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Recent Advances in Biomedical Engineering
Edited by Ganesh R Naik, ISBN 978-953-307-004-9, Hard cover, 660 pages, Publisher: InTech, Published: October 01, 2009 under CC BY-NC-SA 3.0 license, in subject Biomedical Engineering
DOI: 10.5772/148
The field of biomedical engineering has expanded markedly in the past ten years. This growth is supported by advances in biological science, which have created new opportunities for development of tools for diagnosis and therapy for human disease. The discipline focuses both on development of new biomaterials, analytical methodologies and on the application of concepts drawn from engineering, computing, mathematics, chemical and physical sciences to advance biomedical knowledge while improving the effectiveness and delivery of clinical medicine. Biomedical engineering now encompasses a range of fields of specialization including bioinstrumentation, bioimaging, biomechanics, biomaterials, and biomolecular engineering. Biomedical engineering covers recent advances in the growing field of biomedical technology, instrumentation, and administration. Contributions focus on theoretical and practical problems associated with the development of medical technology; the introduction of new engineering methods into public health; hospitals and patient care; the improvement of diagnosis and therapy; and biomedical information storage and retrieval. The book is directed at engineering students in their final year of undergraduate studies or in their graduate studies. Most undergraduate students majoring in biomedical engineering are faced with a decision, early in their program of study, regarding the field in which they would like to specialize. Each chosen specialty has a specific set of course requirements and is supplemented by wise selection of elective and supporting coursework. Also, many young students of biomedical engineering use independent research projects as a source of inspiration and preparation but have difficulty identifying research areas that are right for them. Therefore, a second goal of this book is to link knowledge of basic science and engineering to fields of specialization and current research. The editor would like to thank the authors, who have committed so much effort to the publication of this work.
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Book contents
- Chapter 1Micro Macro Neural Network to Recognize Slow Movement: EMG based Accurate and Quick Rollover Recognition
- Chapter 2Compression of Surface Electromyographic Signals Using Two-Dimensional Techniques
- Chapter 3A New Method for Quantitative Evaluation of Neurological Disorders based on EMG signals
- Chapter 4Source Separation and Identification Issues in Bio Signals: a Solution Using Blind Source Separation
- Chapter 5Sources of Bias in Synchronization Measures and how to Minimize Their Effects on the Estimation of Synchronicity: Application to the Uterine Electromyogram
- Chapter 6Multichannel Analysis of EEG Signal Applied to Sleep Stage Classification
- Chapter 7P300-Based Speller Brain-Computer Interface
- Chapter 8Alterations in Sleep Electroencephalography and Heart Rate Variability During the Obstructive Sleep Apnoea and Hypopnoea
- Chapter 9Flexible Implantable Thin Film Neural Electrodes
- Chapter 10Developments in Time-Frequency Analysis of Biomedical Signals and Images Using a Generalized Fourier Synthesis
- Chapter 11Automatic Counting of Aedes aegypti Eggs in Images of Ovitraps
- Chapter 12Hyperspectral Imaging: a New Modality in Surgery
- Chapter 13Dialectical Classification of MR Images for the Evaluation of Alzheimer's Disease
- Chapter 143-D MRI and DT-MRI Content-adaptive Finite Element Head Model Generation for Bioelectomagnetic Imaging
- Chapter 15Denoising of Fluorescence Confocal Microscopy Images with Photobleaching compensation in a Bayesian framework
- Chapter 16Advantages of Virtual Reality Technology in Rehabilitation of People with Neuromuscular Disorders
- Chapter 17A Prototype Device to Measure and Supervise Urine Output of Critical Patients
- Chapter 18Wideband Technology for Medical Detection and Monitoring
- Chapter 19"Hybrid-PLEMO", Rehabilitation System for Upper Limbs with Active / Passive Force Feedback Mode
- Chapter 20Fractional-Order Models for the Input Impedance of the Respiratory System
- Chapter 21Modelling of Oscillometric Blood Pressure Monitor from white to black box models
- Chapter 22Arterial Blood Velocity Measurement by Portable Wireless System for Healthcare Evaluation: the Related Effects and Significant Reference Data
- Chapter 23Studying Ion Channel Dysfunction and Arrythmogenesis in the Human Atrium: A Computational Approach
- Chapter 24Discovery of Biorhythmic Stories behind Daily Vital Signs and Its Application
- Chapter 25Linear and Nonlinear Synchronization Analysis and Visualization during Altered States of Consciousness
- Chapter 26RFId Technologies for the Hospital. How to Choose the Right One and Plan the Right Solution?
- Chapter 27Improvement of Touch Sensitivity by Pressing
- Chapter 28Modeling Thermoregulation and Core Temperature in Anatomically-Based Human Models and Its Application to RF Dosimetry
- Chapter 29Towards a Robotic System for Minimally Invasive Breast Interventions
- Chapter 30Spectral Analysis Methods for Spike-Wave Discharges in Rats with Genetic Absence Epilepsy
- Chapter 31A 3D Graph-Cut based Algorithm for Evaluating Carotid Plaque Echogenicity and Texture
- Chapter 32Specular Surface Reconstruction Method for Multi-Camera Corneal Topographer Arrangements
