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1.
Wireless Body Area Network (WBAN) consists of low-power, miniaturized, and autonomous wireless sensor nodes that enable physicians to remotely monitor vital signs of patients and provide real-time feedback with medical diagnosis and consultations. It is the most reliable and cheaper way to take care of patients suffering from chronic diseases such as asthma, diabetes and cardiovascular diseases. Some of the most important attributes of WBAN is low-power consumption and delay. This can be achieved by introducing flexible duty cycling techniques on the energy constraint sensor nodes. Stated otherwise, low duty cycle nodes should not receive frequent synchronization and control packets if they have no data to send/receive. In this paper, we introduce a Traffic-adaptive MAC protocol (TaMAC) by taking into account the traffic information of the sensor nodes. The protocol dynamically adjusts the duty cycle of the sensor nodes according to their traffic-patterns, thus solving the idle listening and overhearing problems. The traffic-patterns of all sensor nodes are organized and maintained by the coordinator. The TaMAC protocol is supported by a wakeup radio that is used to accommodate emergency and on-demand events in a reliable manner. The wakeup radio uses a separate control channel along with the data channel and therefore it has considerably low power consumption requirements. Analytical expressions are derived to analyze and compare the performance of the TaMAC protocol with the well-known beacon-enabled IEEE 802.15.4 MAC, WiseMAC, and SMAC protocols. The analytical derivations are further validated by simulation results. It is shown that the TaMAC protocol outperforms all other protocols in terms of power consumption and delay. 相似文献
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IEEE 802.15.4 technology provides one solution for low-rate short range communications. Based on the integrated superframe
structure of IEEE 802.15.4, a novel low-delay traffic-adaptive medium access control (LDTA-MAC) protocol for wireless body
area networks (WBANs) is proposed in the paper. In LDTA-MAC, the guaranteed time slots (GTSs) are allocated dynamically according
to the traffic load. At the same time, the active portion of superframe is kept to be a reasonable duration to decrease the
energy consumption of the network devices. Moreover, for the successful GTS requests, the related data packets are transmitted
in the current superframe instead of waiting more time to reduce the average packet delay. Simulations are conducted to evaluate
the network performance and verify our protocol design. Comparing with IEEE 802.15.4, the results reveal LDTA-MAC accommodates
more devices access to the network and reduces the packet delay obviously without the cost of more energy consumption. 相似文献
3.
Anyembe Andrew Omala Angolo Shem Mbandu Kamenyi Domenic Mutiria Chunhua Jin Fagen Li 《Journal of medical systems》2018,42(6):108
Wireless body area network (WBAN) provides a medium through which physiological information could be harvested and transmitted to application provider (AP) in real time. Integrating WBAN in a heterogeneous Internet of Things (IoT) ecosystem would enable an AP to monitor patients from anywhere and at anytime. However, the IoT roadmap of interconnected ‘Things’ is still faced with many challenges. One of the challenges in healthcare is security and privacy of streamed medical data from heterogeneously networked devices. In this paper, we first propose a heterogeneous signcryption scheme where a sender is in a certificateless cryptographic (CLC) environment while a receiver is in identity-based cryptographic (IBC) environment. We then use this scheme to design a heterogeneous access control protocol. Formal security proof for indistinguishability against adaptive chosen ciphertext attack and unforgeability against adaptive chosen message attack in random oracle model is presented. In comparison with some of the existing access control schemes, our scheme has lower computation and communication cost. 相似文献
4.
It is of utmost importance to conserve battery energy to the maximum possible extent in WBAN nodes while collecting and transferring medical data. The IEEE 802.15.6 WBAN standard does not specify any method to conserve energy. This paper focuses on a method to conserve energy in IEEE 802.15.6 WBAN nodes when using CSMA/CA, while simultaneously restricting data delivery delay to the required value as specified in medical applications. The technique is to allow the nodes to sleep all the times except for receiving beacons and for transmitting data frames whenever a data frame enters an empty buffer. The energy consumed by the nodes and the average latency of data frame for periodical arrival of data are found out analytically. The analytical results are validated and also the proposed method is compared with other energy conserving schemes, using Castalia simulation studies. The proposed method shows superior performance in both device lifetime and latency of emergency medical data. 相似文献
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Wireless body area network (WBAN) provide a mechanism of transmitting a persons physiological data to application providers e.g. hospital. Given the limited range of connectivity associated with WBAN, an intermediate portable device e.g. smartphone, placed within WBAN’s connectivity, forwards the data to a remote server. This data, if not protected from an unauthorized access and modification may be lead to poor diagnosis. In order to ensure security and privacy between WBAN and a server at the application provider, several authentication schemes have been proposed. Recently, Wang and Zhang proposed an authentication scheme for WBAN using bilinear pairing. However, in their scheme, an application provider could easily impersonate a client. In order to overcome this weakness, we propose an efficient remote authentication scheme for WBAN. In terms of performance, our scheme can not only provide a malicious insider security, but also reduce running time of WBAN (client) by 51 % as compared to Wang and Zhang scheme. 相似文献
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In recent years interest in the application of Wireless Body Area Network (WBAN) for patient monitoring applications has grown
significantly. A WBAN can be used to develop patient monitoring systems which offer flexibility to medical staff and mobility
to patients. Patients monitoring could involve a range of activities including data collection from various body sensors for
storage and diagnosis, transmitting data to remote medical databases, and controlling medical appliances, etc. Also, WBANs
could operate in an interconnected mode to enable remote patient monitoring using telehealth/e-health applications. A WBAN
can also be used to monitor athletes’ performance and assist them in training activities. For such applications it is very
important that a WBAN collects and transmits data reliably, and in a timely manner to a monitoring entity. In order to address
these issues, this paper presents WBAN design techniques for medical applications. We examine the WBAN design issues with
particular emphasis on the design of MAC protocols and power consumption profiles of WBAN. Some simulation results are presented
to further illustrate the performances of various WBAN design techniques. 相似文献
10.
Internet of Things (IoT) provides the collection of devices in different applications in which Wireless Body Area Network (WBAN) is placed an crucial role. The WBAN is a wireless sensor network consisting of sensor nodes that is collected from IoT which is implanted in the human body to remotely monitor the patient’s physiological signals without affecting their routine work. During emergency situations or life-threatening situations there is a need for a better performance to deliver the actual data with an efficient transmission and there is still a challenge in efficient remote monitoring. So, in this paper an application for cross layer protocol design architecture of Elliptic Curve Digital Signature Algorithm (ECDSA) has been proposed. It replaces the protocol architecture of WBAN (IEEE 802.15.6), WMAN (IEEE 802.16), and 3G, WLAN (IEEE 802.11) or wired networks. The lightweight secure system provides secure data transmission and access control mechanisms by using ECDA-based proxy signature algorithm. The efficiency of the system is implemented using simulation models that were developed using NS-2, and the results obtained shows an optimum solution in terms of delay, PDR, throughput, jitter, packet transmission time, dropping ratio and packet delivery. The viability of the methodology proposed is illustrated by the response. 相似文献
11.
Recent advances in medical treatment and emergency applications, the need of integrating wireless body area network (WBAN) with cloud computing can be motivated by providing useful and real time information about patients’ health state to the doctors and emergency staffs. WBAN is a set of body sensors carried by the patient to collect and transmit numerous health items to medical clouds via wireless and public communication channels. Therefore, a cloud-assisted WBAN facilitates response in case of emergency which can save patients’ lives. Since the patient’s data is sensitive and private, it is important to provide strong security and protection on the patient’s medical data over public and insecure communication channels. In this paper, we address the challenge of participant authentication in mobile emergency medical care systems for patients supervision and propose a secure cloud-assisted architecture for accessing and monitoring health items collected by WBAN. For ensuring a high level of security and providing a mutual authentication property, chaotic maps based authentication and key agreement mechanisms are designed according to the concept of Diffie-Hellman key exchange, which depends on the CMBDLP and CMBDHP problems. Security and performance analyses show how the proposed system guaranteed the patient privacy and the system confidentiality of sensitive medical data while preserving the low computation property in medical treatment and remote medical monitoring. 相似文献
12.
Wireless body area network (WBANs) is composed of sensors that collect and transmit a person’s physiological data to health-care providers in real-time. In order to guarantee security of this data over open networks, a secure data transmission mechanism between WBAN and application provider’s servers is of necessity. Modified medical data does not provide a true reflection of an individuals state of health and its subsequent use for diagnosis could lead to an irreversible medical condition. In this paper, we propose a lightweight certificateless signcryption scheme for secure transmission of data between WBAN and servers. Our proposed scheme not only provides confidentiality of data and authentication in a single logical step, it is lightweight and resistant to key escrow attacks. We further provide security proof that our scheme provides indistinguishability against adaptive chosen ciphertext attack and unforgeability against adaptive chosen message attack in random oracle model. Compared with two other Diffie-Hellman based signcryption schemes proposed by Barbosa and Farshim (BF) and another by Yin and Liang (YL), our scheme consumes 46 % and 8 % less energy during signcryption than BF and YL scheme respectively. 相似文献
13.
In this study, Random Contention-based Resource Allocation (RACOON) medium access control (MAC) protocol is proposed to support the quality of service (QoS) for multi-user mobile wireless
body area networks (WBANs). Different from existing QoS designs that focus on a single WBAN, a multiuser WBAN QoS should further
consider both inter-WBAN interference and inter-WBAN priorities. Similar problems have been studied in both overlapped wireless
local area networks (WLANs) and Bluetooth piconets that need QoS supports. However, these solutions are designed for non-medical
transmissions that do not consider any priority scheme for medical applications. Most importantly, these studies focus on
only static or low mobility networks. Network mobility of WBANs will introduce unnecessary inter-network collisions and energy
waste, which are not considered by these solutions. The proposed multiuser-QoS protocol, RACOON, simultaneously satisfies
the inter WBAN QoS requirements and overcomes the performance degradation caused by WBAN mobility. Simulation results verify
that RACOON provides better latency and energy control, as compared with WBAN QoS protocols without considering the inter-WBAN
requirements. 相似文献
14.
Wireless body area networks (WBANs) comprises a number of sensor nodes and the portable mobile device such as smartphone. It is used to monitor the physical condition and provide a reliable healthcare system. Utilizing the wireless communication network, sensor nodes collect the physiological data of one patient to the portable mobile device and the latter analyzes and transmits them to the application providers. Therefore, the personal data confidentiality and user privacy are cores of WBANs. Recently, Shen et al. presented a multi-layer authentication protocol for WBANs, which is lightweight and much easier to implement. However, we observe that their authentication between sensor nodes and the portable mobile device could ensure the forward security property only when the sensor nodes are changed (add or delete). When the sensor nodes are constant, the security property is not satisfied. Meanwhile, the authentication between the portable mobile device and application provider is prone to mutual impersonation attack, so the critical goal of mutual authentication can not be achieved. In this paper, an improved two-layer authentication scheme is proposed to remove the flaws. The analysis shows that our method is more secure and could withstand various attacks. 相似文献
15.
为解决各级医疗机构楼宇自控系统中不同环境下温度监测布线困难、维护不易的缺点,设计了一种基于ANT协议的无线温度采集网络。方案采用STC12LE4052AD微处理器、NRF24AP2无线网络模块和单总线数字温度传感器DS18B20等搭建硬件平台,并用Visual Studio2010 C++编写温度监测软件实时显示温度和采集记录温度。试验表明,该网络运行稳定,采集环境温度准确,具有低能耗、低成本和易组网等优点。 相似文献
16.
A Comprehensive Survey of Wireless Body Area Networks 总被引:1,自引:0,他引:1
Sana Ullah Henry Higgins Bart Braem Benoit Latre Chris Blondia Ingrid Moerman Shahnaz Saleem Ziaur Rahman Kyung Sup Kwak 《Journal of medical systems》2012,36(3):1065-1094
Recent advances in microelectronics and integrated circuits, system-on-chip design, wireless communication and intelligent
low-power sensors have allowed the realization of a Wireless Body Area Network (WBAN). A WBAN is a collection of low-power,
miniaturized, invasive/non-invasive lightweight wireless sensor nodes that monitor the human body functions and the surrounding
environment. In addition, it supports a number of innovative and interesting applications such as ubiquitous healthcare, entertainment,
interactive gaming, and military applications. In this paper, the fundamental mechanisms of WBAN including architecture and
topology, wireless implant communication, low-power Medium Access Control (MAC) and routing protocols are reviewed. A comprehensive
study of the proposed technologies for WBAN at Physical (PHY), MAC, and Network layers is presented and many useful solutions
are discussed for each layer. Finally, numerous WBAN applications are highlighted. 相似文献
17.
A wireless body sensor network hardware has been designed and implemented based on MICS (Medical Implant Communication Service)
band. The MICS band offers the advantage of miniaturized electronic devices that can either be used as an implanted node or
as an external node. In this work, the prototype system uses temperature and pulse rate sensors on nodes. The sensor node
can transmit data over the air to a remote central control unit (CCU) for further processing, monitoring and storage. The
developed system offers medical staff to obtain patient’s physiological data on demand basis via the Internet. Some preliminary
performance data is presented in the paper. 相似文献
18.
Development of wireless sensor and mobile communication technology provide an unprecedented opportunity for realizing smart and interactive healthcare systems. Designing such systems aims to remotely monitor the health and diagnose the diseases for users. In this paper, we design a novel human body area network for brain diseases analysis, which is named BABDA. Considering the brain is one of the most complex organs in the human body, the BABDA system provides four function modules to ensure the high quality of the analysis result, which includes initial data collection, data correction, data transmission and comprehensive data analysis. The performance evaluation conducted in a realistic environment with several criteria shows the availability and practicability of the BABDA system. 相似文献
19.
A Wireless Body Area Sensor Network (WBASN) is composed of a set of sensor nodes, placed on, near or within a human body.
WBASNs opt to continuously monitor the health conditions of individuals under medical risk, e.g., elders and chronically ill
people, without keeping them in a hospital or restraining their motion. A WBASN needs to stay connected to local or wide area
networks using wireless technologies in order to send sensor readings to a medical center. The WBASN nodes are implanted within
the human body and would thus have limited energy supply. Since the mission of the WBASN is very critical, increasing the
lifetime of nodes is essential in order to maintain both practicality and effectiveness. This paper presents a new Gateway
Selection Algorithm (GSA) that factors in the use of energy harvesting technologies and dynamically picks the most suitable
WBASN node that serves as a gateway to other wireless networks. The goal of GSA is to balance the load among the nodes by
adaptively changing the gateway node in WBASN depending on the energy reserve of nodes. Computer modeling and simulations
of the proposed GSA are carried out using OPNET. The simulation results demonstrate the effectiveness of the proposed GSA
approach. 相似文献
20.
Selimis G Huang L Massé F Tsekoura I Ashouei M Catthoor F Huisken J Stuyt J Dolmans G Penders J De Groot H 《Journal of medical systems》2011,35(5):1289-1298
In order for wireless body area networks to meet widespread adoption, a number of security implications must be explored to promote and maintain fundamental medical ethical principles and social expectations. As a result, integration of security functionality to sensor nodes is required. Integrating security functionality to a wireless sensor node increases the size of the stored software program in program memory, the required time that the sensor's microprocessor needs to process the data and the wireless network traffic which is exchanged among sensors. This security overhead has dominant impact on the energy dissipation which is strongly related to the lifetime of the sensor, a critical aspect in wireless sensor network (WSN) technology. Strict definition of the security functionality, complete hardware model (microprocessor and radio), WBAN topology and the structure of the medium access control (MAC) frame are required for an accurate estimation of the energy that security introduces into the WBAN. In this work, we define a lightweight security scheme for WBAN, we estimate the additional energy consumption that the security scheme introduces to WBAN based on commercial available off-the-shelf hardware components (microprocessor and radio), the network topology and the MAC frame. Furthermore, we propose a new microcontroller design in order to reduce the energy consumption of the system. Experimental results and comparisons with other works are given. 相似文献