Fine-tuned convolutional neural network for different cardiac view classification
In echocardiography, an electrocardiogram is conventionally utilised in the chronological arrangement of diverse cardiac views for measuring critical measurements. Cardiac view classification plays a significant role in the identification and diagnosis of cardiac disease. Early detection of cardiac...
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Published in | The Journal of supercomputing Vol. 78; no. 16; pp. 18318 - 18335 |
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Main Authors | , , , , , , |
Format | Journal Article |
Language | English |
Published |
New York
Springer US
01.11.2022
Springer Nature B.V |
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Abstract | In echocardiography, an electrocardiogram is conventionally utilised in the chronological arrangement of diverse cardiac views for measuring critical measurements. Cardiac view classification plays a significant role in the identification and diagnosis of cardiac disease. Early detection of cardiac disease can be cured or treated, and medical experts accomplish this. Computational techniques classify the views without any assistance from medical experts. The process of learning and training faces issues in feature selection, training and classification. Considering these drawbacks, there is an effective rank-based deep convolutional neural network (R-DCNN) for the proficient feature selection and classification of diverse views of ultrasound images (US). Significant features in the US image are retrieved using rank-based feature selection and used to classify views. R-DCNN attains 96.7% classification accuracy, and classification results are compared with the existing techniques. From the observation of the classification performance, the R-DCNN outperforms the existing state-of-the-art classification techniques. |
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AbstractList | In echocardiography, an electrocardiogram is conventionally utilised in the chronological arrangement of diverse cardiac views for measuring critical measurements. Cardiac view classification plays a significant role in the identification and diagnosis of cardiac disease. Early detection of cardiac disease can be cured or treated, and medical experts accomplish this. Computational techniques classify the views without any assistance from medical experts. The process of learning and training faces issues in feature selection, training and classification. Considering these drawbacks, there is an effective rank-based deep convolutional neural network (R-DCNN) for the proficient feature selection and classification of diverse views of ultrasound images (US). Significant features in the US image are retrieved using rank-based feature selection and used to classify views. R-DCNN attains 96.7% classification accuracy, and classification results are compared with the existing techniques. From the observation of the classification performance, the R-DCNN outperforms the existing state-of-the-art classification techniques. |
Author | Karupusamy, Sathishkumar Santosh Kumar, B. P. Alazzam, Malik Bader Alassery, Fawaz Siva, D. Haq, Mohd Anul Sreenivasulu, P. |
Author_xml | – sequence: 1 givenname: B. P. surname: Santosh Kumar fullname: Santosh Kumar, B. P. email: santoshecevemana@gmail.com organization: Department of ECE, Y.S.R. Engineering College of Yogi Vemana University – sequence: 2 givenname: Mohd Anul surname: Haq fullname: Haq, Mohd Anul organization: College of Computer Science and Information Science, Majmaah University – sequence: 3 givenname: P. surname: Sreenivasulu fullname: Sreenivasulu, P. organization: Department of ECE, Audisankara College of Engineering and Technology – sequence: 4 givenname: D. surname: Siva fullname: Siva, D. organization: Department of ECE, SRIT – sequence: 5 givenname: Malik Bader surname: Alazzam fullname: Alazzam, Malik Bader organization: Information Technology Department, Ajloun National University – sequence: 6 givenname: Fawaz surname: Alassery fullname: Alassery, Fawaz organization: Department of Computer Engineering, College of Computers and Information Technology, Taif University – sequence: 7 givenname: Sathishkumar surname: Karupusamy fullname: Karupusamy, Sathishkumar organization: Gobi Arts and Science College (Autonomous) |
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SubjectTerms | Artificial neural networks Compilers Computer Science Echocardiography Electrocardiography Image classification Interpreters Machine learning in Intelligent Autonomous Systems Medical imaging Processor Architectures Programming Languages Training |
Title | Fine-tuned convolutional neural network for different cardiac view classification |
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