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Rehabilitation Robotics

Technology and Application

Specificaties
Paperback, blz. | Engels
Elsevier Science | e druk, 2018
ISBN13: 9780128119952
Rubricering
Elsevier Science e druk, 2018 9780128119952
€ 177,40
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Samenvatting

Rehabilitation Robotics gives an introduction and overview of all areas of rehabilitation robotics, perfect for anyone new to the field. It also summarizes available robot technologies and their application to different pathologies for skilled researchers and clinicians. The editors have been involved in the development and application of robotic devices for neurorehabilitation for more than 15 years. This experience using several commercial devices for robotic rehabilitation has enabled them to develop the know-how and expertise necessary to guide those seeking comprehensive understanding of this topic.

Each chapter is written by an expert in the respective field, pulling in perspectives from both engineers and clinicians to present a multi-disciplinary view. The book targets the implementation of efficient robot strategies to facilitate the re-acquisition of motor skills. This technology incorporates the outcomes of behavioral studies on motor learning and its neural correlates into the design, implementation and validation of robot agents that behave as ‘optimal’ trainers, efficiently exploiting the structure and plasticity of the human sensorimotor systems. In this context, human-robot interaction plays a paramount role, at both the physical and cognitive level, toward achieving a symbiotic interaction where the human body and the robot can benefit from each other’s dynamics.

Specificaties

ISBN13:9780128119952
Taal:Engels
Bindwijze:Paperback

Inhoudsopgave

<p>1. Physiological basis of neuromotor recovery<br>2. An overall framework for neurorehabilitation robotics: implications for recovery<br>3. Biomechatronic design criteria of systems for robot-mediated rehabilitation therapy<br>4. Actuators and sensors for rehabilitation and prosthetic robots<br>5. Assistive controllers and modalities for robot-aided neurorehabilitation<br>6. Exoskeletons for upper limb rehabilitation<br>7. Exoskeletons for lower limb rehabilitation<br>8. Performance measures in robot-assisted assessment of sensorimotor functions<br>9. Computational models of the recovery process in robot-assisted training<br>10. Control of rehabilitation robots: from guidance to interaction<br>11. Promoting motivation during robot-assisted rehabilitation<br>12. Software platforms for integrating robots and virtual environments<br>13. Twenty+ Years of Robotics for Upper Extremity Rehabilitation following a Stroke<br>14. Three-dimensional, task-specific robot therapy<br>15. Robot-assisted therapy of hand function<br>16. Robot-assisted gait training<br>17. Wearable robotic applications for neurorehabilitation<br>18. Robot–assisted rehabilitation in multiple sclerosis<br>19. Robots for cognitive rehabilitation and symptom management<br>20. Hybrid NMES-robot devices for training of activities of daily living<br>21. Robotic techniques for evaluation and training of proprioceptive deficits<br>22. Psychophysiological responses during robot-assisted rehabilitation<br>23. The role of muscle synergies in robot-assisted neurorehabilitation<br>24. Telerehabilitation Robotics</p>
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        Rehabilitation Robotics