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首页> 外文期刊>Journal of medical systems >Traffic Priority Based Channel Assignment Technique for Critical Data Transmission in Wireless Body Area Network
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Traffic Priority Based Channel Assignment Technique for Critical Data Transmission in Wireless Body Area Network

机译:基于流量优先级的无线体积网络中的关键数据传输的信道分配技术

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In recent days, intelligent biomedical sensors and wearable devices are changing the healthcare industry by providing various heterogeneous vital signs of patients to the hospitals, caregivers, and clinicals. This collective form of monitoring sensor devices forms a very short-range Wireless Body Area Network (WBAN) and plays a key role in the data gathering process. If any sensor node in the network detects abnormal values that should be transmitted promptly via wireless medium with less delay. A single medium allows one-way delivery of a data packet, and it may not be sufficient to satisfy the high volume of communication demand between the sensor nodes in the network. In the same way, the packet prioritization does not guarantee the packet will get there on time and sometime it may cause priority conflicts among the nodes. It is only mean that the flow of delivery service handles that critical data packet before handling other data packets. However, unexploited time slots and bandwidth wastage will occur due to inefficient backoff management and collisions. To minimize the aforementioned issues, various backoff procedures, adaptive slot allocation mechanisms, priority-based medium access control protocols have been developed but suffer limitations in the context of providing priority-based channel access with less backoff conflicts and dedicated allocation of time slots for critical nodes in all cases. Based on these deliberations, a more effective Traffic Priority-based Channel Access Technique (TP-CAT) is proposed using IEEE 802.15.6 in order to minimize the transmission delay of critical data packet and solve conflicts among other priority nodes during the backoff phases. Firstly, a Low Threshold Criticality-based Adaptive Time slot Allocation algorithm (LT-CATA) is presented to decrease the priority slot conflicts between the low threshold data traffic from the same and different type of user prioritynodes. Secondly, a High Threshold Criticality-based Adaptive Time slot Allocation algorithm (HT-CATA) is developed to reduce the priority slot conflicts between the high threshold data traffic from the same and different types of user prioritynodes. Additionally, a novel Random Overlapping Backoff value Avoidance (ROBA) technique is introduced to eliminate the overlapping issue during the selection of random backoff value among the sensor nodes. Since, the proposed technique greatly reduced the channel access delay and transmissiondelay of critical data packet as well as other types of priority data packet. The Simulation results are verified in the CASTALIA 3.2 framework using omnet++ network simulater to relatively evaluate the performance metrics of the TP-CAT technique with state-of-the-art protocols. From the analysis of the results, it is evident that the TP-CAT technique provides better performance in terms of delay, energy consumption, and throughput in healthcare monitoring environments.
机译:最近几天,智能生物医学传感器和可穿戴设备正在通过为医院,护理人员和临床提供各种患者的异质生命体征来改变医疗保健行业。这种监控传感器设备的集体形式形成非常短的无线体积网络(WBAN),并在数据收集过程中发挥关键作用。如果网络中的任何传感器节点检测到应通过无线介质迅速传输的异常值,则具有较少延迟的无线介质。单个介质允许单向传送数据分组,并且可能不足以满足网络中的传感器节点之间的高量通信需求。以同样的方式,数据包优先级不保证数据包将在时间上到达那里,并且有时它可能导致节点之间的优先级冲突。它仅意味着在处理其他数据包之前,送货服务流程处理该关键数据包。然而,由于低效的退避管理和碰撞,将发生未爆发的时隙和带宽浪费。为了最小化上述问题,已经开发了各种退避过程,自适应时隙分配机制,基于优先级的媒体访问控制协议,而是在提供基于优先级的信道访问的上下文中受到限制,而基于优先级的信道访问,并且为临界专用于时隙分配所有情况下的节点。基于这些审议,使用IEEE 802.15.6提出了一种更有效的交通优先级的信道访问技术(TP-CAT),以最小化关键数据分组的传输延迟,并在退避阶段期间解决其他优先级节点之间的冲突。首先,呈现了基于低阈值的临界自适应时隙分配算法(LT-CATA)以降低来自相同类型和不同类型的用户优先节点的低阈值数据业务之间的优先级槽冲突。其次,开发了一种基于高阈值的临界自适应时隙分配算法(HT-CATA)以减少来自相同类型和不同类型的用户优先节点的高阈值数据业务之间的优先级槽冲突。另外,引入了一种新的随机重叠退避值避免(ROBA)技术以在选择传感器节点之间的随机退避值期间消除重叠问题。由于所提出的技术大大减少了关键数据分组的信道访问延迟和传输,以及其他类型的优先级数据分组。仿真结果在Castalia 3.2使用OMNet ++网络模拟器中验证了Castalia 3.2框架,以相对评估与最先进的协议的TP-CAT技术的性能度量。从分析结果中,显而易见的是,TP-CAT技术在延迟,能耗和医疗保健监测环境中的吞吐量方面提供了更好的性能。

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