigarh-160030, India.
Biomedizinische Technik. Biomedical Engineering
|April 23, 2024
Summary
A novel deep learning algorithm, self-parameterized U-Net, accurately visualizes veins in real-time. This technology aids vascular surgeons in procedures like venipuncture and Chronic Venous Disease treatments.
Area of Science:
- Medical Imaging
- Artificial Intelligence
- Vascular Surgery
Background:
- Accurate vein localization is crucial for effective venipuncture, vascular surgeries, and Chronic Venous Disease (CVD) management.
- Current methods for vein visualization can be challenging, especially under unconstrained conditions.
Purpose of the Study:
- To develop a reliable real-time framework for venous localization, identification, and visualization using a deep learning (DL) self-parametrized Convolution Neural Network (CNN).
- To segment venous maps from lower and upper limb datasets acquired under unconstrained conditions using near-infrared (NIR) imaging.
- To assist vascular surgeons in procedures such as venipuncture, vascular surgeries, and CVD treatments.
Main Methods:
- A portable image acquisition setup was used to collect venous data from 72 subjects.
- A manually annotated dataset trained and compared conventional CNN architectures (ResNet, VGGNet) with a self-parameterized U-Net.
- The focus was on improving automated vein segmentation and visualization.
Main Results:
- The self-parameterized U-Net demonstrated superior performance in segmenting unconstrained datasets compared to conventional CNN models.
- Achieved a Dice score of 0.58 and 96.7% accuracy for real-time vein visualization.
- The model proved effective for real-time vein location under unconstrained conditions.
Conclusions:
- The self-parameterized U-Net shows significant potential for vein segmentation and visualization.
- It can potentially reduce risks associated with traditional venipuncture and CVD treatments.
- This advanced CNN architecture offers improved vascular assistance, enhancing patient care and treatment outcomes.
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