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A Parkinson's Auxiliary Diagnosis Algorithm Based on a Hyperparameter Optimization Method of Deep Learning
Wang,Xingbo1; Li,Shujuan1; Pun,Chi Man2; Guo,Yijing3; Xu,Feng4,5; Gao,Hao1,5; Lu,Huimin6
2024-08
Source PublicationIEEE-ACM TRANSACTIONS ON COMPUTATIONAL BIOLOGY AND BIOINFORMATICS
ISSN1545-5963
Volume21Issue:4Pages:912-923
Abstract

Parkinson's disease is a common mental disease in the world, especially in the middle-aged and elderly groups. Today, clinical diagnosis is the main diagnostic method of Parkinson's disease, but the diagnosis results are not ideal, especially in the early stage of the disease. In this paper, a Parkinson's auxiliary diagnosis algorithm based on a hyperparameter optimization method of deep learning is proposed for the Parkinson's diagnosis. The diagnosis system uses ResNet50 to achieve feature extraction and Parkinson's classification, mainly including speech signal processing part, algorithm improvement part based on Artificial Bee Colony algorithm (ABC) and optimizing the hyperparameters of ResNet50 part. The improved algorithm is called Gbest Dimension Artificial Bee Colony algorithm (GDABC), proposing “Range pruning strategy” which aims at narrowing the scope of search and “Dimension adjustment strategy” which is to adjust gbest dimension by dimension. The accuracy of the diagnosis system in the verification set of Mobile Device Voice Recordings at King's College London (MDVR-CKL) dataset can reach more than 96%. Compared with current Parkinson's sound diagnosis methods and other optimization algorithms, our auxiliary diagnosis system shows better classification performance on the dataset within limited time and resources.

KeywordArtificial Bee Colony Algorithm Deep Learning Hyperparameter Optimization Parkinson's Auxiliary Speech Diagnosis
DOI10.1109/TCBB.2023.3246961
URLView the original
Indexed BySCIE
Language英語English
WOS Research AreaBiochemistry & Molecular Biology ; Computer Science ; Mathematics
WOS SubjectBiochemical Research Methods ; Computer Science, Interdisciplinary Applications ; Mathematics, Interdisciplinary Applications ; Statistics & Probability
WOS IDWOS:001290429100031
PublisherIEEE COMPUTER SOC, 10662 LOS VAQUEROS CIRCLE, PO BOX 3014, LOS ALAMITOS, CA 90720-1314
Scopus ID2-s2.0-85149365581
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Document TypeJournal article
CollectionFaculty of Science and Technology
DEPARTMENT OF COMPUTER AND INFORMATION SCIENCE
Corresponding AuthorGao,Hao; Lu,Huimin
Affiliation1.College of Automation and the College of Artificial Intelligence, Nanjing University of Posts and Communications, Nanjing, China
2.Department of Computer and Information Science, University of Macau, MacauChina
3.Department of Neurology, Southeast University Zhongda Hospital, Nanjing, China
4.School of Software, Tsinghua University, Beijing, China
5.Hangzhou Zhuoxi Institute of Brain and Intelligence, Hangzhou, 311100, China
6.Department of Mechanical and Control Engineering, Kyushu Institute of Technology, Kitakyushu, Japan
Recommended Citation
GB/T 7714
Wang,Xingbo,Li,Shujuan,Pun,Chi Man,et al. A Parkinson's Auxiliary Diagnosis Algorithm Based on a Hyperparameter Optimization Method of Deep Learning[J]. IEEE-ACM TRANSACTIONS ON COMPUTATIONAL BIOLOGY AND BIOINFORMATICS, 2024, 21(4), 912-923.
APA Wang,Xingbo., Li,Shujuan., Pun,Chi Man., Guo,Yijing., Xu,Feng., Gao,Hao., & Lu,Huimin (2024). A Parkinson's Auxiliary Diagnosis Algorithm Based on a Hyperparameter Optimization Method of Deep Learning. IEEE-ACM TRANSACTIONS ON COMPUTATIONAL BIOLOGY AND BIOINFORMATICS, 21(4), 912-923.
MLA Wang,Xingbo,et al."A Parkinson's Auxiliary Diagnosis Algorithm Based on a Hyperparameter Optimization Method of Deep Learning".IEEE-ACM TRANSACTIONS ON COMPUTATIONAL BIOLOGY AND BIOINFORMATICS 21.4(2024):912-923.
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