将t范数模糊逻辑应用于wsn传感器选择问题

L. P. Damuut, Felix Ngobigha, Dongbing Gu
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引用次数: 1

摘要

模糊逻辑在无线传感器网络中的应用所面临的挑战往往源于节点处理和存储能力的限制。这种异常可以通过使用集中式数据接收器来克服,该接收器配备了更多的存储和处理能力,并且还可以根据所部署节点子集的选定读数作为感兴趣事件发生或不发生的决定因素。选取泛集的有限子集是一个非常棘手的问题,特别是在问题空间相对较大的情况下。在本文中,我们提出应用t范数模糊逻辑(TFL)来解决传感器选择问题,并将其性能与标准遗传算法(GA)进行比较。大量的仿真结果揭示了这种方法的有效性,以及它与遗传算法的密切关系。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Applying T-norm fuzzy logic to the sensor selection problem in WSNs
The challenges involved in the application of fuzzy logic in wireless sensors networks often stem from the limitation in processing and storage capabilities of the nodes. This anomaly can be overcome by using a centralized data sink, equipped with more storage and processing capabilities and which can also serve as the decider on the occurrence or otherwise of the event of interest based on selected readings of a subset of the deployed nodes. It is known that selecting a finite subset of a universal set can be intractable especially with relatively large size of the problem space. In this paper, we propose the application of T-norm Fuzzy Logic(TFL) to address the sensor selection problem and compare its performance to that of a standard Genetic Algorithm (GA). Extensive simulation results reveal the usefulness of this approach and how it is closely related to the GA technique.
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