Co-locating services in IoT systems to minimize the communication energy cost

Zhenqiu Huang , Kwei-Jay Lin , Shih-Yuan Yu , Jane Yung-jen Hsu
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引用次数: 53

Abstract

Ubiquitous sensing and actuating devices are now everywhere in our living environment as part of the global cyber–physical ecosystem. Sensing and actuating capabilities can be modeled as services to compose intelligent Internet of Things (IoT) applications. An issue for perpetually running and managing these IoT devices is the energy cost. One energy saving strategy is to co-locate several services on one device in order to reduce the computing and communication energy. In this paper, we propose a service merging strategy for mapping and co-locating multiple services on devices. In a multi-hop network, the service co-location problem is formulated as a quadratic programming problem. We show a reduction method that reduces it to the integer programming problem. In a single hop network, the service co-location problem can be modeled as the Maximum Weighted Independent Set (MWIS) problem. We show the algorithm to transform a service flow to a co-location graph, then use known heuristic algorithms to find the maximum independent set which is the basis for making service co-location decisions. The performance of different co-location algorithms are evaluated by simulation in this paper.

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在物联网系统中共同定位服务,以最大限度地降低通信能源成本
作为全球网络物理生态系统的一部分,无处不在的传感和驱动设备现在在我们的生活环境中无处不在。感知和执行能力可以建模为服务,以组成智能物联网(IoT)应用程序。长期运行和管理这些物联网设备的一个问题是能源成本。一种节能策略是在一台设备上共同定位多个服务,以减少计算和通信能量。在本文中,我们提出了一种服务合并策略,用于在设备上映射和共定位多个服务。在多跳网络中,服务共址问题被表述为一个二次规划问题。我们给出了一种简化方法,将其简化为整数规划问题。在单跳网络中,服务共址问题可以建模为最大加权独立集(MWIS)问题。我们给出了将服务流转换为共址图的算法,然后使用已知的启发式算法找到最大独立集,这是做出服务共址决策的基础。本文通过仿真对不同的协同定位算法的性能进行了评价。
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