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050 4 _aT59.5
_bW437 2016 EB
111 2 _aInternational Conference on Wearable Sensors and Robots
_d(2015 :
_cHangzhou Shi, China)
245 1 0 _aWearable sensors and robots :
_bproceedings of International Conference on Wearable Sensors and Robots 2015
_cCanjun Yang, G.S. Virk, Huayong Yang, editors.
264 1 _aSingapore
_bSpringer
300 _a1 recurso en línea (571 páginas)
336 _aTexto
_btxt
_2rdacontent
337 _aelectrónico
_bc
_2rdamedia
338 _arecurso electrónico
_bcr
_2rdacarrier
347 _atext file
_bPDF
_2rda
490 0 _aLecture notes in electrical engineering
_vv. 399
500 _aIncludes index.
500 _aInternational conference proceedings.
500 _aSpringerLink
_bSpringer Engineering eBooks 2017 English+International
504 _aIncluye referencias bibliográficas e índice
505 0 _aPreface; Contents; Wearable Sensors; 1 The Design of E Glove Hand Function Evaluation Device Based on Fusion of Vision and Touch; Abstract; 1 Introduction; 2 Glove Pressure Sensors Distribution Design Based on Principal Component Analysis; 2.1 ARAT Grasping Motion Hand Partition Experiment; 2.2 Sensor Layout Design Based on Principal Component Analysis; 3 Adaptive Pressure Threshold Acquirement Method Based on Visual Feedback; 3.1 Object Detection Based on Camshift Feedback Codebook; 3.2 Adaptive Pressure Threshold Acquirement; 4 Design and Testing of Wearable Sensor Data Glove.
505 8 _a3 Integrated Application Research About the Necklace Type Wearable Health Sensing System Under the Internet of Things; Abstract; 1 Introduction; 2 Hardware System Design; 2.1 The Realization of the Hardware Carrier; 2.2 Sensor Selection; 2.3 The Sensor Signal Acquisition Process; 2.4 Sensor Signal Preprocessing; 3 WHSS Implementation; 3.1 Multi-sensor Anti-interference Design; 3.2 Transmission Extension of the Portable Sensing System Signal; 3.3 Display and Control Response in the Handheld Terminal; 4 Multiple Data Fusion Processing; 4.1 The Function Model of Data Fusion System.
505 8 _a4 Working Principle of the Flexible Tactile-Pressure Sensor; 5 Conclusions; References; 5 Design of a Wearable Thermoelectric Generator for Harvesting Human Body Energy; Abstract; 1 Introduction; 2 Design; 2.1 Design of the Wearable TEG; 2.2 Modeling of the Wearable TEG; 3 Fabrication; 3.1 Thermoelectric Materials and Fabrication; 3.2 Fabrication of the Wearable TEG; 4 Experimental Characterization; 5 Results and Discussion; 5.1 TEG Characterization; 5.2 TEG Test on the Human Body; 6 Conclusions; Acknowledgments; References.
505 8 _a4.1 Design of Wearable Sensor Data Glove; 4.2 The Analysis of the Combination of Different Sensors for Grasp Accuracy; 5 Conclusion; Acknowledgments; References; 2 An Emotion Recognition System Based on Physiological Signals Obtained by Wearable Sensors; Abstract; 1 Introduction; 2 Method; 2.1 Emotion; 2.2 Physiological Signals Processing; 2.2.1 Data Collection; 2.2.2 Feature Extraction; 2.2.3 Feature Selection; 2.3 Emotion Recognition; 2.4 Experiment Implementation; 3 Results and Discussion; 4 Conclusion; Acknowledgments; References.
505 8 _a4.2 The Level of the Data Fusion System; 4.3 Realization of Data Fusion Algorithm; 5 Multi-sensor System Identification Technology; 5.1 Target Identification in Data Fusion of Attribute Level; 5.2 Target Recognition of the Decision Level Data Fusion; 5.3 Internet of Things Data Fusion About the Life and Health Monitoring; 6 Conclusions; Acknowledgements; References; 4 A Multi-scale Flexible Tactile-Pressure Sensor; Abstract; 1 Introduction; 2 Principle of the Tactile and Pressure Sensory Function of Human Skin; 3 Bionic Structure of the Flexible Tactile-Pressure Sensor.
505 8 _a6 Three-Axis Contact Force Measurement of a Flexible Tactile Sensor Array for Hand Grasping Applications.
520 3 _aThese proceedings present the latest information on regulations and standards for medical and non-medical devices, including wearable robots for gait training and support, design of exoskeletons for the elderly, innovations in assistive robotics, and analysis of human-machine interactions taking into account ergonomic considerations. The rapid development of key mechatronics technologies in recent years has shown that human living standards have significantly improved, and the International Conference on Wearable Sensor and Robot was held in Hangzhou, China from October 16 to 18, 2015, to present research mainly focused on personal-care robots and medical devices. The aim of the conference was to bring together academics, researchers, engineers and students from across the world to discuss state-of-the-art technologies related to various aspects of wearable sensors and robots.
650 7 _aRobots.
_2fast
_0(OCoLC)fst01099038
_9140106
_0comprobar BNE19900980849
700 1 _aVirk, G. S.
_q(Gurvinder S.)
700 1 _aYang, Canjun.
700 1 _aYang, Huayong.
856 4 0 _uhttps://go.openathens.net/redirector/universidadeuropea.es?url=http://link.springer.com/10.1007/978-981-10-2404-7
_zAcceso a este recurso digital (usuarios Universidad Europea de Madrid)
988 _aEBOOK, asignarmaterias, EBSPRINGER_2017A
998 _b02/2018
_dz
_e-
_zSI
999 _c94680
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