Wearable sensors: fundamentals, implementation and applications
Gespeichert in:
Format: | Buch |
---|---|
Sprache: | English |
Veröffentlicht: |
Amsterdam [u.a.]
Elsevier, AP
2014
|
Schlagworte: | |
Online-Zugang: | Inhaltsverzeichnis Klappentext |
Beschreibung: | XIII, 634 S. Ill., graph. Darst. |
ISBN: | 9780124186620 |
Internformat
MARC
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adam_text | Contents
List of Contributors
ix
Introduction
xi
1.1.
Wearables: Fundamentals,
Advancements, and a Roadmap
for the Future
SUNGMEE PARK, KYUNGIIEE
CI 1UNG,
AND
SUNDARESAN
JAYARAMAN
1.
World of Wearables (WOW)
1
2.
A trribures of Wearables
7
3.
Textiles and Clothing: The Meta-Wearahle
11
4.
Challenges and Opportunities
16
5.
The Future of Wearables: Defining
the Research Roadmap
19
References
22
1.2.
Social Aspects of Wearability
and Interaction
LUCY DUNNE, I IA1.LEY
PROFITA,
AND CLINT ZEAGLER
1.
Introduction
25
2.
Social Interpretation of Aesthetics
26
3.
Adoption of Innovation and Aesthetic Change
30
4.
On-Body Interaction: Social Acceptance
of Gesture
33
5.
Case Study: Google Glass
38
6.
Conclusion
41
References
42
1.3.
Wearable Haptics
YUICIII KURITA
1.
Introduction
45
2.
The Need for Wearable
Haptic
Devices
46
3.
Categories of Wearable
Haptic
and Tactile
Display
46
4.
Display of Friction and Weight
Illusions Rased on Fingertip Manipulation
48
5.
A Wearable Sensorimotor Enhancer
6.
Conclusions
60
References
60
54
2.1.
Wearable Bio and Chemical Sensors
SHIRLEY COYLE,
VINCENZO
F.
CURTO,
FERNANDO
BENITO-LOPEZ,
LARISA
FLOREA,
ANI) DERMOT
DIAMOND
1.
Introduction
65
2.
System Design
68
3.
Challenges in
Chemical
Biochemical
Sensing
74
4.
Application
Areas
78
5.
Conclusions
80
Acknowledgment
81
References
81
2.2.
Wearable
Inerţial
Sensors
and Their Applications
TOSHIYO TAMURA
1.
Introduction
85
2.
Wearable
Inerţial
Sensors
85
3.
Obtained Parameters from Inertia Sensors
93
4.
Applications for Wearable Motion Sensors
96
5.
Practical Considerations for Wearable
Inerţial
Sensor Applications in Clinical
Practice and Future Research
Directions
101
References
101
2.3.
Application of Optical Heart Rate
Monitoring
MATHIEU
LEMAY,
MATTIA
BERTSCHI,
JOSEP SOLA,
PHILIPPE RENEVEY,
JAKUIÌ
PARAK, AND ILKKA
KORI
IONEN
1.
Introduction
105
2.
Photoplethysmography Basics
3.
Applications
118
108
VI
CONTHNTS
4.
Conclusion
¡inti
Ontlook
125
Nomenclature
126
Acknowledgments
127
References
127
2.4.
Measurement of Energy Expenditure
by Body-worn I leaf-flow Sensors
NKIl. S/UMINSKY. JOHN DYKSTRA,
ANDľ.DMHl.ANSON
1
.
Introduction I
]
I
2.
Energy Expenditure IViickgmund
1 52
3.
Examples
oí
Body-Worn Devices
1 36
4.
Design
(ľonsiileriii
ions
142
5.
Performance
144
6.
Validul
ions
146
7.
(Conclusion
149
References
1
S
1
3.1,
Knitted Electronic Textiles
RITA PARADISO, LAURA CALDANI,
AND MARIA
І ЛСШ.І
1. From Fibers to Textile Sensors
153
2.
The Interlaced Network
155
3.
Textile Sensors for Physiological State
Monitoring
159
4.
Biomcchanicnl Sensing
161
5.
Non-Invasive Sweat
Monitoring
by Textile
Sensors
163
6.
Smart Fabrics and Interactive Textile Platforms
for Remote Monitoring
166
7.
System for Remote Rehabilitation
168
8.
Systems for Emotional State Assessment
171
9.
Conclusions
172
References
173
3.2.
Woven Electronic Textiles
ΤΟΜΟΙ
URO
KURODA,
ΙΠΠΕΥΑ
ТЛКЛПЛЅ1
II,
ANDATSUJI
M
ASUDA
1.
Introduction
175
2.
Textiles
177
3.
Applications
186
4.
Summary
196
References
197
ЗЛ.
Flexible Electronics
írom
Foils
to Textiles: Materials, Devices,
and Assembly
(
ill 1VANNI
SALVATI
ЖЈ:
ANI
> (
¡ШІЛКІ
>
J
Ri
łSTHR
1.
Introduction
199
2.
Thin-Film Transistors: Materials
-.un)
Technologies
200
$.
Review
ol
Semiconductors Employed in Flexible
Electronics
101
4.
Thin-Film Transistors Based on ¡i-K i/O
204
5.
Further Improvements and Limitations
Л
S
6.
Plastic Fk-ctronics lor Smart Textiles
22^
7.
(lul
look and (Conclusions
229
References
2
Ю
4-1.
liticrj^y
1
larvostitijL» at the
1
luman
Body
I.ORIľlOMAIHl,
ΊΟΝΛΗ
DRÄCI-R,
IKIíR
MAYORIKIMO, AND
MARKUS [4M.
LAK
1. Introduction to
Нпегду
llarvi-stin^
Systems
235
2.
Fner^y
Harvest
íny
from
Temperature
ünidieni
at the I luman Body
237
3.
ІІпегцу
1
larvest
іпд
írom
Foot Motion
245
4.
Wireless Energy Transmission
253
5.
Energy Harvestini» from Light
259
6.
Energy and Power Consumption Issues
267
7.
Conclusions and Future (Considerations
270
References
272
5.1. Energy I
larvestin),
from Temperature
Gradient at the Human Body: IXC-IXC
Converter Design (or Ultra-low Input
Vohages
275
5.2. Energy
I larvesting
from Foot Motion:
АС
-IX
С
(Converter
285
5.3. Energy Harvesting from Light: MPPT
Algorithms
292
References for the Supplemental Material
297
4.2.
Introduction to RF Energy I larvestin^
W.A. SLRDIJN, A.I..R. MANSANO, AND M. SIXXH MAN
1.
R · Energy
I larvesting
Fundamentals and
Practical Limitations
300
CONTENTS
Vil
2.
Impedance Mismatch, Losses, and
Efficiency
306
3.
Distribution of Harvested Power in a Realistic
Environment
308
4.
Charge Pump Rectifier Topologies
309
5.
Effect of Load and Source Variations
313
6.
Antenna-Rectifier Co-Design
317
7.
Conclusion
321
Acknowledgment
321
References
321
4.3.
Low-Power Integrated Circuit
Design for Wearable Biopotential
Sensing
Stíl IMYUNíj
ІІЛ,
CI IUL
KIM,
YU M. Cl
II,
ANI)
GERT
CAUWENNERGILS
1.
Introduction
323
2.
Biopotential Signals and Their
Characteristics
324
3.
Electrode-Body Interface and Electrode
Noise
325
4-
Low-Power Analog Circuit Design Techniques
for Biopotential Sensors
327
5.
Low-Power Design for ADCs
340
6.
Low-Power Digital Circuit Design
Techniques
342
7.
Architectural Design for Low-Power
Biopotential Acquisition
345
8.
Practical Considerations
347
9.
Conclusion
348
References
349
5.1.
Wearable Algorithms: An Overview
of a Truly Multi-Disciplinary Problem
GUANGWEI
CI IEN,
ESTHER
RODRÍGUEZ-VILLEGAS,
AND ALEXANDER J. CASSON
1.
Introduction
353
2.
Why Do Wearable Sensors Need
Algorithms?
356
3.
What are Wearable Algorithms?
364
4.
Wearable Algorithms: Statc-of-the-Art and
Emerging Techniques
369
5.
Conclusions
379
References
379
5.2.
Mining Techniques for Body Sensor
Network Data Repository
VITALI
LOSEU,
JIAN
WU, AND ROOZBEH JAFARI
1.
Introduction
383
2.
Machine Learning Approaches to Data
Mining
385
3.
Mining
BSN Data
389
4.
Data Representation
391
5.
Comparison Metric
394
6.
Classifier
396
7.
Data-Mining Model
397
8.
Experimental Results
398
9.
Conclusion and Recommendations
404
Acknowledgment
405
References
405
5.3.
Modeling Physical Activity Behavior
Change
EDMUND
SETO
AND
RUŽENA
BAJCSY
1.
Introduction
—
Physical Activity Monitoring
Capabilities
409
2.
Physical Activity Body Sensor Technology
411
3.
Modeling Physical Activity
413
4.
Behavior-Change Theories Relevant to
Physical Activity Interventions
4
H
5.
Conclusion
422
References
422
6.1.
Human Body Communication for a
High Data Rate Sensor Network
JUNG-l
IWAN
IIWANG AND
CHANÜ-I
IEE HYOUNG
1.
Capacitive-Coupling Communication Through
Human Body
425
2.
Channel Properties of Human Body
427
3.
Effects of Electrode s Structure
428
4.
Transmission Scheme of Human Body
Communication
434
5.
Analog Front-End for Human Body
Communication
440
6.
Performance of the Analog Front-End
448
7.
Commercialization of Human Body
Communication and its Challenges
449
References
450
VIU
CONTIiNTS
6.2. Channel Models
for
On-Body
Communications
11.(1, SANDAUDIS
AND I.
MAOl.CXilANNIS
1.
Introduction
453
2.
IEEE
802.
1
5.6
TG6 Standard Models
455
3.
Independent Studies
464
4.
Conclusions
47!
Acknowledgements
472
References
472
6.3.
Trust Establishment in Wireless
Body Area Networks
SIIUCHtM! YU.MINCi I.I, ANDI.USIII
1.
Introduction
475
2.
WBAN Device Authentication
Techniques
476
3.
Secret Key Establishment in WBAN
481
4.
Summary
488
References
489
6.4-
Wireless Body Area Networks
493
І ЛОШ
HARSOCCIIl AND FRANCESCO
ľOTORTI
1.
Introduction
493
2.
Evaluation Metrics
494
3.
Technologies
495
4.
Wearahle Radios
500
5.
Conclusions
513
References
514
7.1.
Fundamentals of Wearable
Sensors for the Monitoring of
Physical and Physiological Changes
in Daily Life
МЛЅЛЛК1
MAKIKAWA, NARUI
URO SI
IIOZAWA,
AND SI
НМЛ ОКЛПЛ
1.
Introduction
517
2.
Wearable Sensors for Physiological Signal
Mc-astiremenr
518
3.
Summary
541
7.2.
Wearing Sensors Inside and Outside of
the Human Body for the
Barly
Detection of
Diseases
CARMľN
C.V. 14 HIN,
VALI
ZIIHNC, NINUJI
І ПО.
XIAORONO PINO, AND YUAN TINC
/11ANC
1.
Introduci
ion 54J
2.
Cardiovascular Diseases
544
?.
Neurological Diseases
549
4.
С
ìast
roi ni est
inai
Diseases
555
5.
Conclusion
559
Acknowledgment
559
References
559
7.}.
Wearable and Non-Invasive Assist
ive
Technologies
MAYSAMCIIOVANI.IXI AND XUKI.IANC
і
II IO
1.
Assisiivé
Devices for Individuals with Seven·
Paralysis
56
Î
2.
Why Use
lhe
Tongue for Wearable
Technology?
570
3.
Wireless Tracking of Tongue Motion
571
4.
Wcarahle Tongue Drive System
573
5.
Sensor Signal-Processing Algorithm
576
6.
Dual-Mode Tongue Drive System
578
7.
Clinical Assessment
582
8.
Future Directions
586
References
588
7.4.
Detection and Characterization of
Food Intake hy Wearahle Sensors
JUAN M.
FONTANA ANI) EDWARD SA70NOV
1. Introduction
591
2.
Wearahle Sensors
594
3.
Signal Processing and Pattern-Recognition
Methods for Automatic Detection of Pood
Intake
600
4.
Methods for Characterization of
ľood
Intake
604
5.
Applications
609
6.
Summary and Conclusions
611
References
613
Index
617
I
ALV
IV
ι
hi
m
Ν
AND AP
•
The first comprehensive resource of the most currently used wearable devices presented in
an accessible and structured manner.
•
Helps engineers manufacture wearable devices with information on current technologies with
a focus on end user needs and recycling requirements.
•
Combines the expertise of professionals and academics in one practical and applied source.
Written by industry and academic experts, this book aims to provide you with an understanding of how to
design and work with wearable sensors. Together these insights provide the first single source of information on
wearable sensors that would be a valuable addition to the library of any engineer interested in this field.
Wearable Sensors covers a wide variety of topics associated with the development and application of wearable
devices, and gives a coherent summary of the state-of-art advances pushing wearable sensor technology. Both
industry professionals and academic researchers will benefit from this comprehensive reference which contains
the most up-to-date information on the advancement of low-power and flexible electronics, energy harvesting,
signal processing, data mining techniques and body area networks. In addition, the book provides cutting edge
information on user-centric design and social acceptability of wearable sensor technology, smart fabrics, and
use of various wearable sensor modalities in practical applications.
About the authors
Edward Sazonov is Associate Professor in the Department of Electrical and Computer Engineering at the
University of Alabama, USA, and Head of the Computer Laboratory of Ambient and Wearable Systems. His
research has been supported by the National Science Foundation, National Institutes of Health, National
Academies of Science, as well as by state agencies and private industry.
Michael R.
Neuman
is Professor in the Department of
Biomedical
Engineering at Michigan Technological
University, USA, Previously he held the Herbert Herff Chair of Excellence in
Biomedical
Engineering at the
University of Memphis and before that served on the faculty at Case Western Reserve University.
Neuman
was Editor in Chief of the IEEE Transactions on
Biomedical
Engineering, edited Physiological Measurement,
and served as Editor in Chief of the
biomedical
engineering magazine, IEEE Pulse, His research focuses on
biomedical
sensors and instrumentation with emphasis on clinical applications.
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format | Book |
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id | DE-604.BV042066268 |
illustrated | Illustrated |
indexdate | 2024-08-01T11:28:00Z |
institution | BVB |
isbn | 9780124186620 |
language | English |
oai_aleph_id | oai:aleph.bib-bvb.de:BVB01-027507035 |
oclc_num | 894968698 |
open_access_boolean | |
owner | DE-703 DE-862 DE-BY-FWS DE-858 DE-1050 |
owner_facet | DE-703 DE-862 DE-BY-FWS DE-858 DE-1050 |
physical | XIII, 634 S. Ill., graph. Darst. |
publishDate | 2014 |
publishDateSearch | 2014 |
publishDateSort | 2014 |
publisher | Elsevier, AP |
record_format | marc |
spellingShingle | Wearable sensors fundamentals, implementation and applications Wearable Computer (DE-588)4760857-2 gnd Intelligenter Werkstoff (DE-588)4274825-2 gnd Autarkie (DE-588)4253273-5 gnd Mikroelektronik (DE-588)4039207-7 gnd Kleidung (DE-588)4031011-5 gnd Energiespeicherung (DE-588)4014722-8 gnd Energy Harvesting (DE-588)7664612-9 gnd Wearable Computing (DE-588)4830130-9 gnd Ambient Intelligence (DE-588)4820282-4 gnd Sensor (DE-588)4038824-4 gnd Elektronik (DE-588)4014346-6 gnd Intelligenter Sensor (DE-588)4293453-9 gnd Funktionswerkstoff (DE-588)4841224-7 gnd Energieversorgung (DE-588)4014736-8 gnd Sensortechnik (DE-588)4121663-5 gnd Transportables Gerät (DE-588)4592565-3 gnd |
subject_GND | (DE-588)4760857-2 (DE-588)4274825-2 (DE-588)4253273-5 (DE-588)4039207-7 (DE-588)4031011-5 (DE-588)4014722-8 (DE-588)7664612-9 (DE-588)4830130-9 (DE-588)4820282-4 (DE-588)4038824-4 (DE-588)4014346-6 (DE-588)4293453-9 (DE-588)4841224-7 (DE-588)4014736-8 (DE-588)4121663-5 (DE-588)4592565-3 |
title | Wearable sensors fundamentals, implementation and applications |
title_auth | Wearable sensors fundamentals, implementation and applications |
title_exact_search | Wearable sensors fundamentals, implementation and applications |
title_full | Wearable sensors fundamentals, implementation and applications ed. by Edward Sazonov ... |
title_fullStr | Wearable sensors fundamentals, implementation and applications ed. by Edward Sazonov ... |
title_full_unstemmed | Wearable sensors fundamentals, implementation and applications ed. by Edward Sazonov ... |
title_short | Wearable sensors |
title_sort | wearable sensors fundamentals implementation and applications |
title_sub | fundamentals, implementation and applications |
topic | Wearable Computer (DE-588)4760857-2 gnd Intelligenter Werkstoff (DE-588)4274825-2 gnd Autarkie (DE-588)4253273-5 gnd Mikroelektronik (DE-588)4039207-7 gnd Kleidung (DE-588)4031011-5 gnd Energiespeicherung (DE-588)4014722-8 gnd Energy Harvesting (DE-588)7664612-9 gnd Wearable Computing (DE-588)4830130-9 gnd Ambient Intelligence (DE-588)4820282-4 gnd Sensor (DE-588)4038824-4 gnd Elektronik (DE-588)4014346-6 gnd Intelligenter Sensor (DE-588)4293453-9 gnd Funktionswerkstoff (DE-588)4841224-7 gnd Energieversorgung (DE-588)4014736-8 gnd Sensortechnik (DE-588)4121663-5 gnd Transportables Gerät (DE-588)4592565-3 gnd |
topic_facet | Wearable Computer Intelligenter Werkstoff Autarkie Mikroelektronik Kleidung Energiespeicherung Energy Harvesting Wearable Computing Ambient Intelligence Sensor Elektronik Intelligenter Sensor Funktionswerkstoff Energieversorgung Sensortechnik Transportables Gerät |
url | http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=027507035&sequence=000003&line_number=0001&func_code=DB_RECORDS&service_type=MEDIA http://bvbr.bib-bvb.de:8991/F?func=service&doc_library=BVB01&local_base=BVB01&doc_number=027507035&sequence=000004&line_number=0002&func_code=DB_RECORDS&service_type=MEDIA |
work_keys_str_mv | AT sazonovedward wearablesensorsfundamentalsimplementationandapplications |
Inhaltsverzeichnis
Schweinfurt Zentralbibliothek Lesesaal
Signatur: |
2000 ZQ 3120 S275 |
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Exemplar 1 | ausleihbar Verfügbar Bestellen |
Exemplar 2 | ausleihbar Verfügbar Bestellen |