ANFIS Analysis of Wireless Sensor Data with FPGA

Khazal Ahmed, Tuncay Ercan
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引用次数: 1

Abstract

Applications related with WSNs may include thousands of separate sensor nodes, production and control data for different industrial sectors. It is important to manage these applications, monitor the network and reprogram the nodes to avoid operational problems. In this study, we propose a smart wireless sensor network using a reconfigurable embedded system of Field-Programmable Gate Arrays (FPGAs) with a soft-core processor. This processor can be programmed dynamically and synthesized to implement the preprocessing of sensed data by ensemble Hybrid Neuro-Fuzzy algorithms such as Adaptive Neuro-Fuzzy Inference System (ANFIS). The first part of the proposed work is based on Matlab software to develop and train the ANFIS algorithm. Two different types of data sets (temperature and humidity) downloaded from Internet have been used in order to make a comparison between the Matlab Toolbox and modified ANFIS algorithm with momentum factor. The results obtained in this study have shown that the modified ANFIS algorithm is the convenient choice in terms of speed, accuracy.
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基于FPGA的无线传感器数据的ANFIS分析
与wsn相关的应用可能包括数千个独立的传感器节点,不同工业部门的生产和控制数据。重要的是管理这些应用程序,监控网络并重新编程节点以避免操作问题。在这项研究中,我们提出了一个智能无线传感器网络,使用可重构嵌入式系统的现场可编程门阵列(fpga)与软核处理器。该处理器可以通过动态编程和合成,实现自适应神经模糊推理系统(ANFIS)等集成神经模糊混合算法对传感数据的预处理。第一部分提出的工作是基于Matlab软件开发和训练ANFIS算法。利用从网上下载的两种不同类型的数据集(温度和湿度),将Matlab工具箱与改进的带动量因子的ANFIS算法进行比较。研究结果表明,改进的ANFIS算法在速度、精度等方面都是比较方便的选择。
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