Bajaj / Sinha | Computer-Aided Design and Diagnosis Methods for Biomedical Applications | Buch | 978-0-367-63884-9 | sack.de

Buch, Englisch, 392 Seiten, Format (B × H): 156 mm x 234 mm, Gewicht: 549 g

Bajaj / Sinha

Computer-Aided Design and Diagnosis Methods for Biomedical Applications

Buch, Englisch, 392 Seiten, Format (B × H): 156 mm x 234 mm, Gewicht: 549 g

ISBN: 978-0-367-63884-9
Verlag: CRC Press


Computer-aided design (CAD) plays a key role in improving biomedical systems for various applications. It also helps in the detection, identification, predication, analysis, and classification of diseases, in the management of chronic conditions, and in the delivery of health services. This book discusses the uses of CAD to solve real-world problems and challenges in biomedical systems with the help of appropriate case studies and research simulation results. Aiming to overcome the gap between CAD and biomedical science, it describes behaviors, concepts, fundamentals, principles, case studies, and future directions for research, including the automatic identification of related disorders using CAD.



Features:

Proposes CAD for the study of biomedical signals to understand physiology and to improve healthcare systems’ ability to diagnose and identify health disorders.

Presents concepts of CAD for biomedical modalities in different disorders.

Discusses design and simulation examples, issues, and challenges.

Illustrates bio-potential signals and their appropriate use in studying different disorders.

Includes case studies, practical examples, and research directions.



Computer-Aided Design and Diagnosis Methods for Biometrical Applications is aimed at researchers, graduate students in biomedical engineering, image processing, biomedical technology, medical imaging, and health informatics.
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Zielgruppe


Academic


Autoren/Hrsg.


Weitere Infos & Material


Chapter 1 Electroencephalogram Signals Based Emotion Classification in Parkinson’s Disease Using Recurrence Quantification Analysis and Non-Linear Classifiers

Chapter 2 Sleep Stage Classification Using DWT and Dispersion Entropy Applied on EEG Signals

Chapter 3 Detection of Epileptic Electroencephalogram Signals Employing Visibility Graph Motifs

Chapter 4 Effect of Various Standing Poses of Yoga on the Musculoskeletal System Using EMG

Chapter 5 Early Detection of Parkinson Disease and SWEDD Using SMOTE and Ensemble

Chapter 6 Computer-Aided Design and Diagnosis Method for Cancer Detection

Chapter 7 Automated COVID-19 Detection from CT Images Using Deep Learning

Chapter 8 Suspicious Region Diagnosis in the Brain: A Guide to Using Brain MRI Sequences

Chapter 9 Medical Image Classification Algorithm Based on Weight Initialization-Sliding Window Fusion Convolutional Neural Network

Chapter 10 Positioning the Healthcare Client in Diagnostics and the Validation of Care Intensity

Chapter 11 Computer-Aided Diagnosis (CAD) System for Determining Histological Grading of Astrocytoma Based on Ki67 Counting

Chapter 12 Improved Classification Techniques for the Diagnosis and Prognosis of Cancer

Chapter 13 Discovery of Thyroid Disease Using Different Ensemble Methods with Reduced Error Pruning Technique

Chapter 14 Reliable Diagnosis and Prognosis of COVID-19

Chapter 15 Computer-Aided Diagnosis Methods for Non-Invasive Imaging of Sub-Skin Lesions

Index


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