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Prediction Algorithm Based on Weather Forecast for Energy-Harvesting Wireless Sensor Networks

机译:基于天气预报的能量收集无线传感器网络预测算法

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摘要

Solar energy is one of the effective solutions for the perpetual operation of wireless sensor networks (WSNs), but the harvesting of solar energy is highly random, and it is very important to predict the solar energy harvesting in advance. The existing prediction algorithm has better predictive effect in predicting the similar weather conditions in the region, but the accuracy of the prediction algorithm will be reduced when the weather in the prediction area drastic changes. In this paper, the study is about the influence of weather conditions on solar energy harvesting by introducing real-forecast weather into the prediction algorithm. Secondly, based on the Weather Conditions Moving Average (WCMA) algorithm, an efficient and reliable prediction algorithm, Real-Forecast Weather Moving Average (RWMA) is proposed. The algorithm adjusts the prediction result of the following slot according to the error of the harvesting amount of the preceding several slot. Experimental results show that the RWMA algorithm can also predict solar energy when weather drastic changes. Compared with the existing prediction algorithm, RWMA algorithm solves the problem that the weather change affects the prediction result, and the prediction performance is greatly improved.
机译:太阳能是无线传感器网络(WSN)永久运行的有效解决方案之一,但是太阳能的获取是高度随机的,因此预先预测太阳能的获取非常重要。现有的预测算法在预测该地区的相似天气情况时具有较好的预测效果,但是当预测区域的天气急剧变化时,该预测算法的准确性将会降低。通过将真实预报的天气引入预测算法,研究天气状况对太阳能收集的影响。其次,基于天气状况移动平均线(WCMA)算法,提出了一种高效可靠的预报算法,即实时预报天气移动平均线(RWMA)。该算法根据前几个时隙的收获量的误差来调整下一个时隙的预测结果。实验结果表明,当天气急剧变化时,RWMA算法还可以预测太阳能。与现有的预测算法相比,RWMA算法解决了天气变化影响预测结果的问题,大大提高了预测性能。

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