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Interactive Task Assignment Model for Internet of Things Devices

机译:物联网设备的交互式任务分配模型

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摘要

In the application of the Internet of Things (IoT) technology, devices may passively receive signals for service or proactively provide data. The main problem in the communication mechanism for an IoT device is how to use the communication mechanism to trigger the wake-up device to exchange data. In the past, IoT devices were mainly operated at the remote end. After the user delivered the service demand task, a one-to-one device operation was possible through network communication. Owing to the changes in technology and demands today, the communication infrastructure has been transformed from a one-to-one approach to a oneto-many model, and even a many-to-many model has evolved. The operator no longer only performs a single operation on each device, so it is necessary to make the device itself gradually intelligent through the calculation of the communication design algorithm, which is a major technological breakthrough. In this study, we will show how, to use data communication computing algorithms and communication systems to build intelligent architectures and proactively respond to services across different devices. In addition, using a wake-up detection system, it is possible to avoid the problem that the device responds after receiving the task and delays the delivery of the task result. Experimental results show the efficiency of the proposed method. The variance of real response time was limited within a small interval as the number of devices was increased.
机译:在物联网(IoT)技术的应用中,设备可以被动地接收服务信号或主动提供数据。物联网设备的通信机制中的主要问题是如何使用通信机制来触发唤醒设备交换数据。过去,IoT设备主要在远程端运行。用户交付服务需求任务后,可以通过网络通信进行一对一的设备操作。由于当今技术和需求的变化,通信基础设施已从一对一方法转变为一对多模型,甚至发展了多对多模型。操作员不再只对每个设备执行单个操作,因此有必要通过通信设计算法的计算使设备本身逐渐智能化,这是一项重大的技术突破。在本研究中,我们将展示如何使用数据通信计算算法和通信系统来构建智能体系结构并主动响应不同设备上的服务。另外,使用唤醒检测系统,可以避免设备在接收到任务之后做出响应并延迟任务结果的传递的问题。实验结果表明了该方法的有效性。随着设备数量的增加,实际响应时间的方差被限制在很小的间隔内。

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