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An energy-saving wireless sensor network based model for monitoring of ammonia concentration

机译:基于节能的无线传感器网络监测氨浓度

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The ammonia concentration in the piggery plays a key role in the growth of fattening pigs. An intelligent environmental monitoring system is proposed based on a wireless sensor network. Specifically, a model has been developed to predict environmental parameters in the server. To optimise its prediction accuracy, this model was designed based on least squares support vector regression (LSSVR) with chaotic mutation to improve the estimation of distribution algorithm (CMEDA) for searching of the optimised parameters, which are gamma and sigma. Three optimisation methods were involved and compared with it. The experimental results indicated that it exhibits advantages in the prediction accuracy over the other three algorithms. Furthermore, the prediction accuracy of the server was 95%, resulting in reduction of internet of things (IoT) card flow and battery power of LoRa module per day by 50%. The proposed monitoring system is an effective strategy for piggery environmental control.
机译:猪中氨浓度在肥育猪的生长中起着关键作用。 基于无线传感器网络提出智能环境监测系统。 具体地,已经开发了一种模型来预测服务器中的环境参数。 为了优化其预测精度,基于具有混沌突变的最小二乘支持向量回归(LSSVR)来设计该模型,以改善用于搜索优化参数的分布算法(CMEDA)的估计,这是伽马和Sigma。 三种优化方法涉及并与其进行比较。 实验结果表明它在其他三种算法上表现出预测精度的优点。 此外,服务器的预测准确性为95%,导致每天每天洛拉模块的物联网(物联网)卡流量和电池电量减少50%。 拟议的监测系统是Piggery环境控制的有效策略。

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