Shannon entropy and fuzzy C-means weighting for AI-based diagnosis of vertebral column diseases
Degenerative vertebral column diseases are becoming increasingly common and computer-aided decision-making and diagnosis systems are gaining popularity. In this paper, we propose a machine learning decision-making model based on noninvasive panoramic radiographs to tackle the problem of automated di...
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| Published in | Journal of ambient intelligence and humanized computing Vol. 11; no. 6; pp. 2557 - 2566 |
|---|---|
| Main Authors | , , , |
| Format | Journal Article |
| Language | English |
| Published |
Berlin/Heidelberg
Springer Berlin Heidelberg
01.06.2020
Springer Nature B.V |
| Subjects | |
| Online Access | Get full text |
| ISSN | 1868-5137 1868-5145 |
| DOI | 10.1007/s12652-019-01312-3 |
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| Abstract | Degenerative vertebral column diseases are becoming increasingly common and computer-aided decision-making and diagnosis systems are gaining popularity. In this paper, we propose a machine learning decision-making model based on noninvasive panoramic radiographs to tackle the problem of automated diagnosis of two common vertebral column diseases; disc prolapse and spondylolisthesis. We collected raw data from real X-ray images of 422 subjects (i.e., 201 disc prolapse, 111 spondylolisthesis, and 110 healthy). We used five biomechanical parameters as input to the model representing the pelvic incidence, pelvic tilt, lumbar lordosis angle, sacral slope, and degree spondylolisthesis. To obtain more meaningful features, we preprocessed each vertebral column dataset by weighting every vertebral feature using a set of weights computed based on Shannon entropy and the fuzzy C-means clustering algorithm. Then, the new weighted set of features was fed to an artificial neural network classifier. Our proposed method was able to classify the subjects into three classes with 99.5% overall accuracy. This reflects a strong ability to predict the patient vertebral column dysfunction using the biomechanical attributes and with an accuracy satisfying clinical requirements. This approach represents a feasible system that facilitates the diagnosis of vertebral column disorders. It can help the physician to take the correct decision very early, which will prevent the development of the pathology into a chronic level and reduce the need for surgical treatment. |
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| AbstractList | Degenerative vertebral column diseases are becoming increasingly common and computer-aided decision-making and diagnosis systems are gaining popularity. In this paper, we propose a machine learning decision-making model based on noninvasive panoramic radiographs to tackle the problem of automated diagnosis of two common vertebral column diseases; disc prolapse and spondylolisthesis. We collected raw data from real X-ray images of 422 subjects (i.e., 201 disc prolapse, 111 spondylolisthesis, and 110 healthy). We used five biomechanical parameters as input to the model representing the pelvic incidence, pelvic tilt, lumbar lordosis angle, sacral slope, and degree spondylolisthesis. To obtain more meaningful features, we preprocessed each vertebral column dataset by weighting every vertebral feature using a set of weights computed based on Shannon entropy and the fuzzy C-means clustering algorithm. Then, the new weighted set of features was fed to an artificial neural network classifier. Our proposed method was able to classify the subjects into three classes with 99.5% overall accuracy. This reflects a strong ability to predict the patient vertebral column dysfunction using the biomechanical attributes and with an accuracy satisfying clinical requirements. This approach represents a feasible system that facilitates the diagnosis of vertebral column disorders. It can help the physician to take the correct decision very early, which will prevent the development of the pathology into a chronic level and reduce the need for surgical treatment. |
| Author | Alafeef, Maha Alkhalaf, Hussain Audat, Ziad Fraiwan, Mohammad |
| Author_xml | – sequence: 1 givenname: Maha surname: Alafeef fullname: Alafeef, Maha organization: Department of Bioengineering, University of Illinois Urbana-Champaign, Department of Biomedical Engineering, Jordan University of Science and Technology – sequence: 2 givenname: Mohammad orcidid: 0000-0001-6352-5275 surname: Fraiwan fullname: Fraiwan, Mohammad email: mafraiwan@just.edu.jo organization: Department of Computer Engineering, Jordan University of Science and Technology – sequence: 3 givenname: Hussain surname: Alkhalaf fullname: Alkhalaf, Hussain organization: Department of Special Surgery, King Abdullah University Hospital – sequence: 4 givenname: Ziad surname: Audat fullname: Audat, Ziad organization: Department of Special Surgery, Jordan University of Science and Technology |
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| Cites_doi | 10.1016/j.ipm.2009.03.002 10.1109/78.847778 10.1109/TLA.2009.5349049 10.1016/j.nec.2012.12.003 10.1007/978-3-319-01830-0_2 10.1007/978-1-4757-0450-1 10.1007/978-3-642-21257-4_73 10.1007/978-94-017-2219-3 10.1109/TBME.2011.2106500 10.1080/2150704X.2013.832842 10.1017/S0016672310000662 10.4103/2152-7806.180297 10.1007/s00521-011-0747-7 10.1016/j.compbiomed.2013.12.004 10.1002/art.1780310320 10.1097/01.brs.0000248126.96737.0f 10.3923/itj.2014.874.884 10.1016/j.nec.2012.12.009 10.1016/j.media.2008.06.014 10.1371/journal.pone.0160957 10.1109/FUZZY.2011.6007393 10.1117/12.2254072 10.1109/ICICI-BME.2015.7401356 10.1109/TAEECE.2013.6557285 |
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| Keywords | Shannon entropy Spondylolisthesis Fuzzy C-means Vertebral column diseases Herniated disk |
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| SubjectTerms | Accuracy Algorithms Artificial Intelligence Artificial neural networks Biomechanics Classification Clustering Computational Intelligence Computer aided decision processes Datasets Decision making Decision trees Diagnosis Disease Engineering Entropy Entropy (Information theory) Hospitals Machine learning Magnetic resonance imaging Neural networks Original Research Orthopedics Pelvis Robotics and Automation Spinal cord Surgeons User Interfaces and Human Computer Interaction Vertebrae Weighting X-rays |
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| Title | Shannon entropy and fuzzy C-means weighting for AI-based diagnosis of vertebral column diseases |
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