3
International Journ International ISSN No: 2456 - 64 @ IJTSRD | Available Online @ www.i Design and i Integrated Ms. M. Kiruthika, Assi Kings College ABSTRACT With the design of an Internet of Thin telemedicine based health monitoring Smart Chair. Sensors and associated har to monitor the vital physiological para human body are available on the c leading to the idea of a Smart Chair. subject to be seated in a relaxed postu acquisition of physiological signals sensors attached to his/her body. The raw the sensors are processed digitally by microcontroller and analyzed for a abnormalities in the health parameters o The results are then transmitted to computer. The data can be viewed at any a doctor’s computer that is connected to Smart Chair also sends an SMS with details to a remote doctor’s phone i emergency, thus facilitating telemedi areas. The key focus of the presente propose the design of a chair that will easily affordable by the people of deve who have limited access to prop facilities. The results Presented sh proposed system is definitely a low c solution for IoT based telemedicine compared to existing systems Key Words: Internet of Things (IOT), Se 2. INTRODUCTION Wireless sensor network and IoT ha important technology in various indus healthcare sector being the most eme Remote monitoring of subjects is an in to provide better, instantaneous and low healthcare. Good amount of research has nal of Trend in Scientific Research and De l Open Access Journal | www.ijtsrd.com 470 | Volume - 3 | Issue – 1 | Nov – Dec ijtsrd.com | Volume – 3 | Issue – 1 | Nov-Dec 20 implementation of Smart Sens d Chair for Medical Diagnosis II ME (MPC), Mrs. K.Abhirami M.E., (P istant Professor, Department of CSE of Engineering, Thanjavur, Tamil Nadu, India ngs (IoT) and system- The rdware needed ameters of the chair, thereby It enables the ure during the from various w signals from y an onboard any common of the subject. o a personal y later time by o Internet. The all the health in case of an icine in rural ed work is to be useful and eloping nations per healthcare how that the cost affordable e system, as ensor. as become an stries with the merging of all. nnovative way w cost access to as been done in the field of telemedicine usin the availability of portable b easy access to internet on m devices on Internet of Thing increasingly common. Custom based healthcare have also b research is ongoing. Howeve currently available in literatur a particular physiological sometimes too expensive to b Machines that monitor physiological parameters are u open source hardware and s ease of use for the end user This includes the correct place ease of operation of the b system architecture is availab the cost of complete kit is qu use of off the- shelf biomedica 3. LITERATURE SURVEY 3.1 Model driven flexible body sensor network fo The Wireless Body Sensor wireless network that is communication among sensor to a human body to monitor th and environment. The desig such WBSN systems for h received a large amount of research studies and in indu mainly motivated by costly he advances in the developmen monitoring devices as well as such as the Internet of Things to the main challenges of 5G. evelopment (IJTSRD) m 2018 018 Page: 966 sor s Ph.D) ng mobile devices. With biomedical sensors and mobile devices, medical gs (IoT) are becoming m architectures for IoT been proposed and the er, most of the systems re are designed to detect abnormality and are be affordable by masses. the common vital under development using software. However, the r is always a challenge. ement of the sensors and biomedical device. The ble as open source, but uite high because of the al sensors/systems. Y design of a wireless or health monitoring Network (WBSN) is a designed to allow r nodes that are attached he body vital parameters gn and development of health monitoring have f attention recently, in ustry. This attention is ealth care and by recent nt of miniature health s emerging technologies, s (IoT), which contribute

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With the design of an Internet of Things IoT and telemedicine based health monitoring system The Smart Chair. Sensors and associated hardware needed to monitor the vital physiological parameters of the human body are available on the chair, thereby leading to the idea of a Smart Chair. It enables the subject to be seated in a relaxed posture during the acquisition of physiological signals from various sensors attached to his her body. The raw signals from the sensors are processed digitally by an onboard microcontroller and analyzed for any common abnormalities in the health parameters of the subject. The results are then transmitted to a personal computer. The data can be viewed at any later time by a doctors computer that is connected to Internet. The Smart Chair also sends an SMS with all the health details to a remote doctors phone in case of an emergency, thus facilitating telemedicine in rural areas. The key focus of the presented work is to propose the design of a chair that will be useful and easily affordable by the people of developing nations who have limited access to proper healthcare facilities. The results Presented show that the proposed system is definitely a low cost affordable solution for IoT based telemedicine system, as compared to existing systems Ms. M. Kiruthika, II ME (MPC) | Mrs. K.Abhirami M.E., (Ph.D) "Design and implementation of Smart Sensor Integrated Chair for Medical Diagnosis" Published in International Journal of Trend in Scientific Research and Development (ijtsrd), ISSN: 2456-6470, Volume-3 | Issue-1 , December 2018, URL: https://www.ijtsrd.com/papers/ijtsrd19182.pdf Paper URL: http://www.ijtsrd.com/engineering/computer-engineering/19182/design-and-implementation-of-smart-sensor-integrated-chair-for-medical-diagnosis/ms-m-kiruthika-ii-me-mpc

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Page 1: Design and implementation of Smart Sensor Integrated Chair for Medical Diagnosis

International Journal of Trend in

International Open Access Journal

ISSN No: 2456 - 6470

@ IJTSRD | Available Online @ www.ijtsrd.com

Design and iIntegrated Chair

Ms. M. Kiruthika, Assistant Professor

Kings College

ABSTRACT With the design of an Internet of Things (IoT) and telemedicine based health monitoring systemSmart Chair. Sensors and associated hardware needed to monitor the vital physiological parameters of the human body are available on the chair, thleading to the idea of a Smart Chair. It enables the subject to be seated in a relaxed posture during the acquisition of physiological signals from various sensors attached to his/her body. The raw signals from the sensors are processed digitally by microcontroller and analyzed for any common abnormalities in the health parameters of the subject. The results are then transmitted to a personal computer. The data can be viewed at any later time by a doctor’s computer that is connected to InteSmart Chair also sends an SMS with all the health details to a remote doctor’s phone in case of an emergency, thus facilitating telemedicine in rural areas. The key focus of the presented work is to propose the design of a chair that will be usefeasily affordable by the people of developing nations who have limited access to proper healthcare facilities. The results Presented show that the proposed system is definitely a low cost affordable solution for IoT based telemedicine system, as compared to existing systems Key Words: Internet of Things (IOT), Sensor. 2. INTRODUCTION Wireless sensor network and IoT has become an important technology in various industries with the healthcare sector being the most emerging of all. Remote monitoring of subjects is an innovative wto provide better, instantaneous and low cost access to healthcare. Good amount of research has been done in

International Journal of Trend in Scientific Research and Development (IJTSRD)

International Open Access Journal | www.ijtsrd.com

6470 | Volume - 3 | Issue – 1 | Nov – Dec 2018

www.ijtsrd.com | Volume – 3 | Issue – 1 | Nov-Dec 2018

implementation of Smart SensorIntegrated Chair for Medical Diagnosis

Kiruthika, II ME (MPC), Mrs. K.Abhirami M.E., (Ph.D)Assistant Professor, Department of CSE

Kings College of Engineering, Thanjavur, Tamil Nadu, India

With the design of an Internet of Things (IoT) and telemedicine based health monitoring system- The Smart Chair. Sensors and associated hardware needed to monitor the vital physiological parameters of the human body are available on the chair, thereby leading to the idea of a Smart Chair. It enables the subject to be seated in a relaxed posture during the acquisition of physiological signals from various sensors attached to his/her body. The raw signals from the sensors are processed digitally by an onboard microcontroller and analyzed for any common abnormalities in the health parameters of the subject. The results are then transmitted to a personal computer. The data can be viewed at any later time by a doctor’s computer that is connected to Internet. The Smart Chair also sends an SMS with all the health details to a remote doctor’s phone in case of an emergency, thus facilitating telemedicine in rural areas. The key focus of the presented work is to propose the design of a chair that will be useful and easily affordable by the people of developing nations who have limited access to proper healthcare

Presented show that the proposed system is definitely a low cost affordable solution for IoT based telemedicine system, as

Internet of Things (IOT), Sensor.

Wireless sensor network and IoT has become an important technology in various industries with the healthcare sector being the most emerging of all. Remote monitoring of subjects is an innovative way to provide better, instantaneous and low cost access to healthcare. Good amount of research has been done in

the field of telemedicine using mobile devices. With the availability of portable biomedical sensors and easy access to internet on mobile devicdevices on Internet of Things (IoT) are becoming increasingly common. Custom architectures for IoT based healthcare have also been proposed and the research is ongoing. However, most of the systems currently available in literature are designeda particular physiological abnormality and are sometimes too expensive to be affordable by masses. Machines that monitor the common vital physiological parameters are under development using open source hardware and software. However, the ease of use for the end user is always a challenge. This includes the correct placement of the sensors and ease of operation of the biomedical device. The system architecture is available as open source, but the cost of complete kit is quite high because of the use of off the- shelf biomedical sensors/systems. 3. LITERATURE SURVEY3.1 Model driven flexible design of a wireless

body sensor network for health monitoringThe Wireless Body Sensor Network (WBSN) is a wireless network that is designed to allow communication among sensor nodes that are attached to a human body to monitor the body vital parameters and environment. The design and development of such WBSN systems for health monitoring have received a large amount of attention recently, in research studies and in industry. This attention is mainly motivated by costly health care and by recent advances in the development of miniature health monitoring devices as well as emerging technologies, such as the Internet of Things (IoT), which contribute to the main challenges of 5G.

Research and Development (IJTSRD)

www.ijtsrd.com

Dec 2018

Dec 2018 Page: 966

Smart Sensor or Medical Diagnosis

K.Abhirami M.E., (Ph.D)

the field of telemedicine using mobile devices. With the availability of portable biomedical sensors and easy access to internet on mobile devices, medical devices on Internet of Things (IoT) are becoming increasingly common. Custom architectures for IoT based healthcare have also been proposed and the research is ongoing. However, most of the systems currently available in literature are designed to detect a particular physiological abnormality and are sometimes too expensive to be affordable by masses. Machines that monitor the common vital physiological parameters are under development using open source hardware and software. However, the

f use for the end user is always a challenge. This includes the correct placement of the sensors and ease of operation of the biomedical device. The system architecture is available as open source, but the cost of complete kit is quite high because of the

shelf biomedical sensors/systems.

SURVEY Model driven flexible design of a wireless body sensor network for health monitoring

The Wireless Body Sensor Network (WBSN) is a wireless network that is designed to allow

cation among sensor nodes that are attached to a human body to monitor the body vital parameters and environment. The design and development of such WBSN systems for health monitoring have received a large amount of attention recently, in

and in industry. This attention is mainly motivated by costly health care and by recent advances in the development of miniature health monitoring devices as well as emerging technologies, such as the Internet of Things (IoT), which contribute

Page 2: Design and implementation of Smart Sensor Integrated Chair for Medical Diagnosis

International Journal of Trend in Scientific Research and Development (IJTS

@ IJTSRD | Available Online @ www.ijtsrd.com

3.2 Routing Techniques in Wireless Sensor Networks: An Overview

Due to the limited transmit power and other constraints; the transmission of data between two nodes in a Wireless Sensor Network (WSN) may have to be accomplished with the help of one or multiple relay nodes. Game theory has been proven very useful for accurately modelling the underlying strategic interactions between the sensor nodes and for providing the relays with incentives to forward the other nodes' data. 3.3 Internet of things in industries: A surveyInternet of Things (IoT) has provided a promising opportunity to build powerful industrial systems and applications by leveraging the growing ubiquity of radio-frequency identification (RFID), and wireless, mobile, and sensor devices. A wide range of industrial IoT applications have been developed and deployed in recent years. In an effort to understand the development of IoT in industries, this paper reviews the current research of IoT, key enabling technologies, major IoT applications in industries, and identifies research trends and challenges. A main contribution of this review paper is that it summarizes the current state-of-the-art IoT in industries systematically. 3.4 IoT--from research and Innovation to Market

Deployment The IoT will fuel technology innovation by creating the means for machines to communicate many different types of information with one another while contributing in the increased value of information created by the number of interconnections among things and the transformation of the processed information into knowledge shared into the Internet of Everything. 3.5 Remote Wireless Patient Monitoring SystemOne of the medical devices we found when we visit a hospital care unit such device is ‘patient monitsystem’. This device (patient monitoring system) informs doctors and nurses about the patient’s physiological signals. However, this device (patient monitoring system) does not have a remote monitoring capability, which is necessitates constant onsite attendance by support personnel (doctors and nurses). Thus, we have developed a Remote Wireless Patient Monitoring System using some biomedical sensors and Android OS, which is a portable patient

International Journal of Trend in Scientific Research and Development (IJTSRD) ISSN: 2456

www.ijtsrd.com | Volume – 3 | Issue – 1 | Nov-Dec 2018

Routing Techniques in Wireless Sensor

Due to the limited transmit power and other constraints; the transmission of data between two nodes in a Wireless Sensor Network (WSN) may have

lp of one or multiple relay nodes. Game theory has been proven very useful for accurately modelling the underlying strategic interactions between the sensor nodes and for providing the relays with incentives to forward the

f things in industries: A survey Internet of Things (IoT) has provided a promising opportunity to build powerful industrial systems and applications by leveraging the growing ubiquity of

frequency identification (RFID), and wireless, or devices. A wide range of industrial

IoT applications have been developed and deployed in recent years. In an effort to understand the development of IoT in industries, this paper reviews the current research of IoT, key enabling technologies,

applications in industries, and identifies research trends and challenges. A main contribution of this review paper is that it summarizes the current

art IoT in industries systematically.

esearch and Innovation to Market

The IoT will fuel technology innovation by creating the means for machines to communicate many different types of information with one another while contributing in the increased value of information created by the number of interconnections among

gs and the transformation of the processed information into knowledge shared into the Internet of

Remote Wireless Patient Monitoring System One of the medical devices we found when we visit a hospital care unit such device is ‘patient monitoring system’. This device (patient monitoring system) informs doctors and nurses about the patient’s physiological signals. However, this device (patient monitoring system) does not have a remote monitoring capability, which is necessitates constant

e attendance by support personnel (doctors and nurses). Thus, we have developed a Remote Wireless Patient Monitoring System using some biomedical sensors and Android OS, which is a portable patient

monitoring. This device (Remote Wireless Patient Monitoring System) monitors the biomedical signals of patients in real time and sends them to remote stations (doctors and nurses android martphone and web) for display and with alerts when necessary. 4. AIMS AND OBJECTIVES OF THE STUDYTo monitor and gather the patient's physiological vital signs in a single sensor based component/ equipment. With the availability of portable biomedical sensors and easy access to internet on mobile devices, medical devices on Internet of Things (IoT) are becoming increasingly common one. Machines that monitor the common vital physiological parameters are under development using open source hardware and software. However, the ease of use for the end user is always a challenge. This includes the correct placement of the sensors and eabiomedical device. 5. PROPOSED METHODOLOGYIn health care monitoring theconditions are need to be frequently Nowadays the health care scheme is focus on the measurement and monitoringparameters of patient’s body like heart rate, oxygen saturation level in blood and temperature. subject to be seated in a relaxed posture during the acquisition of physiological signals from various sensors attached to his/her body. The raw signals fthe sensors are processed digitally by an onboard microcontroller and analyzed for any common abnormalities in the health parameters of the subject. Requirements � PIC16F877A microcontroller� POWER SUPPLIES � VALVE REGULATED LA

RECHARGEABLE BATTER� BC546/547/548/549/550 SEMICONDUCTOR� RELAY � TEMPERATURE SENSOR LM35� HP03 SERIES OF CALIBRATED SENSOR

MODULE � BUZZER ELECTROMAGNETIC� 28/40/44-PIN ENHANCED FLASH

MICROCONTROLLERS � LM35 PRECISION CENTIGRADE

TEMPERATURE SENSORS� HEART BEAT SENSOR

RD) ISSN: 2456-6470

Dec 2018 Page: 967

monitoring. This device (Remote Wireless Patient g System) monitors the biomedical signals

of patients in real time and sends them to remote stations (doctors and nurses android martphone and web) for display and with alerts when necessary.

AIMS AND OBJECTIVES OF THE STUDY tient's physiological vital

signs in a single sensor based component/ equipment. With the availability of portable biomedical sensors and easy access to internet on mobile devices, medical devices on Internet of Things (IoT) are becoming

n one. Machines that monitor the common vital physiological parameters are under development using open source hardware and software. However, the ease of use for the end user is always a challenge. This includes the correct placement of the sensors and ease of operation of the

PROPOSED METHODOLOGY care monitoring the patient’s health

conditions are need to be frequently watched. Nowadays the health care scheme is focus on the

monitoring various biological ameters of patient’s body like heart rate, oxygen

saturation level in blood and temperature. Here the subject to be seated in a relaxed posture during the acquisition of physiological signals from various sensors attached to his/her body. The raw signals from the sensors are processed digitally by an onboard microcontroller and analyzed for any common abnormalities in the health parameters of the subject.

PIC16F877A microcontroller

VALVE REGULATED LA-6V4.5 RECHARGEABLE BATTERY BC546/547/548/549/550 SEMICONDUCTOR

TEMPERATURE SENSOR LM35 HP03 SERIES OF CALIBRATED SENSOR

BUZZER ELECTROMAGNETIC PIN ENHANCED FLASH

LM35 PRECISION CENTIGRADE TEMPERATURE SENSORS

Page 3: Design and implementation of Smart Sensor Integrated Chair for Medical Diagnosis

International Journal of Trend in Scientific Research and Development (IJTS

@ IJTSRD | Available Online @ www.ijtsrd.com

6. IMPLEMENTATION RESULTS

7. CONCLUSION The design phase of the system, the cost was kept minimal. The key focus of the presented work is to propose the design of a product that will be useful and easily affordable by the people of developing nations who have limited access to proper healthcare facilities. The results presented show that the proposed system is definitely a low cost affordable solution for IoT based telemedicine system, as compared to existing systems. 8. FUTURE ENHANCEMENT Future work involves attaching a keypad to the Smart Chair. A custom made web server will eliminate the constraint of creating an API key for each subject. This reduces the complexity of coding in the system. Having a keypad allows the user to enter his/her name and create a database in the web server for his/her health records.

International Journal of Trend in Scientific Research and Development (IJTSRD) ISSN: 2456

www.ijtsrd.com | Volume – 3 | Issue – 1 | Nov-Dec 2018

The design phase of the system, the cost was kept minimal. The key focus of the presented work is to propose the design of a product that will be useful and easily affordable by the people of developing nations

d access to proper healthcare facilities. The results presented show that the proposed system is definitely a low cost affordable solution for IoT based telemedicine system, as

ing a keypad to the Smart Chair. A custom made web server will eliminate the constraint of creating an API key for each subject. This reduces the complexity of coding in the system. Having a keypad allows the user to enter his/her name

e in the web server for his/her

9. REFERENCES 1. Da Xu, Li and He, Wu and Li, Shancang,” Internet

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Dec 2018 Page: 968

Da Xu, Li and He, Wu and Li, Shancang,” Internet of things in industries: A survey,” IEEE Transactions on Industrial Informatics, vol. 10, no.

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challenges, Computer Methods and Programs in 81, 2008.

S. Sneha, U. Varshney, Enabling ubiquitous patient monitoring: model, decision protocols,

s and challenges, Decision Support 619, 2009.

S. Koch, M. Hägglund, Health informatics and the delivery of care to older people, Maturitas,vol.63,

M. Philipose, S. Consolvo, I. Smith, D. Fox, H. . Patterson, Fast, detailed inference of

diverse daily human activities, in: Sixth International Conference on Ubiquitous