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  • Intelligent technologies and Parkinson's disease = prediction and diagnosis /
  • Record Type: Electronic resources : Monograph/item
    Title/Author: Intelligent technologies and Parkinson's disease/ Abhishek Kumar, Sachin Ahuja, Anupam Baliyan, Sreenatha Annawati, Abhineet Anand, editors.
    Reminder of title: prediction and diagnosis /
    other author: Anavatii, Sreenatha,
    Published: Hershey, Pennsylvania :IGI Global, : 2024.,
    Description: 1 online resource (390 p.)
    [NT 15003449]: Chapter 1. The power of data: leveraging machine learning for Parkinson's disease diagnosis -- Chapter 2. A study to find affordable AI techniques for early Parkinson's disease detection -- Chapter 3. The fusion of fog computing andintelligent technologies for Parkinson's disease care -- Chapter 4. Unmasking the movements: advancing Parkinson's disease management using wearable sensor-based technologies -- Chapter 5. Decision support framework for Parkinson's diseaseusing novel handwriting markers -- Chapter 6. Parkinson's disease diagnosis using voice features and effective machine learning methods -- Chapter 7. A review of the literature on automated Parkinson's disease diagnosis methods using machinelearning -- Chapter 8. Decoding Parkinson's disease: a deep learning approach to handwriting diagnosis -- Chapter 9. A functional gradient boost approach for identifying Parkinson's disease -- Chapter 10. Evolutionary wavelet neural network ensembles for breast cancer and Parkinson's disease prediction -- Chapter 11. Genetic determinants of Parkinson's disease: SNCA and lRRK2 in focus -- Chapter 12. IoT-based accelerometer sensors for early detection and continuous monitoring of Parkinson's disease symptoms -- Chapter 13. Early detection of Parkinson's disease using deep learning: a convolutional bi-directional GRU approach -- Chapter 14. Enhancing Parkinson's disease diagnosis through mayfly-optimized CNN BiGRU classification: a performance evaluation -- Chapter 15. Optimizing predictive models for Parkinson's disease diagnosis -- Chapter 16. Selection of gait parameters for differential diagnostics of patients with De Novo Parkinson's disease -- Chapter 17. Identifying Parkinson's patients by a functional gradient boosting approach -- Chapter 18. Evaluation of machine learning techniques for classification of early Parkinson's disease -- Chapter 19. Evaluation of handwriting kinematics and pressure for differential diagnosis of Parkinson's disease analysis.
    Subject: Parkinson's disease. -
    Online resource: http://services.igi-global.com/resolvedoi/resolve.aspx?doi=10.4018/979-8-3693-1115-8
    ISBN: 9798369311165
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W9496280 電子資源 11.線上閱覽_V 電子書 EB RC382 .I58 2024e 一般使用(Normal) On shelf 0
  • 1 records • Pages 1 •
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