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Published on: September 26, 2018
A novel computer-aided diagnosis system for the early detection of hypertension based on cerebrovascular alterations
Heba Kandil1, Ahmed Soliman2, Fatma Taher3
1Bioimaging Laboratory, J.B Speed School of Engineering, University of Louisville, KY, USA; Information Technology Department, Faculty of Computer Science and Information, Mansoura University, Egypt.
Insights
This study introduces a novel computer-aided diagnosis system using MRA scans for early hypertension detection. The system accurately identifies cerebral vascular changes, aiding in predicting and managing hypertension risk.
Area of Science:
- Biomedical Engineering
- Medical Imaging Analysis
- Artificial Intelligence in Medicine
Background:
- Hypertension is a major cause of mortality, and current diagnostic tools cannot predict its onset.
- Cerebral cerebrovascular alterations can precede hypertension development by years.
- Early detection of these vascular changes is crucial for timely intervention.
Purpose of the Study:
- To develop and validate a novel computer-aided diagnosis (CAD) system for the early detection of hypertension.
- To analyze magnetic resonance angiography (MRA) data for detecting and tracking cerebral vascular alterations.
- To assess the system's accuracy in discriminating between normal and hypertensive subjects.
Main Methods:
- Preprocessing MRA data to reduce noise and inhomogeneity using the generalized Gauss-Markov random field (GGMRF) model.
- Segmenting the cerebral vascular tree using a 3-D convolutional neural network (3D-CNN).
- Extracting vascular features (diameters, tortuosity) and training artificial neural networks for classification.
Main Results:
- The CAD system achieved a classification accuracy of 90.9% on a dataset of 66 subjects.
- The system demonstrated efficacy in modeling and discriminating between normal and hypertensive individuals.
- The analysis successfully detected cerebral vascular alterations indicative of hypertension risk.
Conclusions:
- The proposed CAD system shows significant potential for the early detection and tracking of hypertension.
- This technology can assist clinicians in identifying individuals at high risk for hypertension.
- Early identification enables proactive treatment planning to mitigate adverse health events.
Abstract:
Hypertension is a leading cause of mortality in the USA. While simple tools such as the sphygmomanometer are widely used to diagnose hypertension, they could not predict the disease before its onset. Clinical studies suggest that alterations in the structure of human brains' cerebrovasculature start to develop years before the onset of hypertension. In this research, we present a novel computer-aided diagnosis (CAD) system for the early detection of hypertension. The proposed CAD system analyzes magnetic resonance angiography (MRA) data of human brains to detect and track the cerebral vascular alterations and this is achieved using the following steps: i) MRA data are preprocessed to eliminate noise effects, correct the bias field effect, reduce the contrast inhomogeneity using the generalized Gauss-Markov random field (GGMRF) model, and normalize the MRA data, ii) the cerebral vascular tree of each MRA volume is segmented using a 3-D convolutional neural network (3D-CNN), iii) cerebral features in terms of diameters and tortuosity of blood vessels are estimated and used to construct feature vectors, iv) feature vectors are then used to train and test various artificial neural networks to classify data into two classes; normal and hypertensive. A balanced data set of 66 subjects were used to test the CAD system. Experimental results reported a classification accuracy of 90.9% which supports the efficacy of the CAD system components to accurately model and discriminate between normal and hypertensive subjects. Clinicians would benefit from the proposed CAD system to detect and track cerebral vascular alterations over time for people with high potential of developing hypertension and to prepare appropriate treatment plans to mitigate adverse events.
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