Residual Life Estimation of Humidity Sensor DHT11 Using Artificial Neural Networks

P. Sharma, C. Bhargava
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引用次数: 1

Abstract

Electronic systems have become an integral part of our daily lives. From toy to radar, system is dependent on electronics. The health conditions of humidity sensor need to be monitored regularly. Temperature can be taken as a quality parameter for electronics systems, which work under variable conditions. Using various environmental testing techniques, the performance of DHT11 has been analysed. The failure of humidity sensor has been detected using accelerated life testing, and an expert system is modelled using various artificial intelligence techniques (i.e., Artificial Neural Network, Fuzzy Inference System, and Adaptive Neuro-Fuzzy Inference System). A comparison has been made between the response of actual and prediction techniques, which enable us to choose the best technique on the basis of minimum error and maximum accuracy. ANFIS is proven to be the best technique with minimum error for developing intelligent models.
基于人工神经网络的湿度传感器DHT11剩余寿命估计
电子系统已经成为我们日常生活中不可或缺的一部分。从玩具到雷达,系统都依赖于电子设备。需要定期监测湿度传感器的健康状况。对于工作在可变条件下的电子系统,温度可以作为一个质量参数。利用各种环境测试技术,分析了DHT11的性能。利用加速寿命试验检测湿度传感器的故障,并利用各种人工智能技术(即人工神经网络、模糊推理系统和自适应神经模糊推理系统)对专家系统进行建模。比较了实际技术和预测技术的响应,使我们能够在最小误差和最大精度的基础上选择最佳技术。ANFIS被证明是开发智能模型误差最小的最佳技术。
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